JP2012189046A - Various energy conservation cycle combined engine - Google Patents

Various energy conservation cycle combined engine Download PDF

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JP2012189046A
JP2012189046A JP2011055304A JP2011055304A JP2012189046A JP 2012189046 A JP2012189046 A JP 2012189046A JP 2011055304 A JP2011055304 A JP 2011055304A JP 2011055304 A JP2011055304 A JP 2011055304A JP 2012189046 A JP2012189046 A JP 2012189046A
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Hiroyasu Tanigawa
浩保 谷川
Kazunaga Tanigawa
和永 谷川
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PROBLEM TO BE SOLVED: To solve such problems that an existing steam turbine has power as low as 1/36,000 of a platinum ball power, a half of the blades are static blades functioning as a dam, reducing an output to almost 0, and temperature of the sea water elevates by 7 degrees, which means danger of extinction of human species.SOLUTION: A various energy conservation cycle combined engine is achieved by driving of a vertical all-dynamic-blade solar heat turbine 8H having a large specific gravity and mass gravity, in which the maximum power in atmospheric pressure under the same conditions of velocity and volume is set to 36,000 times the platinum ball power of existing steam turbines. Air heated by sunlight is compressed and heated to a high temperature by a single or a several stages of heat pumps so as to heat, compress and recover the heat in another air heated by sunlight to increase a cold heat mass; high-pressure hot heat is stored in a hot heat chamber; and cold heat is separately stored in a cold heat chamber and is used. For example, in the process of driving a power generator or a ship, natural phenomena are accelerated to increase foods for human species, and temperature elevation in the sea water by 7 degrees is stopped to prevent extinction of human species. In driving solar-heat gravity flight vessels, fuel injection-combustion ultra-high pressure rocket injection is carried out to cold heat near the highest flight altitude of existing aircrafts, while the fuel cost is targeted to zero in the atmosphere. Thus, the cost for reaching the outer space is reduced, realizing a one-day trip and a space travel from any place on the earth.

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本発明は理論最良エンジン発明のため色々な実験が必要ですが、既存最良蒸気タービン発電の大気圧同速度同容積仕事率kg重m/秒が、竪型白金球重力タービン8Hの1/3.6万と僅少に加えて、蒸気速度を堰止めて仕事皆無静翼を動翼と交互に半分具備して回転出力を0に近付け、発電熱量全部で海水温度を7度上昇海面全部温度上昇して自然現象を不可能にし、上限の無い異常気象を増大100年前後海水の豪雨等で人類絶滅に近付く危険が大きく、人類絶滅を阻止する技術として、全動翼タービン8必須比重大物質重力タービン8必須とし、大気圧同速度同容積仕事率を、既存蒸気タービン発電の3.6万倍白金球仕事率に近付けた、竪型全動翼比重大物質重力太陽熱タービン8H発電等として、電気駆動1〜複数段熱ポンプ1Gで太陽熱加熱等の空気を複数回圧縮複数回高温とし、1〜複数段圧縮熱回収器2Cの空気熱交換器2Xで太陽光加熱の別空気28aで熱回収して、圧縮空気28aを増大し、2〜複数段熱ポンプ1Gで複数回圧縮して、2〜複数段圧縮熱回収器2Cの水熱交換器2Yや比重大物質熱交換器2Zで複数回熱回収し、高圧の圧縮空気28a冷熱+過熱蒸気50温熱に分割保存して、電気+冷熱+温熱の供給設備として船舶類や車両類や飛行機類に供給駆動用途無限増大し、限り無く小型簡単可能な各種エネルギ保存サイクル合体機関や合体方法に拡大して、竪型全動翼比重大物質重力太陽熱タービン8H発電や船舶駆動の過程では、自然現象高速化2aし、海水に窒素や酸素やCO2を冷熱や栄養分で供給微生物や海草類増大して、食物連鎖等で魚類等人類の食料を大増大し、海水温度上昇0CO2排気0の発電や僅少にする船舶等にして、人類絶滅を阻止する各種エネルギ保存サイクル合体機関や各種エネルギ保存合体方法の技術に関する。 In the present invention, various experiments are required for the theoretical best engine invention. However, the existing best steam turbine power generation has the same atmospheric pressure, same speed, and same volumetric power, kg weight m / sec. In addition to a slight 60,000, the steam speed is dammed, the workless blades are alternately half-rotated with the moving blades, the rotational output is brought close to 0, and the seawater temperature is raised by 7 degrees with all the generated heat, and the sea level is raised. As a technology to prevent the extinction of mankind due to heavy rains of seawater around 100 years, it is a technology that prevents the extinction of mankind. Electrified as a vertical type full-blade specific material gravity solar turbine 8H power generation, etc., which requires 8 atmospheric pressure, same speed, and same volumetric power as close to 36,000 times the platinum ball power of existing steam turbine power generation 1 to multistage heat pump 1G The air such as solar heating is compressed a plurality of times and heated a plurality of times, and the air heat exchanger 2X of the 1 to multi-stage compression heat recovery unit 2C recovers heat with another air 28a of solar heating to increase the compressed air 28a, Compressed multiple times with 2 to 2 stage heat pump 1G, recovered heat multiple times with 2 to 2 stage compressed heat recovery unit 2C water heat exchanger 2Y and specific material heat exchanger 2Z, and cooled with high pressure compressed air 28a + Superheated steam is divided and stored in 50 heat, and it is infinitely increased in use for supplying power to ships, vehicles and airplanes as electricity + cold heat + heat supply equipment, and various energy storage cycle coalescence engines and coalescence that can be reduced in size and simple In the process of power generation and ship driving, the vertical type moving blade ratio critical material gravity solar turbine 8H power generation and ship drive process will be accelerated 2a, and supply of nitrogen, oxygen and CO2 to seawater with cold and nutrients will increase microorganisms and seaweeds And in the food chain etc. The food of the kind, such as the human race a big increase, in the ship or the like for the power generation and slight of seawater temperature rise 0CO2 exhaust 0, it relates to a technology of various energy conservation cycle union organizations and various energy conservation combined method of inhibiting the human race extinct.

既存ジェット機ガスタービンも蒸気タービンと略同様に、回転出力や噴射圧力を静翼で0側に近付け噴射推進出力を僅少として、空気抵抗01日に地球を16周等が可能な宇宙飛行が不可能になるため、比重大物質重力太陽熱発電と同様に、竪型全動翼比重大物質重力温熱タービン8H+竪型全動翼比重大物質重力冷熱タービン8H駆動とし、3.6万倍仕事率に近付けた重力太陽熱タービン出力駆動発電の電気駆動熱ポンプ1Gとして、多数の1〜複数段熱ポンプ1G熱製造により、24〜400MPa大質量の圧縮空気冷熱28a+過熱蒸気温熱50に分割保存や、同様に電気+冷熱+温熱の陸上供給設備としても使用簡単小型飛行機等多用途に対応し、合体機関噴射部78に供給して冷熱28aに複数回燃料噴射着火燃焼して、高圧高速燃焼流にして外周や内周の温熱50を複数回加熱し、大気圧100度に近付く過熱蒸気温熱50を複数回1200度に近付け噴射して、宇宙上昇時にはラムジェットを遥かに超える噴射速度の合体機関噴射部78とし、既存ジェット機の100〜200倍圧力10倍熱量短時間噴射狙いとして、更に瞬間利用のアフターバーナー燃料噴射燃焼により宇宙到達を確実狙いにし、燃料費0に近い宇宙飛行で1日に地球を16周する等地球上何処でも日帰り旅行を可能にして、回転出力や噴射推進出力は1000倍狙い、大気中飛行時には3.6万倍仕事率に近付けた回転出力や噴射推進出力はCO2排気0や僅少狙いとし、各種宇宙往還飛行機類で利益率抜群世界一狙う、各種エネルギ保存サイクル合体機関や各種エネルギ保存合体方法の技術に関する。   In the same way as steam turbines, the existing jet gas turbines are not capable of space flight that allows the earth to rotate 16 times around the earth on the 01th day of the air resistance by making the rotation output and injection pressure close to 0 with the stationary blades and making the injection propulsion output small. Therefore, similar to the gravity material gravity solar thermal power generation, the specific material gravity thermal turbine 8H + vertical type blade specific gravity gravity cooling / heating turbine 8H drive is used to drive 36,000 times the work rate. As an electrically driven heat pump 1G for the gravitational solar turbine output drive power generation, it can be divided and stored into compressed air cold heat 28a + superheated steam heat 50 having a mass of 24 to 400 MPa by heat production of a number of 1 to multi-stage heat pumps 1G, + Cooling + Warm as onshore supply equipment Easy-to-use for small airplanes, etc. It is supplied to the combined engine injection section 78 and burned to the cold 28a multiple times to ignite and burn. In the combustion flow, the outer and inner heat 50 is heated several times, and the superheated steam heat 50 approaching the atmospheric pressure of 100 degrees is injected several times closer to 1200 degrees. Combined engine injection section 78, 100-200 times pressure 10 times the amount of heat of existing jets, aiming to reach the universe by instantaneous afterburner fuel injection combustion for instantaneous use, and in a space flight close to zero fuel cost for one day It makes it possible to travel anywhere on the earth, such as 16 times around the earth, aiming for 1000 times the rotation output and jet propulsion output, and the rotation output and jet propulsion output approaching 36,000 times work rate when flying in the atmosphere Technology for various energy conservation cycle coalescence engines and various energy conservation coalescence methods, aiming to achieve the world's best profit rate with various space return planes, with zero CO2 emissions and a slight aim About.

既存船舶は蒸気タービンやガスタービンや更に低性能エンジンを使用し、回転出力や噴射推進出力を僅少として、低速移動に膨大な燃料を消費しているため、竪型全動翼比重大物質重力太陽熱発電と同様に、竪型全動翼比重大物質重力温熱タービン8H+竪型全動翼比重大物質重力冷熱タービン8H駆動とし、既存蒸気タービンの3.6万倍仕事率に近付けたタービン8H発電電気駆動の、1〜複数段熱ポンプ1G駆動熱製造として、24〜400MPa冷熱28a+温熱50に分割保存や、同様に電気+冷熱+温熱の陸上供給設備としても使用簡単小型船舶等多用途に対応し、ウォータージェット79に供給して冷熱28aに複数回燃料噴射着火燃焼して、高圧高速燃焼流にして外周や内周の過熱蒸気50温熱を複数回加熱し、大気圧100度に近付く過熱蒸気を複数回1200度に近付けて、噴射圧力を既存ジェット機の100〜200倍狙いにして、10倍熱量噴射狙いのウォータージェット79とし、噴射推進出力や回転出力は1000倍狙い10倍船舶速度滑走出力僅少狙いにして、スクリュー推進時には3.6万倍仕事率に近付けた回転出力によりスクリュー駆動し、CO2排気0狙いの移動手段で利益率抜群世界一狙う、各種エネルギ保存サイクル合体機関や各種エネルギ保存合体方法の技術に関する。   Existing ships use steam turbines, gas turbines, and even lower performance engines, and have little rotational output and injection propulsion output, and consume huge amounts of fuel for low-speed movement. Similar to power generation, turbine-type 8H generator electric power generator driven by vertical-type all-blade ratio critical material gravity thermal turbine 8H + vertical-type total blade ratio critical material gravity cooling / heating turbine 8H, approaching 36,000 times the work rate of existing steam turbine For driving 1 to multistage heat pump 1G drive heat production, it can be divided and stored as 24-400MPa cold 28a + hot 50, and it can also be used as an on-shore supply facility for electricity + cold + hot, and it can be used for many purposes such as small ships Then, it is supplied to the water jet 79 and ignited and burned into the cold 28a a plurality of times to form a high-pressure, high-speed combustion flow, and the overheated steam 50 at the outer periphery and inner periphery is heated a plurality of times to obtain an atmospheric pressure of 10 The superheated steam approaching the temperature is approached 1200 degrees a plurality of times, the injection pressure is aimed at 100 to 200 times that of the existing jet aircraft, the water jet 79 is aimed at 10 times the calorie injection, and the jet propulsion output and the rotation output are aimed at 1000 times 10 Combined with various energy conservation cycles, aiming at the world's best profit rate with moving means aiming at zero CO2 exhaust, driven by screw output with rotational output approaching 36,000 times work rate when propelling the screw, aiming at a small ship speed sliding output The present invention relates to a technique of an engine and various energy storage and combination methods.

洗脳皆無の小学校理科で考えると、既存最良蒸気タービン発電の大気圧同速度同容積仕事率kg重m/秒が、白金球重力タービン8H仕事率の1/3.6万と僅少に加えて、蒸気速度を堰止めて仕事皆無の静翼を動翼と交互に半分具備して、回転出力を0側に近付けており、何故全動翼にしないのか大疑問に加えて、発電熱量全部で海水温度を7度上昇して海面全部を温度上昇自然現象不可能にし、上限の無い異常気象を増大100年前後海水の豪雨等で人類が絶滅に近付く危険を増大中です。緑の地球は奇跡の産物で他の星に近付く危険が大きく、発電所側説明では海水温度上昇が7度以下なら環境に影響皆無としておりますが、例えば海水温度が30度の海域で7度上昇すると、台風風速が300m/秒等になり海水の集中豪雨塩の被覆等で人類が絶滅する危険や、海面全部温度上昇して冬場に海面冷却海底に窒素や酸素やCO2等の栄養分を供給していた自然現象を不可能にし、海中微生物植物を激減魚類等人類の海中食物も限り無く激減しており、中国が10%成長を続けると、海水温度上昇量は10年で現在の2倍20年で4倍と加速度的に増大して、最悪予想では台風や季節風や海上竜巻の風速が100m/秒等となり、海水を上空に吸引海水の集中豪雨として日本の農業や林業が壊滅する等、50年前後で人類絶滅が急接近するため、手遅れ前に既存技術最悪部分に対応した技術開発が必要。   Considering the elementary school science without brainwashing, the existing best steam turbine power generation at atmospheric pressure and speed and volumetric capacity kg weight m / second is slightly less than 1 / 36,000 of the platinum ball gravity turbine 8H power, The steam speed is blocked and half blades with no work are alternately provided with the moving blades, and the rotation output is approaching the 0 side. The temperature rises by 7 degrees, making it impossible for natural phenomena to occur at all sea levels, increasing abnormal weather without an upper limit Around 100 years, the danger of human beings approaching extinction is increasing due to heavy rains in seawater. The green earth is a miracle product and there is a great risk of approaching other stars. According to the explanation of the power station, if the rise in seawater temperature is 7 degrees or less, there is no influence on the environment, but for example, 7 degrees in the sea area where the seawater temperature is 30 degrees If it rises, the typhoon wind speed will be 300m / sec, etc., and there will be danger of human beings extinction due to the covering of concentrated heavy rain salt of seawater, etc., and the temperature of the whole sea surface will rise and supply nutrients such as nitrogen, oxygen and CO2 to the sea surface cooling seabed in winter The natural phenomenon that had been made impossible, the number of marine microbial plants has been drastically reduced, and the number of fish and other marine foods has been drastically reduced. If China continues to grow 10%, the increase in seawater temperature will double in 10 years In 20 years, it will increase at a speed of 4 times, and the worst forecast is that typhoons, seasonal winds and ocean tornado wind speeds will be 100m / second, etc., and Japanese agriculture and forestry will be destroyed as a concentrated heavy rain of suction seawater over the seawater. , The extinction of humanity suddenly around 50 To close, it requires technical development corresponding to existing technologies worst part before too late.

洗脳皆無の小学校理科で考えると、既存最良蒸気タービン発電の大気圧同速度同容積仕事率kg重m/秒が、白金球重力タービン8H仕事率の1/3.6万と僅少に加えて、仕事皆無静翼を動翼と交互に半分具備して回転出力を0に近付けておる。しかし高校や大学では既存エンジンを理論最良エンジンと説明しており、洗脳皆無の小学校理科に戻って理論最良エンジンを考えると、仕事率の単位がkg重m/秒等重量×速度のため、重い物質を高速度にして回転出力発生が理論最良エンジンですが考えた痕跡が皆無という背景がある。そこで例えば全動翼水銀重力太陽熱タービン8H駆動発電機や飛行機類や船舶類にして、仕事率を3.6万倍に近付けた発電や船舶駆動の過程で自然現象高速化2aすると、微生物や海草類やサンゴ等を増殖食物連鎖等で魚類等人類の食物を増大し、海水の豪雨阻止し人類絶滅を先送り出来る背景があり。飛行機や船舶の停止中は熱と電気と冷熱の供給設備等で使用すると、稼働率増大革命に出来る背景があり。洗脳で長期間発明を阻止したため、発明運用の過程で燃料費0発電や燃料費僅少で10倍速度狙いの船舶革命や飛行機革命となって、運用利益率が既存運用利益率の10倍等膨大となり、世界規模100%独占した製造運用とし、雇用を増大する雇用増大革命に出来る背景がある。   Considering the elementary school science without brainwashing, the existing best steam turbine power generation at atmospheric pressure and speed and volumetric capacity kg weight m / second is slightly less than 1 / 36,000 of the platinum ball gravity turbine 8H power, The work is equipped with half static blades alternately with moving blades, and the rotational output is approaching zero. However, in high schools and universities, the existing engine is explained as the best engine, and when you return to elementary school science without brainwashing and think about the best engine, the unit of work is heavy because the weight unit is kg weight m / second equal weight x speed. There is a background that there is no trace that thought that the rotation output generation with the material at high speed is the theoretical best engine. So, for example, if you use a full-blade mercury gravity solar turbine 8H drive generator, airplanes, and ships, and increase the natural phenomenon speed in the process of power generation and ship drive close to 36,000 times, the microorganisms and seaweeds There is a background that can increase the food of mankind such as fish in the breeding food chain, etc., prevent the heavy rain of seawater and postpone human extinction. There is a background that can be used to revolutionize the operation rate if it is used with equipment for supplying heat, electricity, and cold while airplanes and ships are stopped. Because brainwashing prevented inventions for a long time, it became a marine revolution or airplane revolution aiming for 10 times speed with a fuel cost of 0 power generation and fuel costs in the process of invention operation, and the operational profit rate was 10 times larger than the existing operational profit rate Therefore, there is a background that can be a revolution in employment growth that will increase employment by making the manufacturing operation 100% monopolized worldwide.

大気圧同速度同容積仕事率kg重m/秒を、既存蒸気タービン発電の3.6万倍白金球仕事率に近付ける過程で、液体比重大物質3Eの水銀・低融点合金・水等の液体圧力により、金属球や被覆金属球を垂直下方に噴射重力加速度追加すると、低速で落差を増大する入力より重力加速度加速だけで仕事率は大幅に増大し、タービンの大型化多数化+落差を増大で仕事率を増大できる背景がある。地球での最大加速が重力加速度で無限大に近く、海水温度上昇0やCO2排気0や燃料費0の理論最良エンジン重力太陽熱発電等とし、燃料費0発電電気駆動の1〜複数段熱ポンプ1Gで、地球最大熱量の太陽熱や地熱で加熱した空気28aを複数回圧縮して、1〜複数段圧縮熱回収器2Cで複数回熱回収し、24〜400MPa圧縮空気冷熱28a+過熱蒸気温熱50に分割保存して、過熱蒸気50+圧縮空気28a比重大物質重力加速で発電機や飛行機や船舶を駆動し、温熱利用全盛や冷熱利用全盛や工場電化全盛や全面電化住宅全盛等として、化石燃料等限りある資源を子孫に残す地球温暖化防止が得られる背景があり。無限大に近い全動翼比重大物質重力太陽熱発電等の蓄電池駆動や電気駆動の、各種車両類全盛や各種自動車類全盛や移動手段全盛等、極端に安価な発電の蓄電池駆動や電気駆動の地球温暖化防止が得られる背景がある。 In the process of bringing the atmospheric pressure, the same speed, and the same volumetric power, kg weight m / second, to the platinum ball power of 36,000 times that of the existing steam turbine power generation, liquid such as mercury, low melting point alloy, water, etc. When gravity acceleration is added to the metal sphere or coated metal sphere vertically below the pressure, the work rate will increase significantly by simply accelerating the gravity acceleration rather than the input that increases the head at low speed, increasing the number of turbines and increasing the head. There is a background that can increase the work rate. The maximum acceleration on the earth is almost infinite in gravitational acceleration, and the best engine gravity solar thermal power generation with seawater temperature rise 0, CO2 exhaust 0, fuel cost 0, etc. Then, the air 28a heated by solar heat or geothermal heat with the maximum amount of the earth is compressed a plurality of times, and heat is recovered a plurality of times by the 1-multistage compression heat recovery unit 2C, and divided into 24-400 MPa compressed air cooling heat 28a + superheated steam heat 50. Save, superheated steam 50 + compressed air 28a ratio critical material gravity drive to drive generators, airplanes and ships, fever fuel, etc. are limited as hot and cold use prime, factory electrification prime and full electrification prime prime There is a background that can prevent global warming by leaving resources to descendants. Nearly infinite full blade ratio critical material Gravity Solar power generation and other battery drive and electric drive, such as various types of vehicles, various types of automobiles and moving means, etc. There is a background to prevent global warming.

日本国特許1607151号、特許1609617号、特許1645350号、特許1924889号、特許1912522号、特許1959305号、特許1986119号、特許2604636号、1992年米国特許5133305号、1993年米国特許5230307号、1995年米国特許5429078号、1997年米国特許5701864号、PCT国際出願番号PCT/JP97/01814号・米国特許第6119650号、中国特許第8818号、EU英国特許902175号、PCT国際出願番号PCT/JP97/02250号・米国特許第6263664号がある。Japanese Patent No. 1607151, Patent No. 1609617, Patent No. 1645350, Patent No. 1924889, Patent No. 1912522, Patent No. 1959305, Patent No. 11986119, Patent No. 2646636, 1992 U.S. Pat. No. 5,133,305, 1993 U.S. Pat. US Pat. No. 5,429,078, 1997 US Pat. No. 5,701,864, PCT International Application No. PCT / JP97 / 01814, US Pat. No. 6,119,650, Chinese Patent No. 8818, EU British Patent No. 902175, PCT International Application No. PCT / JP97 / 02250 No. 6,263,664.

PCT国際出願優先権主張出願等は、特願2009−048869号、出願日平成21年3月3日から特願2010−007805号、出願日平成22年1月18日まで326個の出願があります。There are 326 applications for PCT international application priority claim, including Japanese Patent Application No. 2009-048869, application date March 3, 2009 to Japanese Patent Application No. 2010-007805, application date January 18, 2010 .

既存世界の火力原子力発電所では、発電熱量全部で海水温度を摂氏7度上昇海水温度上昇量を100年で1000倍等とし、下降気流や上昇気流を限り無く増大して、異常乾燥山火事や砂漠化や集中豪雨や熱波や寒波等を限り無く増大し、日本近海は20年前後で台風風速や季節風風速を100m/秒等として、竜巻で海水を上空に吸引海水の集中豪雨等により陸地に塩の被覆を設けて人類陸上食物減少の危険を増大し、冬場に海面冷却海底に栄養分を供給していた自然現象を不可能として、微生物や植物プランクトンや海草類やサンゴ等を激減、食物連鎖により魚類を1/100等に激減人類の海中食物も限り無く減少し、旱魃や集中豪雨や台風や季節風を100年で10倍等に増大して、例えば台風や季節風を300m/秒等上限の無い異常気象の巨大化とし、海底岩盤膨張地震や津波を巨大化ハイチ超える災害を創造して、人類絶滅の危険を増大のため海水の豪雨等を阻止し、海水温度上昇0等地球温暖化防止して、人類絶滅を先送りする課題がある。又最近の課題は財政赤字国の急増です。最大原因は安価労働コスト国を世界の工場として簡単に利益を得る流行蔓延で、簡単に利益が得られる半面途上国全部が過去の日本のように物真似改良で世界一を競うため、安価優良製品続出して先進国製造設備壊滅財政赤字増大雇用壊滅の危険があり、物真似改良が可能な発明実施は時代遅れと認識し、世界規模100%独占を永遠に続ける発明品の極秘製造極秘運用として、利益率抜群の世界一にする課題がある。   At existing thermal power plants in the world, the seawater temperature rises by 7 degrees Celsius with all the heat generated, the seawater temperature rise increases by 1000 times in 100 years, and the downdrafts and updrafts increase as much as possible. Desertification, torrential rains, heat waves, cold waves, etc. will increase as much as possible, and the sea near Japan will be typhoon wind speed and seasonal wind speed at 100m / second in around 20 years. In order to increase the risk of human land food loss by providing a salt coating on the sea surface, making the natural phenomenon of supplying nutrients to the sea surface cooled seabed impossible in winter, the microorganisms, phytoplankton, seaweeds and corals are drastically reduced, the food chain As a result, the number of fish in the sea has been reduced to 1/100, and dredging, heavy rains, typhoons, and seasonal winds have increased 10 times in 100 years. For example, typhoons and seasonal winds have an upper limit of 300m / sec. No Create a disaster that will increase the danger of mankind, increase the risk of human extinction, prevent heavy rain in seawater, prevent sea warming, etc., and prevent global warming Thus, there is a challenge to postpone human extinction. A recent issue is the rapid increase in countries with deficits. The biggest cause is the epidemic that easily makes profits with low labor cost countries as the world's factories, and all the developing countries that can easily make profits compete for the best in imitation improvement like Japan in the past, so cheap and excellent products Proceeding with the destruction of industrialized equipment in the industrialized countries, there is a danger of increased employment deficit, and the implementation of inventions that can be imitated is recognized as out of date, and profits as a top-secret manufacturing operation of inventions that continue to be a 100% monopoly worldwide forever There is a challenge to be the best in the world.

冷熱+温熱製造の1〜複数段熱ポンプ1Gを、竪型全動翼比重大物質重力タービン8H直接駆動や発電機1電気で駆動し、24〜400MPa冷熱(圧縮空気質量)+温熱(圧縮空気熱量)を、海水温度上昇0燃料費0CO2排気0で製造して、温熱+冷熱で夫々加速駆動の各種竪型全動翼比重大物質重力発電や、竪型全動翼比重大物質重力太陽熱船舶や竪型全動翼比重大物質重力太陽熱飛行機にし、発電や船舶ではCO2を大気で吸入圧縮海底や海中に噴射供給自然現象高速化して、海底や海中に冷熱の酸素や窒素やCO2等で供給し、微生物や植物プランクトンや海草類やサンゴや魚類等を増殖人類の食物を増大して、飛行機はCO2排気0に近い宇宙飛行全盛1日に地球を16周する等とし、地球上何処でも日帰り旅行や大気中はCO2排気0飛行狙いとして、限りある石油資源等は必要最小限の使用とし、子子孫孫まで残すと共に世界規模100%独占して極秘製造極秘運用する発電や船舶や飛行機等として、利益率抜群の世界一や新規雇用抜群の世界一にし、旱魃や集中豪雨や台風や季節風や地震津波の巨大化を阻止して、既存世界の10倍発電量狙いとし、各種竪型全動翼比重大物質重力発電全盛にして、各種竪型全動翼比重大物質重力発電製造物燃料水駆動の電気駆動や冷熱(液体酸素や液体窒素)駆動にし、各種自動車類全盛や各種船舶類全盛や各種宇宙往還機類全盛にして、地球上何処でも日帰り旅行や全面電化住宅全盛や工場電化全盛や温熱と冷熱利用全盛にし、海水温度上昇0やCO2排気0や燃料費0で発電し、海水の豪雨等を阻止し地球温暖化防止して人類絶滅を先送りする。 A 1-multistage heat pump 1G for cold heat + hot heat production is driven by a vertical all-blade specific material gravity turbine 8H direct drive or generator 1 electricity, 24-400 MPa cold heat (compressed air mass) + hot heat (compressed air) The amount of calorie) is manufactured with seawater temperature rise 0 fuel cost 0 CO2 exhaust 0, and each type of vertical all-blade ratio critical material gravity power generation and vertical all-blade ratio critical material gravity solar thermal ship that is accelerated by heat and cold respectively Or a drought-type all-blade ratio critical material gravity solar thermal airplane, and in power generation and ships, CO2 is sucked into the atmosphere, compressed and injected into the seabed and under the sea, the natural phenomenon is accelerated, and cold oxygen, nitrogen, CO2 etc. are fed into the seabed and the sea And by increasing microorganisms, phytoplankton, seaweeds, corals, fishes, etc., increasing human food, the airplane makes 16 orbits around the Earth on a full day of space flight close to zero CO2 emissions, and so on. And CO in the atmosphere With the aim of zero exhaust emissions, the limited use of petroleum resources, etc. is used to the minimum necessary, and the world with outstanding profitability as power generation, ships, airplanes, etc. that keeps its children and descendants and monopolizes 100% globally and operates in secret No. 1 in the world with outstanding new employment, preventing droughts, torrential rains, typhoons, seasonal winds, and earthquakes and tsunamis, and aiming to generate 10 times more electricity than the existing world. It is prime, various vertical type blades important material gravity power generation product fuel water drive electric drive and cold heat (liquid oxygen and liquid nitrogen) drive, various automobile prime, various ship prime and various space return aircraft Make it a prime, day trip anywhere in the world, full-scale electrified housing prime, factory electrification prime, hot and cold use prime, power generation with seawater temperature rise 0, CO2 exhaust 0 and fuel cost 0, preventing heavy rain of seawater To prevent global warming To postpone the kind extinction.

竪型全動翼比重大物質重力タービン8H駆動にすると、落差を拡大出来る効果が大きく、大気圧同速度同容積仕事率を既存蒸気タービン発電の3.6万倍に近付けて発電する場合に発電量を増大する効果があり。竪型全動翼比重大物質重力温熱タービン8H+竪型全動翼比重大物質重力冷熱タービン8H駆動にすると、落差制限の場合に仕事率を3.6万倍に近付けて発電量や飛行速度や船舶速度を増大する効果が大きく、燃料消費を0や僅少に出来るため資源を子孫に残す効果が大きく、各種竪型全動翼比重大物質重力発電や各種竪型全動翼比重大物質重力太陽熱船舶や各種竪型全動翼比重大物質重力太陽熱飛行機では、CO2を大気と共に吸入各種重力タービン8H駆動し、夫々のタービン駆動や発電機1電力駆動多数の1〜複数段熱ポンプ1Gで複数回圧縮して、圧縮熱回収器2Cで複数回熱回収24〜400MPa冷熱+温熱に分割保存使用し、発電機1やスクリュー7Cやプロペラ7Aや回転翼7Bは、竪型全動翼比重大物質重力温熱タービン8H+竪型全動翼比重大物質重力冷熱タービン8H駆動として、過熱蒸気温熱50+圧縮空気冷熱28aで、ウォータージェット79や合体機関噴射部78を駆動するため、同一燃料量100〜1000倍回転出力や噴射推進出力狙いとし、海水温度上昇0燃料費0の発電狙いや、燃料費僅少で既存船舶や飛行機の10倍速度等、世界規模100%独占して製造運用する発電や船舶や飛行機や自動車等として、先進国用実験最良や利益率抜群の世界一や新規雇用抜群の世界一を狙える効果がある。 Using a vertical turbine blade-critical material gravity turbine 8H drive, the effect of expanding the head is large, and power generation occurs when the atmospheric pressure, the same speed, and the same volumetric power are close to 36,000 times those of existing steam turbine power generation. Has the effect of increasing the amount. When the vertical type moving blade ratio critical material gravity thermal turbine 8H + vertical type full blade ratio critical material gravity cooling / heating turbine 8H is driven, the power rate approaches 36,000 times when the head is limited, and the power generation, flight speed, etc. The effect of increasing the ship speed is great, and the fuel consumption can be reduced to 0 or a little, so the effect of leaving resources to the descendants is great, and various types of vertical all blade specific material gravity power generation and various vertical type all blade specific material gravity solar heat In a ship and various saddle-type all-blade-weight-critical material gravity solar thermal airplanes, CO2 is sucked together with the atmosphere and various gravity turbines 8H are driven, and each turbine drive and generator 1 are driven multiple times by 1 to multiple stage heat pumps 1G. Compressed and heat-recovered multiple times in the compression heat recovery unit 2C, and divided and used for 24 to 400MPa cold heat + heat. The generator 1, screw 7C, propeller 7A and rotor blade 7B Thermal Turbid 8H + 竪 type full blade ratio material gravity cooling / cooling turbine 8H is driven by the superheated steam temperature 50 + compressed air cooling heat 28a to drive the water jet 79 and the combined engine injection unit 78. Aiming at jetting propulsion output, aiming at power generation with zero seawater temperature rise and fuel cost 0, fuel generation is low and 10 times the speed of existing ships and airplanes, etc. As a result, it has the effect of aiming at the best in the world for experiments in advanced countries, the best in the world for profit margins, and the best in the world for new employment.

緑の地球は奇跡の産物で他の星に近付く危険が大きく、例えば中国が10%成長を100年続けると、火力発電や原子力発電により中国近海の海水温度上昇量が1000倍を超えるため、現在日本のゲリラ豪雨増大が海水の豪雨1000倍等となり、現在の魚類激減が0に近付く等人類絶滅が100年以内に急接近する可能性が強く、海水温度上昇0やCO2排気0の発電や燃料費僅少にする船舶では、膨大なCO2を大気と共に吸入圧縮温熱は可能な限り食糧生産や加熱等に使用して、冷熱28aの全部を海底や海中に窒素や酸素やCO2等の栄養分として供給海水冷却し、自然現象高速化2a水中微生物の食料を増大して、水中微生物のCO2等の消化能力を森林の数万倍狙い等に増大する効果が大きく、植物プランクトンや海草類やサンゴ等を増殖し、食物連鎖で魚類等を増殖人類の海中食物を大増大して、砂漠化や旱魃や集中豪雨や台風や季節風や地震津波等の巨大化を阻止し、海水の豪雨等を阻止して、人類で最も重要な人類絶滅を先送りする効果がある。 The green earth is a miracle product and has a high risk of approaching other stars. For example, if China continues to grow 10% for 100 years, the temperature rise in the sea near China will exceed 1000 times due to thermal power generation and nuclear power generation. There is a strong possibility that the extinction of mankind will soon approach within 100 years, such as the increase in guerrilla heavy rain in Japan is 1000 times the heavy rain in seawater, the current drastic decrease in fish is close to zero, etc. Power generation and fuel with zero seawater temperature rise and zero CO2 emissions In a ship with a low cost, a large amount of CO2 is used together with the atmosphere for suction compression heat as much as possible for food production and heating, etc., and the whole cold heat 28a is supplied as nutrients such as nitrogen, oxygen and CO2 to the seabed and sea. Cooling and speeding up natural phenomena 2a The effect of increasing the food of underwater microorganisms and increasing the digestion capacity of CO2 etc. of underwater microorganisms to aim for tens of thousands of times in forests, etc. Propagating fish, etc., breeding fish, etc. in the food chain Large increase in human underwater food, preventing desertification, drought, concentrated heavy rain, typhoon, seasonal wind, earthquake tsunami, etc. It has the effect of preventing and delaying the most important human race extinction.

各種竪型全動翼比重大物質重力太陽熱飛行機では、同一燃料量100〜1000倍回転出力や噴射推進出力で宇宙利用全盛を狙う効果があり、例えば噴射推進出力を既存ジェット機の100倍圧力10倍熱量噴射短時間1000倍噴射推進出力狙いとして、大気中は燃料量0のプロペラ飛行や回転翼飛行や噴射推進狙いにし、過熱蒸気膨張速度が真空で最大のため既存宇宙ロケット地上大量噴射は最悪と考え、既存航空機最高飛行高度付近より、24〜400MPa温熱50+24〜400MPa冷熱28aに複数回燃料噴射着火燃焼噴射のロケット推進にして、スペースシャトルの10〜20倍噴射圧力の合体機関噴射部狙いにし、宇宙到達燃料費を打上費用の1/100万狙いにして、既存世界の移動手段で燃料費が0に近い宇宙利用全盛を狙う効果と、資源を子孫に残す効果がある。 Various drought-type full-blade ratio critical material gravity solar thermal airplanes have the effect of aiming at the prime use of space with the same fuel amount 100-1000 times rotation output and jet propulsion output, for example, jet propulsion output 100 times pressure 10 times that of existing jet aircraft Heat injection for short time 1000 times injection propulsion output aim, in the atmosphere propeller flight of zero fuel amount, rotor blade flight and injection propulsion aim, superheated steam expansion speed is the maximum in vacuum, so existing space rocket ground mass injection is the worst Thinking from the vicinity of the highest flight altitude of the existing aircraft, the rocket propulsion of the fuel injection ignition combustion injection to the 24-400MPa warm heat 50 + 24-400MPa cold 28a, aiming at the combined engine injection part of the space shuttle 10-20 times injection pressure, Aiming for 1 millionth of the cost of reaching the universe to reach the launch cost, all the space utilization costs in the existing world will be close to 0 by means of transportation in the existing world. And the effect aimed at, has the effect of leaving the resources in the offspring.

竪型全動翼比重大物質重力タービン8Hの説明図(実施例1)Explanatory drawing of vertical turbine blade critical material gravity turbine 8H (Example 1) 内側動翼群60C外側動翼群60Dとタービン翼の説明図(実施例2)Inner blade group 60C and outer blade group 60D and turbine blades (Example 2) 竪型全動翼比重大物質重力温熱タービン8Hの説明図(実施例3)Explanatory drawing of vertical type moving blade ratio critical material gravity thermal turbine 8H (Example 3) 竪型全動翼比重大物質重力冷熱タービン8Hの説明図(実施例4)Explanatory drawing of vertical type moving blade ratio critical material gravity cooling and heating turbine 8H (Example 4) 太陽光加熱器2の説明図(実施例5)Explanatory drawing of the solar heater 2 (Example 5) スクリュー船舶39Dの説明図(実施例6)Explanatory drawing of screw ship 39D (Example 6) 水吸引79Xスクリュー船舶39Dの説明図(実施例7)Explanatory drawing of water suction 79X screw ship 39D (Example 7) 水吸引79X船舶38Cの説明図(実施例8)Explanatory drawing of water suction 79X ship 38C (Example 8) 空気吸引79Z船舶38Bの説明図(実施例9)Explanatory drawing of air suction 79Z ship 38B (Example 9) 空気吸引79Zスクリュー船舶39Eの説明図(実施例10)Explanatory drawing of the air suction 79Z screw ship 39E (Example 10) 合体機関噴射部78B太陽熱重力飛行機39Aの説明図(実施例11)Explanatory drawing of union engine injection part 78B solar gravity airplane 39A (Example 11) 合体機関噴射部78B太陽熱重力回転飛行機39B説明図(実施例12)Combined engine injection part 78B solar gravity rotating airplane 39B explanatory drawing (Example 12) 水吸引ウォータージェット79Uの説明図(実施例13)Explanatory drawing of water suction water jet 79U (Example 13) 水吸引ウォータージェット79Xの説明図(実施例14)Explanatory drawing of water suction water jet 79X (Example 14) 空気吸引ウォータージェット79Sの説明図(実施例15)Explanatory drawing of air suction water jet 79S (Example 15) 空気吸引ウォータージェット79Tの説明図(実施例16)Explanatory drawing of air suction water jet 79T (Example 16) 空気吸引ウォータージェット79Yの説明図(実施例17)Explanatory drawing of air suction water jet 79Y (Example 17) 空気吸引ウォータージェット79Zの説明図(実施例18)Explanatory drawing of air suction water jet 79Z (Example 18) 合体機関噴射部78Wの説明図(実施例19)Explanatory drawing of the union engine injection part 78W (Example 19) 合体機関噴射部78Vの説明図(実施例20)Explanatory drawing of the union engine injection part 78V (Example 20) 合体機関噴射部78Aの説明図(実施例21)Explanatory drawing of the united engine injection part 78A (Example 21) 合体機関噴射部78Bの説明図(実施例22)Explanatory drawing of the union engine injection part 78B (Example 22)

発明を実施するための形態が先の出願は次の理論最良エンジン発明が目的のため、自分だけ理解可能で第三者理解不可能な極秘でしたが、理論最良エンジンに到達第三者が実験可能な発明の具体化に挑戦します。既存エンジンが洗脳で長期間発明が阻止され、例えば既存最良蒸気タービン発電の大気圧同速度同容積仕事率kg重m/秒を、白金球仕事率の1/3.6万と僅少にし、静翼を動翼と交互に設けて堰き止めて回転出力を0に近付け、蒸気タービン発電の駆動熱量全部で海水温度7度上昇魚類激減、海底岩盤を膨張地震や津波を巨大化し、20年前後で日本近海の台風や季節風の上昇気流を巨大化100m/秒等にして、海水を上空に吸引海水の豪雨が予想される等、100年前後で陸地に塩の被覆を設けて食糧激減人類絶滅が急接近する危険があります。即ち既存技術の致命的欠点多数で発明が膨大になり過ぎるため、発明を符号の説明に記載すると共に、先の出願で再三説明した部分は省略し、竪型全動翼タービン以外3種類は横軸タービンで既存タービンに近いため、対向全動翼比重大物質重力タービン8P実施例で代用説明して、直列全動翼比重大物質重力タービン8P・食込全動翼比重大物質重力タービン8Pの代替説明にし、発電用比重大物質は資源量最大の水52a加速被覆鋼球で代替説明して、船舶用比重大物質は液体低融点合金3E駆動で代替説明し、飛行機用比重大物質は水銀3E圧力加速タングステン合金焼結球2Eで代替説明する等、常識を省略した発明の具体化に挑戦します。   The previous application was a form of carrying out the invention because the next theoretical best engine invention was the purpose, but it was a secret that was understandable only by me and could not be understood by a third party. We will challenge the realization of possible inventions. The existing engine was brainwashed and the invention was blocked for a long time. For example, the current best steam turbine power generation at the same pressure and volumetric capacity kg kg m / sec was reduced to 1 / 36,000 of the platinum ball power, The wings are alternately arranged with the moving blades and weired to bring the rotation output close to 0, the seawater temperature increased by 7 degrees in all the driving heat of steam turbine power generation, the fish drastically decreased, the submarine rock mass expanded into an expansion earthquake and tsunami, around 20 years ago The typhoon and the seasonal wind rising near Japan have been increased to 100m / sec., And a heavy rain of suctioned seawater is expected over the seawater. There is a risk of sudden approach. In other words, since the invention becomes too large due to many fatal defects of the existing technology, the invention is described in the explanation of the reference numerals, and the parts that have been repeatedly explained in the previous application are omitted, and the three types other than the vertical all blade turbine are horizontal. Since the axial turbine is close to the existing turbine, the opposed total blade ratio critical material gravity turbine 8P embodiment will be used as a substitute, and the series total blade ratio significant material gravity turbine 8P and the bite full blade ratio significant material gravity turbine 8P will be described. In the alternative explanation, the critical material for power generation is explained by replacing the water 52a accelerated coated steel ball with the largest amount of resources, the specific material for marine use is explained by the liquid low melting point alloy 3E, and the specific material for airplane is mercury. We will try to materialize the invention that omits common sense, such as 3E pressure accelerated tungsten alloy sintered ball 2E.

図1実験が必要な理論最良エンジン、真空加速の竪型全動翼比重大物質重力タービン8H発電は、内側動翼群60C外側動翼群60Dの内側動翼8c外側動翼8c回転方向180度相違の時点で夫々を略同形同面積とし、互いに反対方向に回転する竪型全動翼を可能に内側軸装置60A外側軸装置60Bを、可能な限り全自動加工可能に同径略同形段落毎環状ネジ組立9回転止固定にして、多数タービン翼8cの多段動翼群多段タービン8H軽量化や組立容易にし、大重量を支える大径部追加微傾斜追加金属製Oリング具備等として、油圧浮上追加実験最良の油圧浮上推力軸受80aにし、軸受80や比重大物質を真空加速する重力加速部1g継ぎ手には、発電機1を駆動する横軸1h貫通穴を具備して、発電機1をタービン外箱77aの外で複数駆動とし、多段竪型全動翼比重大物質重力タービン8H回転方向交互駆動して、重力加速部1g加速により次のタービン8Hを駆動次々に交互駆動し、大気圧同速度同容積仕事率kg重m/秒を、既存蒸気タービン発電の3.6万倍白金球仕事率に近付け、空気抽出室51Aで気体専用冷熱冷却乃至水冷却して空気抽出器51で最高真空にして、温熱50や冷熱28aは無限用途対応の電気+冷熱+温熱供給設備3Dで利用し、冷熱回収後の冷熱28aを冷熱海水混合器2Hで海洋深層水に混合選択可能にし、海低に窒素や酸素やCO2を供給微生物や人類の食物を増大する自然現象高速化2aにして、海水温度上昇0CO2排気0燃料費0利益率世界一の発電方法とし、各種エネルギ保存サイクル合体機関及び合体方法にする。 Fig. 1 Theoretical best engine that needs experiment, vacuum accelerated vertical type full blade ratio material gravity turbine 8H power generation, inner rotor blade group 60C outer rotor blade group 60D inner rotor blade 8c outer rotor blade 8c rotation direction 180 degrees At the time of difference, the inner shaft device 60A and the outer shaft device 60B have the same diameter and substantially the same shape so that the inner shaft device 60A and the outer shaft device 60B can be fully automated as much as possible. As each annular screw assembly is fixed at 9 rotations, the multistage turbine blade group 8H of the multiple turbine blades 8c is made lighter and easy to assemble, and has a large diameter additional finely inclined additional metal O-ring that supports a large weight. Additional levitation experiment The hydraulic levitation thrust bearing 80a is the best, and the gravity acceleration part 1g joint for accelerating the bearing 80 and specific material by vacuum is provided with a horizontal shaft 1h through-hole for driving the generator 1, and the generator 1 Outside of turbine outer box 77a Multiple drive, multistage saddle type all blades ratio critical material gravity turbine 8H rotation direction alternate drive, the next turbine 8H is driven alternately by gravity acceleration part 1g acceleration, one after another, atmospheric pressure same speed same volume work kg Heavier m / second is brought close to the 36,000 times the platinum ball power of the existing steam turbine power generation, and the air extraction chamber 51A is cooled with water or cooled with water to make the maximum vacuum with the air extractor 51. Cold heat 28a is used in electricity + cold heat + hot water supply equipment 3D for infinite use, and cold heat 28a after cold heat recovery can be mixed with deep sea water using cold hot water mixer 2H, and nitrogen, oxygen and CO2 can be selected at sea level. The natural phenomenon speeding up 2a that increases the supply of microorganisms and human foods, seawater temperature rise 0CO2 exhaust 0 fuel cost 0 profit rate The world's best power generation method, various energy storage cycle coalescence engine and coalescence method.

竪型全動翼比重大物質重力タービン8Hは、温熱加速・冷熱加速・真空加速3種類の内比重大物質重力真空加速使用として、タービン外箱77a内に1〜120段等落差使用無制限とし、水3E圧力比重利用で小径被覆鋼球2Eを竪型多数タービン翼8cに混合噴射して、大部分を被覆鋼球の転がり接触衝撃を低減作用時間延長タービン翼8c駆動とし、比重僅少や表面張力僅少な水3Eの作用を僅少にする、シリコン樹脂被覆又はフッ素樹脂被覆を設けた被覆鋼球やタービン翼選択可能として、プラスチックや軽合金や超硬合金で軽量化タービン8Hも選択可能とし、比重大物質上昇装置2Fにより被覆鋼球2E水3Eを最上部に上昇保存して、比重大物質加速機6Wの水3E圧力で被覆鋼球2Eを比重利用垂直下方に混合噴射して、被覆鋼球中核の重力加速部1g加速真空加速で最適速度にして、竪型全動翼比重大物質重力タービン8Hを駆動し、多段タービン8H多数発電機発電や低速回転発電3.6万倍を千倍等にして、内側外側夫々同面積多数タービン翼8cに噴射し、被覆鋼球2Eの転がり接触中核の回転出力発生として、発電機1を駆動その電力で1〜複数段熱ポンプ1G多数を駆動し、1〜12倍面積タービン翼8cの外側動翼群60D内側動翼群60Cの回転方向を、二重反転磁気摩擦装置84又は二重反転歯車装置84Yにより回転方向交互にし、振動や騒音を相殺僅少にした発電方法にする。 The vertical all-blade ratio critical material gravity turbine 8H has three types of internal ratio critical material gravity vacuum acceleration use of thermal acceleration / cooling acceleration / vacuum acceleration. By using water 3E pressure specific gravity, small diameter coated steel balls 2E are mixed and injected into a large number of vertical turbine blades 8c to reduce the rolling contact impact of the coated steel balls, and to reduce the contact time of the turbine blades 8c. It is possible to select coated steel balls or turbine blades with silicon resin coating or fluororesin coating to minimize the action of the slight amount of water 3E, and light weight turbine 8H can be selected with plastic, light alloy or cemented carbide, and the specific gravity The coated steel ball 2E water 3E is raised and stored at the top by the large material raising device 2F, and the coated steel ball 2E is mixed and jetted vertically below the specific gravity using the water 3E pressure of the specific material accelerator 6W, and coated. Gravity accelerating part at the core of the sphere 1g acceleration Vacuum acceleration is used to drive the saddle type all-blade specific material gravity turbine 8H, multistage turbine 8H multi-generator power generation and low-speed rotation power generation 36,000 times 1,000 times In the same manner, a large number of inner and outer surfaces are injected onto the turbine blades 8c, and the generator 1 is driven to generate the rotational output of the rolling contact core of the coated steel ball 2E. , 1-12 times area turbine blade 8c outer rotor blade group 60D inner rotor blade group 60C is rotated in the direction of rotation by the counter rotating magnetic friction device 84 or counter rotating gear device 84Y to cancel vibration and noise. Use a minimal power generation method.

発電では比重大物質を被覆鋼球2E水3E使用で説明し、海洋深層水52aを駆動水や冷却水で優先使用して、電気需要や温熱50や冷熱28a需要は無限に近く、発電機1や1〜複数段熱ポンプ1G駆動も優先とし、竪型全動翼比重大物質重力タービン8H横軸1h駆動発電機1の電力駆動、1段熱ポンプ1Gで空気を吸入圧縮20〜100度前後にして、1段圧縮熱回収器2C空気熱交換器2Xで別空気28aを加熱し、20〜100度前後に加熱1段熱ポンプ1Gで100〜500度等に圧縮して、別空気で熱回収圧縮を繰り返す圧縮空気28a質量増大の熱製造にし、2〜複数段熱ポンプ1Gで1〜複数回圧縮空気28aを1〜複数回高温にして、2〜複数段圧縮熱回収器2C空気熱交換器2Xで1〜複数回熱回収低温にし、圧縮空気28a圧力を1〜複数回上昇水熱交換器2Yでは過熱蒸気温熱50製造して、圧縮空気28aや過熱蒸気50の圧力増大で温熱や冷熱需要に対応し、太陽熱を回収しない場合も温熱50+冷熱28aの生産、冷熱供給中核の電気+冷熱+温熱供給設備3Dにして、200度前後24〜400MPa圧縮空気28a冷熱を冷熱室3Aに+400度前後24〜400MPa過熱蒸気50温熱を温熱室3Bに分割保存使用し、例えばメタンハイドレートに温熱50を注入メタン回収して、冷熱28aで冷却液体メタンで利用し、炊飯器や洗濯乾燥機を温熱50で駆動する台所革命にして、暖房や冷房等に温熱50や冷熱28aを使用し、温室栽培や氷製造等無限用途対応の加熱革命や冷却革命にして、冷熱28a使用後は可能な限り自然現象高速化2aする。 In power generation, specific critical substances are explained by using coated steel balls 2E and water 3E, and the deep ocean water 52a is preferentially used for driving water and cooling water, so that the demand for electricity, heat 50 and cold 28a is almost infinite. Also, priority is given to 1G multi-stage heat pump 1G drive, vertical type moving blade ratio critical material gravity turbine 8H horizontal axis 1h drive power generator 1 drive, 1 stage heat pump 1G sucks and compresses air around 20-100 degrees Then, the separate air 28a is heated by the first-stage compression heat recovery unit 2C air heat exchanger 2X, compressed to about 100 to 500 degrees by the heated first-stage heat pump 1G at about 20 to 100 degrees, and heated by another air. Compressed air 28a mass increase heat production that repeats recovery and compression, 2 to multiple stage heat pump 1G, 1 to multiple times compressed air 28a to 1 to multiple times high temperature, 2 to multiple stage compressed heat recovery unit 2C air heat exchange Heat recovery at low temperature one or more times in the vessel 2X, compressed air The water heat exchanger 2Y raises the pressure 28a one or more times to produce the superheated steam temperature 50, respond to the demand for heat and cold by increasing the pressure of the compressed air 28a and the superheated steam 50, and even when the solar heat is not recovered, the heat 50 + cold 28a production, cold power supply core electricity + cold heat + hot water supply facility 3D, 24 to 400MPa compressed air 28a around 200 degrees Compressed air 28a cold heat room 3A + around 400 degrees 24-400MPa superheated steam 50 hot water divided into hot room 3B For storage use, for example, heat 50 is injected into methane hydrate, methane is recovered, cooling 28a is used as cooling liquid methane, rice cookers and washing dryers are turned into a kitchen revolution driven by heat 50, for heating and cooling, etc. Use heat 50 and cold 28a to make heating and cooling revolutions for endless applications such as greenhouse cultivation and ice production. After using cold 28a, natural phenomena are as fast as possible 2a to.

図2の図1内側動翼群60C外側動翼群60D夫々のタービン翼8cは、回転方向180度相違の時点で夫々を同形同面積として互いに反対方向に回転する構成とし、内側動翼群60Cは内側軸装置60Aより外周方向にタービン翼8c多数を突設して、外側動翼群60Dを外側軸装置60Bより中心方向にタービン翼8c多数を具備し、内側軸装置60A外側軸装置60Bは夫々段落毎同径略同形ネジ組立9として、軽合金やプラスチックや超硬合金等でタービン8Hの軽量化を可能にし、多段動翼群多段タービン8Hの軽量化や全自動加工容易や組立容易にして、大重量を支える油圧浮上推力軸受80aを空気軸受の空気圧を油圧とし、油圧圧力面積増大微傾斜や金属製Oリング複数具備等実験最良に移行として、発電の場合は資源量比重表面張力最大の濃縮海洋深層水3E+被覆鋼球2E駆動優先とし、取水温度11〜12℃等低温水52a使用として、排気室に空気抽出室51Aを設けて気体専用冷却にし、空気抽出器51で空気を抽出最高真空最大回転出力にして、逆浸透膜や電気透析で濃縮海洋深層水3E凍結温度−21℃狙いで冷熱タービンに対応し、回転出力増大や飲料水製造等水ビジネス参入として、清浄でミネラルが豊富な塩の製造利用や化粧品や飲料や食品製造等とし、被覆鋼球中核駆動で仕事率を3.6万倍に近付けた重力発電にし、互いに反対方向に回転する全動翼の先行技術が皆無のため実験が必要ですが、竪型全動翼比重大物質重力タービン8Hの小型大出力が実験結果実証された場合は、小型大出力が横型全動翼比重大物質重力タービン8Pの5〜10倍等のため、竪型全動翼比重大物質重力タービン8Hの研究開発一本化の可能性がある。   The turbine blades 8c of the inner rotor blade group 60C and the outer rotor blade group 60D of FIG. 2 are configured to rotate in opposite directions with the same shape and the same area when the rotation directions are different by 180 degrees. 60C projects a large number of turbine blades 8c in the outer circumferential direction from the inner shaft device 60A, and includes a plurality of outer blade groups 60D in the center direction from the outer shaft device 60B. The inner shaft device 60A and the outer shaft device 60B. Enables the weight of the turbine 8H to be made of light alloy, plastic, cemented carbide, etc., as the same-diameter substantially the same screw assembly 9 for each paragraph, making the multi-stage moving blade group multi-stage turbine 8H lighter, easier to fully machine, and easier to assemble In the case of power generation, the ratio of the amount of resources in the case of power generation Concentration of deep ocean water 3E + coated steel ball 2E with the highest surface tension is prioritized, low-temperature water 52a such as intake temperature 11-12 ° C. is used, and an air extraction chamber 51A is provided in the exhaust chamber for exclusive cooling of the gas. Extraction of air to maximum vacuum maximum rotation output, reverse osmosis membrane and electrodialysis to concentrate deep ocean water 3E freezing temperature -21 ℃ aiming at cold turbines, clean as water business entry such as increased rotation output and drinking water production In the production and use of salt rich in minerals, cosmetics, beverages, foods, etc., the core power of the coated steel ball is driven by gravity power generation close to 36,000 times, and all rotor blades rotating in opposite directions are used. Although there is no prior art, an experiment is necessary. However, if the small large output of the vertical type moving blade ratio critical material gravity turbine 8H is proved as a result of the experiment, the small large output is the horizontal type full blade ratio significant material gravity turbine 8P. Of 5 For 10-fold, etc., there is a possibility of research unification of the vertical total rotor blade specific gravity larger material gravity turbine 8H.

図3の竪型全動翼比重大物質重力温熱タービン8Hは、温熱加速・冷熱加速・真空加速3種類の内、温熱加速使用で落差制限の発電で説明船舶や飛行機は別説明として、タービン外箱77a内垂直に1〜複数段に設け、用途に合わせた台数使用にし、比重大物質上昇装置2Fにより比重大物質を最上部に上昇保存して、図4太陽光加熱器2や変形等各種太陽光加熱器により、吸入空気28aを太陽光と長レンズ2dと熱吸収材2Bにより加熱し、横軸1h駆動発電機電力駆動の1段熱ポンプ1Gで吸入圧縮800度前後にして、1段圧縮熱回収器2C空気熱交換器2Xで太陽光加熱の別空気28aを加熱し、500度前後に加熱1段熱ポンプ1Gで1200度等に圧縮熱回収200度等として、高圧冷熱28aの質量増大にし、2〜複数段熱ポンプ1G2〜複数段圧縮熱回収器2C選択使用して、複数回圧縮複数回熱回収して高圧圧縮空気冷熱28a製造にし、200度前後24〜400MPa圧縮空気28a冷熱を冷熱室3Aに+400度前後24〜400MPa過熱蒸気50温熱を温熱室3Bに分割保存して、比重大物質加速機6Wの3E圧力で2Eを比重差利用垂直下方に噴射大部分を2Eの噴射にする基本理念とし、2Eの転がり接触で回転出力の増大として、重力加速部1gで重力加速最適速度として1段タービン8Hを駆動し、2段重力加速部1gで重力加速最適速度として、2段タービン8Hを駆動3段重力加速する多段駆動にし、タービン8H8H継ぎ手部に貫通穴及び横軸1hを設けて、図に無い発電機1複数を駆動多段タービン回転方向交互にして、内外180度反対で夫々同形同面積多数タービン翼8cの回転方向も交互にし、振動や騒音を相殺僅少にした発電にする。   Fig. 3 vertical type moving blade ratio critical material gravity thermal turbine 8H is a thermal acceleration / cooling acceleration / vacuum acceleration of 3 types of thermal acceleration use, explanation of head-limited power generation The box 77a is vertically arranged in one to a plurality of stages, and is used in a number corresponding to the application, and the specific critical substance rising device 2F is stored at the top by storing the specific critical substance riser 2F. The intake air 28a is heated by sunlight, the long lens 2d, and the heat absorbing material 2B by the solar heater, and the suction compression is set to about 800 degrees by the horizontal heat pump 1G driven by the generator driven by the horizontal axis 1h. Mass of high-pressure cold heat 28a by heating another air 28a of solar heating with the compressed heat recovery unit 2C air heat exchanger 2X, heating it to around 500 degrees, compressing heat recovery to 200 degrees, etc. with a 1-stage heat pump 1G, etc. 2 to multi-stage heat to increase Use the compressor 1G2 to select the multiple stage compression heat recovery unit 2C, compress the heat several times and recover the heat multiple times to produce the high-pressure compressed air cooling heat 28a, and supply the cold air of about 24 to 400 MPa compressed air 28a to the cooling chamber 3A around +400 degrees 24 to 400 MPa Superheated steam 50 heat is divided and stored in the thermal chamber 3B, and the basic philosophy is that 2E is injected vertically under the specific gravity difference 2E with 3E pressure of the specific material accelerator 6W. As the rotational output increases due to rolling contact, the first stage turbine 8H is driven as the optimum gravity acceleration speed by the gravity acceleration section 1g, and the second stage turbine 8H is driven as the optimum gravity acceleration speed by the second stage gravity acceleration section 1g. The turbine 8H8H joint portion is provided with a through hole and a horizontal shaft 1h, and a plurality of generators (not shown) are alternately driven in the rotational direction of the driving multistage turbine so that the inner and outer 18 Rotation direction of each isomorphic same area multiple turbine blades 8c in degrees opposition to alternately to power generation in which the vibration and noise to cancel significant.

竪型全動翼比重大物質重力温熱タービン8Hは、比重大物質2E〜3E最適速度駆動として、小径金属球2E使用で衝撃を低減タービン翼保護し、更にシリコン樹脂被覆又はフッ素樹脂被覆を設けた小径金属球やタービン翼選択可能として、強化プラスチックや軽合金や超硬合金で軽量化タービン8Hも選択可能とし、1〜複数段圧縮熱回収器2Cには、夫々水熱交換器2Yや空気熱交換器2Xや比重大物質熱交換器2Zを選択具備駆動して、太陽熱を種に1〜複数段熱ポンプ1Gと1〜複数段圧縮熱回収器2Cにより、大量の温熱50+冷熱28aを製造電気+冷熱+温熱供給設備としても分割保存し、小型簡単な各種移動手段に供給駆動や冷熱+温熱利用全盛にすると共に、過熱蒸気50温熱加速で竪型全動翼比重大物質重力温熱タービン8Hを駆動して、発電用温熱タービン8H排気の過程では、排気室に空気抽出室51Aを設けて過熱蒸気50のみ冷却する冷熱海水混合器2Hを、図4冷熱回収器103冷熱回収後の冷熱28a混合の濃縮海洋深層水で構成し、自然現象高速化2aの過程で専用冷却して空気抽出器51で空気抽出して、最高真空最大回転出力の自然現象高速化2aの過程で海低に注入供給海水冷却し、過熱蒸気50を復水にして海底に冷熱28aの窒素や酸素やCO2を混合溶解して、微生物や植物プランクトンや海草類やサンゴ等を増殖、食物連鎖等で魚類等人類の食物を増大し、復水を復水ポンプ1Fと水熱交換器2Yで過熱蒸気50にして、海中微生物等夫々に栄養分供給CO2等の消化能力を森林の数万倍等に増大して、海水温度上昇0燃料費0で地球温暖化防止する。 Vertical type blade specific gravity material gravity thermal turbine 8H is a specific material 2E-3E optimum speed drive, reduced impact by using small diameter metal sphere 2E, turbine blade protection, and further provided with silicon resin coating or fluororesin coating Lightweight turbine 8H can be selected with reinforced plastic, light alloy or cemented carbide to select small-diameter metal spheres and turbine blades, and water heat exchanger 2Y and air heat are used for 1 to multistage compression heat recovery unit 2C, respectively. Select and drive the exchanger 2X and the specific material heat exchanger 2Z to produce a large amount of hot 50 + cold heat 28a using solar heat as a seed and 1 to multiple stage heat pump 1G and 1 to multiple stage compressed heat recovery unit 2C + Cold energy + Heat supply equipment is divided and stored as a small and simple moving means, and power and cooling + heat utilization is primed, and overheated steam 50 heat acceleration accelerates the vertical type moving blade ratio material gravity gravity heat turbine 8H is driven, and in the process of exhausting the thermal turbine for power generation 8H, the cold seawater mixer 2H that provides the air extraction chamber 51A in the exhaust chamber and cools only the superheated steam 50 is converted into the cold heat after the cold heat recovery in FIG. Concentrated deep ocean water mixed with 28a, specially cooled in the process of speeding up natural phenomenon 2a, extracted with air extractor 51, and reduced to sea level in the process of speeding up of natural phenomenon 2a with maximum vacuum maximum rotation output Cooling by injecting seawater, condensing superheated steam 50, mixing and dissolving nitrogen, oxygen and CO2 of cold heat 28a on the seabed, proliferating microorganisms, phytoplankton, seaweeds and corals, etc. Increase the food, make the condensate into superheated steam 50 with the condensate pump 1F and the hydrothermal exchanger 2Y, increase the digestive capacity of the nutrient supply CO2 etc. to each of the marine microorganisms, etc. tens of thousands times the forest, Temperature rise 0 Fuel cost 0 To prevent global warming.

発電では被覆鋼球2Eを水3E圧力加速で説明し、濃縮海洋深層水52aを駆動水や冷却水で優先使用して、逆浸透膜や電気透析等濃縮使用の過程で飲料水の製造等水ビジネス参入とし、清浄でミネラルが豊富な塩の製造利用や化粧品や飲料や食品製造等として、温熱タービン8Hを駆動温度上昇した比重大物質2E〜3Eで冷熱タービン8Hを駆動し、比重大物質2E〜3Eを冷却冷熱28a温度上昇冷熱タービン出力増大して、2E〜3Eで温熱タービン8Hを駆動2E〜3Eの温度上昇し、その被覆鋼球2Eや濃縮深層水3Eで冷熱タービン8Hを駆動して、2E〜3Eを冷却温度低下して温熱タービン8Hを駆動温度上昇する循環にし、内側動翼群60C外側動翼群60D夫々のタービン翼8cは、回転方向180度相違の時点で夫々を同形同面積として互いに反対方向に回転する構成とし、大重量を支える油圧浮上推力軸受80aを設け、可能な限り全自動加工可能に段落毎同径略同形ネジ組立9回転止固定として、多段動翼群と多段タービン軽量化や全自動加工容易や組立容易にし、比重大物質を加速する重力加速部1g継ぎ手には、発電機1を駆動する横軸1h貫通穴を具備して、発電機1をタービン外箱77aの外で駆動し、大気圧同速度同容積仕事率kg重m/秒を、既存蒸気タービン発電の3.6万倍に近付ける比重大物質重力の回転出力発生にして、1〜複数段熱ポンプ1Gで圧縮1〜複数段圧縮熱回収器2Cで熱回収し、冷熱28a+温熱50を製造保存して、発電や船舶駆動や飛行機駆動等、各種合体手段で各種エネルギ保存サイクル合体機関にする。 In power generation, the covered steel ball 2E is explained with water 3E pressure acceleration, the concentrated deep ocean water 52a is preferentially used in driving water and cooling water, and drinking water is produced in the process of concentration and use such as reverse osmosis membranes and electrodialysis. As a business entry, as a manufacturing and use of clean and mineral-rich salt, cosmetics, beverages and food production, etc., the thermal turbine 8H is driven by the specific critical material 2E-3E with the driving temperature increased, and the specific critical material 2E -3E is increased in cooling / cooling heat 28a temperature, the output of the cooling turbine is increased, 2E-3E is driven in the heating turbine 8H, 2E-3E is increased in temperature, and the coated steel ball 2E or concentrated deep water 3E is driven in the cooling turbine 8H 2E to 3E are circulated so that the cooling temperature is lowered and the thermal turbine 8H is increased in driving temperature, and the turbine blades 8c of the inner rotor blade group 60C and outer rotor blade group 60D have their rotation directions different by 180 degrees. With the same shape and the same area and rotating in opposite directions to each other, provided with a hydraulically levitated thrust bearing 80a that supports a large weight and capable of fully automatic machining as much as possible. The gravity acceleration part 1g joint that makes the blade group and multi-stage turbine lighter and more fully automatic and easy to assemble, and accelerates specific material is equipped with a horizontal shaft 1h through hole that drives the generator 1, 1 is driven out of the turbine outer box 77a, and the atmospheric pressure, the same speed, and the same volumetric power, kg weight m / sec, are set to generate a rotational output of specific gravity material gravity that is close to 36,000 times that of the existing steam turbine power generation, 1 to multi-stage heat pump 1G to compress heat 1 to multi-stage compression heat recovery unit 2C to recover heat, manufacture and store cold 28a + heat 50, various energy storage cycles with various coalescence means such as power generation, ship drive and airplane drive Make it a coalition organization.

図4の竪型全動翼比重大物質重力冷熱タービン8H発電も同様に、比重大・表面張力大・凍結温度−21℃等の、濃縮海洋深層水52aを駆動水3Eや海洋深層水冷却水で優先使用して、図3温熱タービン駆動で温度上昇した比重大物質2E〜3Eを、比重大物質上昇装置2Fで最上部に上昇保存し、比重大物質加速機6Wの3E圧力で2E噴射比重差利用大部分を被覆鋼球2E噴射にして、圧縮空気28a冷熱加速重力加速部1G重力中核加速し、竪型全動翼比重大物質重力冷熱タービン8Hを、比重大物質2E〜3E最適速度の転がり接触で駆動して、駆動の過程で絶対0度に近付く圧縮空気28aを温度上昇した比重大物質2E〜3Eで加熱し、圧縮空気28a容積速度を増大して、タービン出力を増大して比重大物質2E〜3Eを冷却し、冷却した比重大物質2E〜3Eで図3温熱タービン8Hを駆動、比重大物質温度を上昇する循環として、排気室に空気抽出室51A合流抽出器51冷熱回収器103を設けて、アルコール1Cで冷熱52e回収した冷熱28aにし、冷熱28aを合流抽出器51で図3冷熱海水混合器2Hの海洋深層水冷却水に合流混合して、過熱蒸気50を冷却復水にする過程で自然現象高速化2aし、海底に窒素や酸素やCO2を供給微生物ヤプランクトンや海草等を増殖して、食物連鎖等で魚類や海草等人類の食物を増大する方法とした、竪型全動翼比重大物質重力冷熱タービン8Hにする。 Similarly, the vertical all-blade specific gravity gravity refrigeration turbine 8H power generation shown in FIG. 4 uses the concentrated deep ocean water 52a having specific gravity, large surface tension, freezing temperature -21 ° C, etc. as driving water 3E and deep ocean water cooling water. 3E, the specific critical material 2E to 3E whose temperature has been increased by the driving of the thermal turbine shown in FIG. 3 is stored at the top by the specific critical material lift device 2F, and the 2E injection specific gravity at the 3E pressure of the specific critical material accelerator 6W. Most of the difference use is coated steel ball 2E injection, compressed air 28a cold acceleration gravity acceleration part 1G gravity core acceleration, vertical type moving blade ratio critical material gravity cooling turbine 8H, specific critical material 2E-3E of optimum speed Driven by rolling contact, the compressed air 28a, which approaches absolute 0 degrees in the driving process, is heated by the specific material 2E to 3E whose temperature has been increased, the volume speed of the compressed air 28a is increased, the turbine output is increased and the specific gravity is increased. Cold large substances 2E-3E Then, the heated specific turbine 2H to 3E are used to drive the thermal turbine 8H in FIG. 3 and the exhaust chamber is provided with an air extraction chamber 51A confluence extractor 51 cold recovery unit 103 for circulation to increase the specific critical material temperature. In the process of converting the superheated steam 50 into the cooling condensate, the cold heat 28a is recovered into the cold heat 28a collected by the cold heat 52e, and the cold heat 28a is merged and mixed with the deep sea water cooling water of the cold seawater mixer 2H in FIG. 2a, supplying nitrogen, oxygen, and CO2 to the seabed. Proliferating microorganisms such as yaplankton and seagrass, and increasing the food of humans such as fish and seaweed in the food chain. Gravity cold heat turbine 8H.

竪型全動翼比重大物質重力冷熱タービン8H回転出力発生の過程では、被覆超硬合金等タービン翼摩耗防止選択可能として、垂直に多段に設けて用途に合わせたタービン台数使用にし、絶対0度に近付く圧縮空気28aを比重大物質2E〜3Eで加熱容積速度を増大して、重力加速度に追加したタービン8Hの回転出力増大し、冷熱タービン8H内側動翼群60Cや外側動翼群60Dや排気より、冷熱回収器103で冷熱回収冷熱加熱で回転出力増大して、残りの冷熱の低温圧縮空気28aを合流抽出器51で吸入圧縮し、図3温熱タービン8Hの海洋深層水52a冷却水に合流混合して、冷熱海水混合器2Hと自然現象高速化2aで温熱タービン8H排気の過熱蒸気50を冷却復水にし、自然現象高速化2aして窒素や酸素やCO2を海底に供給して、内側動翼群60C外側動翼群60D夫々のタービン翼8cは、回転方向180度相違の時点で夫々を同形同面積として互いに反対方向に回転する構成とし、動翼群は段落毎同径略同形ネジ組立9回転止固定にすると共に、大重量を支える油圧浮上推力軸受80aを具備し、多段タービン軽量化や全自動加工容易や組立容易にして、図3同様に高圧の冷熱28a+温熱50を大量生産電気+冷熱+温熱供給設備としても使用するエネルギ保存サイクルにし、大気圧同速度同容積仕事率kg重m/秒を、既存蒸気タービン発電の3.6万倍に近付けて、タービン翼8cに噴射被覆鋼球2E転がり接触中核の回転出力発生とし、各種エネルギを最適合体方法とした各種エネルギ保存サイクル合体機関にする。 In the process of generating the vertical output of gravity-cooled turbine 8H, which is a significant material for all vertical blades, it is possible to select the prevention of wear of turbine blades such as coated cemented carbide. Compressed air 28a approaching the pressure is increased by the specific critical substances 2E to 3E to increase the heating volume speed, the rotational output of the turbine 8H added to the gravitational acceleration is increased, the cooling turbine 8H inner blade group 60C, outer blade group 60D and exhaust Thus, the rotational output is increased by the cold recovery by the cold recovery unit 103, and the remaining cold cold compressed air 28a is sucked and compressed by the combined extractor 51 and merged with the deep ocean water 52a cooling water of the thermal turbine 8H in FIG. Mixing, cooling seawater mixer 2H and natural phenomenon speedup 2a to cool the superheated steam 50 exhausted from the thermal turbine 8H, and condensing nitrogen, oxygen and CO2 under the natural phenomenon speedup 2a The turbine blades 8c of the inner moving blade group 60C and the outer moving blade group 60D are configured to rotate in opposite directions with the same shape and the same area when the rotational directions are different by 180 degrees. Each screw assembly with the same diameter of approximately the same diameter is fixed to 9 rotations, and is equipped with a hydraulically levitated thrust bearing 80a that supports a large weight, making the multistage turbine lighter, easy to fully machine, and easy to assemble. The energy storage cycle that uses 28a + heat 50 as mass production electricity + cold heat + heat supply equipment, and the atmospheric pressure, the same speed, and the same volumetric power, kg weight m / second, is close to 36,000 times that of the existing steam turbine power generation. The turbine blade 8c is made to generate the rotational output of the core in the rolling contact with the injection-coated steel ball 2E, and various energy storage cycle coalescing engines using various energy as the optimum coalescence method are obtained.

図5の太陽光加熱器2は各種水面を利用し、地球最大熱量の太陽光を矩形長レンズ2d複数重ねて直線状に集めて、焦点距離最短の幅最大狙う長レンズ2dで熱吸収材2B温度を上昇して、空気路28A空気28a温度を燃料費0で上昇し、1〜複数段熱ポンプ1Gで1日に3日分熱製造等として、既存のレンズ断面を直線状に延長矩形の長レンズ2dとしてレンズ材質全部を使用可能とし、発泡プラスチック等の断熱材2cを半筒形外箱77Bで囲って円筒等の長大な筒を設けて、その中に耐熱材2Aを設けて太陽熱で高温にする板状熱吸収材2Bで空気28aを加熱し、上部に複数重ねの幅広長大な長レンズ2dを継手80A+締付具80Bで密封真空断熱可能に設けて、焦点距離最短幅最大可能に長手方向や直角方向には継手80Aで延長可能複数を直角継手で一纏めにし、熱ポンプ1Gで複数吸入空気路28Aから加熱空気28aを吸入制御可能にして、水上で東から西に180度回転太陽光と直角にする太陽光加熱器2とし、更に傾斜して太陽光に2方向直角維持回転する装置として、空気28aを加熱1〜複数段熱ポンプ1Gで吸入圧縮800〜1200度等を繰返し、1〜複数段圧縮熱回収器2Cで繰返し熱回収繰返し200度等にするエネルギ保存サイクルにして、太陽光を長レンズ2dで集める空気加熱は、発電場所やウォータージェット79や合体機関噴射部78等用途に合わせて変形使用し、地熱での空気加熱は発電や熱製造専用で使用し、ウォータージェット79駆動や合体機関噴射部78駆動の場合は、タービン排気に変えた噴射推進に発電量に変えた回転出力や冷熱28a+温熱50の熱製造にして、各種温熱利用全盛や各種冷熱利用全盛にする。   The solar heater 2 shown in FIG. 5 uses various water surfaces, and collects sunlight having the maximum amount of heat in a straight line by overlapping a plurality of rectangular long lenses 2d, and a heat absorbing material 2B with a long lens 2d aiming at the maximum width of the shortest focal length. The temperature is increased, the temperature of the air passage 28A is increased at a fuel cost of 0, and the existing lens cross section is linearly extended to produce heat for 3 days a day with 1 to multiple heat pumps 1G. All the lens materials can be used as the long lens 2d, a heat insulating material 2c such as foamed plastic is surrounded by a semi-cylindrical outer box 77B, a long cylinder such as a cylinder is provided, and a heat resistant material 2A is provided therein and solar heat is provided. Air 28a is heated with a plate-like heat absorbing material 2B that is heated to a high temperature, and a plurality of wide and long long lenses 2d are provided on the upper part so that they can be sealed in a vacuum with a joint 80A + clamp 80B so that the shortest focal length can be maximized. In the longitudinal and right-angle directions, joint 80A A solar heater 2 that makes a plurality of long lengths bundled together by a right angle joint, enables the heat pump 1G to control the suction of the heated air 28a from the plurality of intake air passages 28A, and makes a right angle with sunlight rotated 180 degrees east to west on the water. As a device that further tilts and maintains rotation in two directions at right angles to sunlight, the air 28a is repeatedly heated to 1 to multi-stage heat pump 1G and subjected to suction compression 800 to 1200 degrees, and 1 to multi-stage compression heat recovery unit 2C. Air heating that collects sunlight with the long lens 2d in an energy storage cycle that repeats heat recovery and repeats at 200 degrees, etc. is used by changing the geothermal power according to the power generation place, water jet 79, coalescence engine injection unit 78, etc. The air heating was used exclusively for power generation and heat production, and in the case of water jet 79 drive or combined engine injection unit 78 drive, the power generation was changed to injection propulsion changed to turbine exhaust In the heat production of the non-inverted output and thermal 28a + heat 50, to various thermal utilization prime and various cold use golden.

図6のスクリュー船舶39D等の船舶駆動を液体低融点合金3E使用で説明、ガリンスタン使用以外ではプラスチックや樹脂被覆の使用を不可とし、図4太陽光加熱器2の変形を具備太陽光加熱の温熱50+冷熱28a加速として、竪型全動翼比重大物質重力太陽熱タービン8H複数〜電気+冷熱+温熱供給設備から受給の超小型等、冷熱温熱往復機関駆動やタービン8H駆動でスクリュー7C駆動とし、300〜500℃で安定な液体低融点合金3Eを比重大物質加速器6W噴射して、比重大物質3E重力過熱蒸気50加速で温熱タービン8H駆動、保温装置で3E温度低下僅少駆動過熱蒸気50を加熱回転出力増大し、比重大物質熱交換器2Zで液体低融点合金3Eを500度等に加熱して、温熱タービン8Pを駆動保温装置で3E温度低下を僅少とし、駆動過熱蒸気50を加熱回転出力増大する循環にして、大気圧同速度同容積仕事率kg重m/秒を既存蒸気タービン発電の3.6万倍に近付ける駆動にし、既存スクリュー船舶の1000倍回転出力狙い比重大物質3Eの低速使用として、騒音を大幅に低減した大型スクリュー駆動や、陸上製造の電気+冷熱+温熱供給設備より受給貯蔵出力増大に使用や、超小型簡単船舶を冷熱往復機関や冷熱温熱往復機関やウォータージェット79で駆動とし、既存船舶の5倍速度等高速狙いにして、タービン排気室には空気抽出室51Aを設けて、夫々の合流抽出器51で温熱タービン排気と冷熱タービン排気をウォータージェット79に供給船底前部より合流噴射し、船体の摩擦損失を空気や蒸気で低減噴射推進速度追加にして、空気排気圧力や蒸気排気圧力を最低にタービン8H回転出力最大の最大速度にし、海水に窒素や酸素やCO2を供給する自然現象高速化2aにして、CO2排気0燃料費0運用利益率既存船舶の10倍狙う中大型スクリュウュー船舶39Dにした、各種エネルギ保存サイクル合体機関。 Explaining the driving of the ship such as the screw ship 39D in FIG. 6 by using the liquid low melting point alloy 3E, the use of plastic or resin coating is impossible except for the use of Galinstan, and FIG. 50+ cold 28a acceleration, vertical all-blade ratio critical material gravity solar turbine 8H multiple to electricity + cold + heat + ultra-compact received from the heat supply facility, such as cold and hot reciprocating engine drive or turbine 8H drive screw 7C drive, 300 Liquid low melting point alloy 3E that is stable at ˜500 ° C. is injected with a specific material accelerator 6W, the specific material 3E is driven by a thermal turbine 8H by acceleration of the gravitational superheated steam 50, and the 3E temperature drop is slightly driven by the heat retaining device. The output is increased, the liquid low melting point alloy 3E is heated to 500 ° C. by the specific material heat exchanger 2Z, and the thermal turbine 8P is heated to the 3E temperature by the drive heat retention device. With the bottom slightly reduced, the drive superheated steam 50 is circulated to increase the heating rotation output, and the drive is set to bring the atmospheric pressure, the same speed, and the same volumetric power, kg weight m / sec, to 36,000 times that of the existing steam turbine power generation. Aiming at 1000 times rotation output of the ship Low-speed use of the critical material 3E, large screw drive with greatly reduced noise, increase in receiving and storage output from electricity + cold + heat supply equipment of onshore production, ultra small simple ship Is driven by a cold reciprocating engine, a cold / hot reciprocating engine, or a water jet 79, and an air extraction chamber 51A is provided in the turbine exhaust chamber, aiming at a high speed such as 5 times the speed of an existing ship, and each confluence extractor 51 is heated. Turbine exhaust and cold turbine exhaust are fed to the water jet 79 from the front of the bottom of the ship, and the friction loss of the hull is reduced with air and steam. Reduce the exhaust pressure and steam exhaust pressure to the lowest maximum speed of the turbine 8H rotation output, increase the natural phenomenon speed 2a to supply nitrogen, oxygen and CO2 to seawater, CO2 exhaust 0 fuel cost 0 operating profit rate 10 of the existing ship Combined with various energy conservation cycle engines, the medium size large-sized screw ship 39D.

図7のウォータージェット79X水吸引噴射スクリュー船舶39D駆動では、図6同様に液体低融点合金3E使用で説明して、図3図4全動翼比重大物質重力太陽熱タービン8H必要台数具備し、図4太陽光加熱器2の変形を具備して、太陽光加熱の空気28aを1〜複数段熱ポンプ1Gと1〜複数段圧縮熱交換器2Cで、複数回圧縮高温にして複数回熱回収し、図3と同様に温熱50を温熱室3Bに+冷熱28aを冷熱室3Aに分割保存や、陸上製造の電気+冷熱+温熱供給設備より圧入受給貯蔵出力増大に使用や、超小型簡単船舶を冷熱往復機関や冷熱温熱往復機関やウォータージェット79Xで駆動して、竪型全動翼比重大物質重力太陽熱タービン8Hでスクリュー7Cを駆動し、冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱噴射するウォータージェット79Xを駆動して、噴射推進の過程では夫々の空気抽出器51を合流抽出器51とし、79X過熱蒸気高速噴射流最適圧力部に合流吸引温熱タービン出力を増大して、79X燃焼ガス高速噴射流最適圧力部に冷熱28a吸引合流冷熱タービン出力を増大し、酸化剤増大ウォータージェット79X噴射出力を増大して、温熱タービン8H冷熱タービン8H排気圧力を最低に出力最大にし、窒素や酸素やCO2等全部を海水に混合自然現象高速化2aして、海水中の微生物や海草類に食糧や栄養分を供給し、微生物や海草類を増大CO2等の消化能力を森林の数万倍狙いとして、ウォータージェット79X水吸引噴射推進にし、最も効率良く自然現象高速化2a人類の食糧を増大して、既存船舶の10倍速度狙いとし、各種中大型ウォータージェット79Xスクリュー船舶39D全盛狙う、各種エネルギ保存サイクル合体機関にする。   The water jet 79X water suction / injection screw ship 39D drive in FIG. 7 is explained using the liquid low-melting point alloy 3E as in FIG. 6, and FIG. 3 and FIG. 4 A modification of the solar heater 2 is provided, and the solar-heated air 28a is compressed at a high temperature a plurality of times with 1 to a plurality of stages of heat pumps 1G and 1 to a plurality of stages of compression heat exchangers 2C to recover heat a plurality of times. As in Fig. 3, heat 50 is stored in the heat chamber 3B and the cold 28a is divided and stored in the heat chamber 3A, and it is used to increase the pressure receiving and storage output from the electricity + cold + heat supply equipment manufactured on land. Driven by a cold reciprocating engine, a cold / hot reciprocating engine, or a water jet 79X, a screw 7C is driven by a vertical all-blade specific gravity gravitational solar turbine 8H, and fuel is injected into the cold multiple times to burn and heat the inner circumference. Inner circumference outer circumference Then, the water jet 79X that heats and injects several times is driven, and in the process of injection propulsion, each air extractor 51 is used as a combined extractor 51, and the combined suction and thermal turbine output is increased to the 79X superheated steam high-speed jet optimum pressure section. 79x combustion gas high-speed jet flow optimum pressure portion, the cold 28a suction combined chilling turbine output is increased, the oxidant increased water jet 79X injection output is increased, and the thermal turbine 8H cold turbine 8H exhaust pressure is minimized to the maximum output , Nitrogen, oxygen, CO2, etc. are all mixed with seawater to speed up natural phenomena 2a, supplying food and nutrients to microorganisms and seaweeds in seawater, increasing microorganisms and seaweeds Digestion capacity of CO2 etc. is tens of thousands of forests The aim is to promote water jet 79X water suction injection, increase the speed of natural phenomena most efficiently 2a increase human food, And speed aim, aim large water jet 79X screw ship 39D glory in various, to various energy saving cycle combined institutions.

図8のウォータージェット79X水吸引噴射船舶38C駆動では、図6同様に液体低融点合金3E使用とし、図3図4竪型全動翼比重大物質重力太陽熱タービン8H必要台数具備し、図4太陽光加熱器2の変形を具備して、太陽光加熱の空気28aを1〜複数段熱ポンプ1Gと1〜複数段圧縮熱交換器2Cで、複数回圧縮高温にして複数回熱回収し、図3と同様に温熱50を温熱室3Bに+冷熱28aを冷熱室3Aに分割保存や、陸上製造の電気+冷熱+温熱供給設備より圧入受給貯蔵出力増大に使用や、超小型簡単船舶を冷熱往復機関や冷熱温熱往復機関やウォータージェット79Xで駆動して、冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、水を吸引噴射するウォータージェット79Xを駆動し、噴射推進の過程では、夫々の空気抽出器51を合流抽出器51として、79X過熱蒸気高速噴射流最適圧力部に合流吸引温熱タービン出力を増大し、79X燃焼ガス高速噴射流最適圧力部に冷熱28a吸引合流冷熱タービン出力を増大して、酸化剤増大79X噴射出力を増大し、温熱タービン8H冷熱タービン8H排気圧力を最低に出力最大にして、窒素や酸素やCO2等全部を海水に混合して自然現象高速化2aし、海水中の微生物や海草類に食糧や栄養分供給海中資源を増大して、食物連鎖等で魚類やコンブ等人類の食糧を増大し、既存船舶の10倍速度狙いとして、各種中大型ウォータージェット79X水吸引噴射船舶38C全盛狙う、各種エネルギ保存サイクル合体機関にする。   The water jet 79X water suction / injection ship 38C drive in FIG. 8 uses the liquid low melting point alloy 3E as in FIG. 6, and includes the necessary number of gravity solar thermal turbines 8H in FIG. With the modification of the light heater 2, the solar-heated air 28a is compressed at a plurality of times by a plurality of compression heat exchangers 1C and 1 to a plurality of stages of heat pumps 1G and 1 to a plurality of stages of compression heat exchangers 2C. As in 3, heat 50 is stored in the heat chamber 3B and the cold 28a is stored in the cold chamber 3A, and it is used to increase the pressure receiving and storage output from the electricity + cold + heat supply equipment manufactured on land. A water jet 79X that is driven by an engine, a reciprocating cold / heat reciprocating engine, or a water jet 79X, injects and burns cold heat a plurality of times, heats the heat from the inner circumference and inner circumference outer circumference and injects it, and sucks and injects water. Driven and jetted In the process of progressing, each air extractor 51 is used as a confluence extractor 51, the combined suction and thermal turbine output is increased to the 79X superheated steam high-speed jet optimum pressure part, and the cold 28a is sucked to the 79X combustion gas high-speed jet optimum pressure part. Increase combined chilled turbine output, increase oxidant increase 79X injection output, warm turbine 8H cool turbine 8H exhaust pressure to minimum output maximum, mix nitrogen, oxygen, CO2 etc. all into seawater, natural phenomenon Accelerate 2a, supply food and nutrients to microbes and seaweeds in seawater, increase food for humans such as fish and kombu in the food chain, etc. The water jet 79X water suction / injection ship 38C is aimed at the prime of various energy conservation cycle coalescence engines.

図9のウォータージェット79Z空気吸引噴射船舶38B駆動は、図6同様に液体低融点合金3E使用として、図3図4竪型全動翼比重大物質重力太陽熱タービン8H必要台数具備し、図4太陽光加熱器2の変形を具備して、太陽光加熱の空気28aを1〜複数段熱ポンプ1Gと1〜複数段圧縮熱交換器2Cで、複数回圧縮高温にして複数回熱回収し、図3と同様に温熱50を温熱室3Bに+冷熱28aを冷熱室3Aに分割保存や、陸上製造の電気+冷熱+温熱供給設備より圧入受給貯蔵出力増大に使用や、超小型簡単船舶を冷熱往復機関や冷熱温熱往復機関やウォータージェット79Xで駆動して、冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射して水を吸引噴射するウォータージェット79Zを駆動し、噴射推進の過程では、夫々の空気抽出器51を合流抽出器51として、79Z燃焼ガス高速噴射流最適圧力部に冷熱タービン排気冷熱28aを吸引合流し、酸化剤を増大燃料燃焼出力を増大して、冷熱タービン8H排気圧力を最低に回転出力を最大にし、79Z過熱蒸気50高速噴射流最適圧力部に温熱50を吸引合流推進剤噴射質量を増大して、最高真空にして温熱タービン8H回転出力を最大に増大し、窒素や酸素やCO2等全部を海水に混合して、自然現象高速化2aし、海水中の微生物や海草類に食糧や栄養分供給海中資源を増大して、食物連鎖等で魚類やコンブ等人類の食糧を増大し、CO2の消化能力を森林の数万倍や既存船舶の10倍速度狙いとして、各種中大型ウォータージェット79Z空気吸引噴射船舶38B全盛狙う、各種エネルギ保存サイクル合体機関にする。   The water jet 79Z air suction / injection ship 38B drive of FIG. 9 is equipped with the required number of gravity type solar thermal turbines 8H of FIG. With the modification of the light heater 2, the solar-heated air 28a is compressed at a plurality of times by a plurality of compression heat exchangers 1C and 1 to a plurality of stages of heat pumps 1G and 1 to a plurality of stages of compression heat exchangers 2C. As in 3, heat 50 is stored in the heat chamber 3B and the cold 28a is stored in the cold chamber 3A, and it is used to increase the pressure receiving and storage output from the electricity + cold + heat supply equipment manufactured on land. Driven by an engine, a cold / hot reciprocating engine, or a water jet 79X, fuel is injected and burned multiple times to cool and heat is injected multiple times from the inner and outer peripheries, and fuel is also injected into multiple air suction flows. Injection, combustion, injection, air suction The water jet 79Z that sprays and sucks and injects water is driven, and in the course of injection propulsion, each air extractor 51 is used as a confluence extractor 51, and the cold turbine exhaust cold heat 28a is applied to the 79Z combustion gas high-speed jet optimum pressure portion Combined with suction, increased oxidizer, increased fuel combustion output, maximized exhaust output of cooling turbine 8H, maximized rotational output, and added heat 50 to 79Z superheated steam 50 high-speed jet optimum pressure section To increase the maximum vacuum output of the thermal turbine 8H, mix nitrogen, oxygen, CO2, etc. with seawater to speed up the natural phenomenon 2a. Nutrient supply Underwater resources are increased, and food such as fish and kombu is increased through food chains, etc., and CO2 digestion capacity is aimed at tens of thousands of forests and 10 times faster than existing ships. Aim water jet 79Z air suction injection ship 38B height of prosperity, to a variety of energy storage cycle combined institutions.

図10のウォータージェット79Z空気吸引噴射スクリュー船舶39E駆動は、図6同様に液体低融点合金3E使用として、図3図4竪型全動翼比重大物質重力太陽熱タービン8H必要台数具備し、図4太陽光加熱器2の変形を具備して、太陽光加熱の空気28aを1〜複数段熱ポンプ1Gと1〜複数段圧縮熱交換器2Cで、複数回圧縮高温にし、複数回熱回収して、図3と同様に温熱50を温熱室3Bに+冷熱28aを冷熱室3Aに分割保存や、陸上製造の電気+冷熱+温熱供給設備より圧入受給貯蔵出力増大に使用や、超小型簡単船舶を冷熱往復機関や冷熱温熱往復機関やウォータージェット79Xで駆動し、竪型全動翼比重大物質重力太陽熱タービン8Hでスクリュー7Cを駆動して、冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射して水を吸引噴射するウォータージェット79Zを駆動し、噴射推進の過程では、夫々の空気抽出器51を合流抽出器51として、79Z燃焼ガス高速噴射流最適圧力部に冷熱28aを吸引合流し、酸化剤を増大燃料燃焼出力増大して、冷熱タービン8H排気圧力を最低に回転出力最大にし、79Z過熱蒸気50高速噴射流最適圧力部には温熱50排気を吸引合流推進剤噴射質量を増大して、最高真空にして温熱タービン8H回転出力を最大にし、窒素や酸素やCO2等全部を海水に混合して、自然現象高速化2aし、海水中の微生物や海草類に食糧や栄養分供給海中資源を増大して、食物連鎖等で魚類やコンブ等人類の食糧を増大し、CO2の消化能力を森林の数万倍や既存船舶の10倍速度狙いとし、各種中大型ウォータージェット79Z空気吸引噴射スクリュー船舶39E全盛狙う、各種エネルギ保存サイクル合体機関にする。   The water jet 79Z air suction / injection screw ship 39E drive of FIG. 10 is equipped with the required number of gravity-type solar thermal turbines 8H as shown in FIG. The solar heater 2 is modified, and the solar heating air 28a is compressed at a plurality of times by a 1-multistage heat pump 1G and a 1-multistage compression heat exchanger 2C, and heat is recovered multiple times. As in Fig. 3, heat 50 is stored in the heat chamber 3B and the cold 28a is divided and stored in the heat chamber 3A, and it is used to increase the pressure receiving and storage output from the electricity + cold + heat supply equipment manufactured on land. Driven by a cold reciprocating engine, a cold / hot reciprocating engine, or a water jet 79X, a screw 7C is driven by a saddle type all-blade specific gravity gravitational solar turbine 8H, and fuel is injected into the cold multiple times to inject and heat the inner periphery. Inner circumference It is heated and injected several times from the circumference, fuel injection combustion injection is also performed at a plurality of locations of the air suction flow, and the water jet 79Z that sucks and injects water by air suction is driven. Using the air extractor 51 as the combined extractor 51, the cold heat 28a is sucked and combined into the 79Z combustion gas high-speed jet optimum pressure portion, the oxidant is increased, the fuel combustion output is increased, and the exhaust temperature of the cold turbine 8H is minimized and the rotational output is maximized. 79Z superheated steam 50 high-speed jet flow optimum pressure section, heat 50 exhaust suction suction propellant injection mass is increased, maximum vacuum is set to maximize the thermal turbine 8H rotation output, nitrogen, oxygen, CO2 etc. are all Mixing with seawater, speeding up natural phenomena 2a, supplying food and nutrients to seawater microorganisms and seaweeds, increasing human resources such as fish and kombu in the food chain, etc. The ability to 10 double-speed aim of tens of thousands of times and existing vessels of the forest, aiming large water jet 79Z air suction injection screw ship 39E glory in various, to various energy saving cycle combined institutions.

図11の合体機関噴射部78B太陽熱重力飛行機39A駆動は、軽量大出力必須のため液体比重大物質水銀3E配分使用とし、タングステン合金粉末焼結球2E使用比重大として水銀3E圧力混合噴射として、資源量に最適対応し、飛行胴38a垂直翼38dを一体として、図3図4竪型全動翼比重大物質重力太陽熱タービン8H必要台数選択使用し、図5太陽光加熱器2変形の翼前縁心38e空気吸入口28Bより空気28aを吸入の過程で、長レンズ2d熱吸収材2Bで構成の吸入空気路28Aで太陽光加熱の空気28aを加熱して、1〜複数段熱ポンプ1Gと1〜複数段圧縮熱交換器2Cで複数回圧縮高温にして複数回熱回収し、図3と同様に温熱50を温熱室3Bに+冷熱28aを冷熱室3Aに分割保存や、陸上製造の電気+冷熱+温熱供給設備より圧入受給貯蔵出力増大に使用や、超小型簡単飛行機類を冷熱往復機関や冷熱温熱往復機関やで合体機関噴射部78B駆動して、冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射する合体機関噴射部78Bを駆動し、宇宙上昇時には既存ジェット機噴射圧力の10〜100倍圧力等で合体機関噴射部78Bに供給し、冷熱28aに燃料噴射燃焼外周の過熱蒸気50を加熱全部で10倍熱量等を噴射して、噴射推進出力を既存ジェット機の100〜1000倍に短時間近付けて宇宙に到達し、各種太陽熱重力飛行機39A類で燃料費0に近い宇宙利用全盛にして、1日に地球を16周する等地球上何処でも日帰り旅行を可能にし、空気中を飛行時には燃料費0や僅少として、噴射速度が真空で最大のため、既存宇宙ロケット地上大量噴射を最悪と考え、既存飛行機最高飛行高度で大出力ロケット推進する方法にし、宇宙に到達する。   The combined engine injection unit 78B of the solar gravity gravity plane 39A shown in FIG. 11 is driven by a light and high output, so that the liquid ratio of the material mercury 3E distribution is used, the tungsten alloy powder sintered sphere 2E is used and the mercury 3E pressure mixed injection is used. 3 and FIG. 4 vertical type moving blade ratio critical material gravity solar thermal turbine 8H is used by selecting the required number of FIG. 3 solar heater 2 deformation blade leading edge center 38e In the process of sucking air 28a from the air suction port 28B, the solar heating air 28a is heated in the suction air passage 28A constituted by the long lens 2d heat absorbing material 2B, and the 1-multistage heat pump 1G and 1- Multiple-stage compression heat exchanger 2C compresses and heats multiple times, recovers heat multiple times, and stores heat 50 in warm chamber 3B and cold 28a in cold chamber 3A in the same way as in FIG. + Used to increase the pressure receiving / receiving / storage output from the heat supply facility, or by driving the ultra-compact simple airplanes with the cold reciprocating engine or the cold / hot reciprocating engine or the combined engine injection unit 78B, and injecting the heat into the cold multiple times to inject the heat It is heated and injected several times from the outer circumference and inner circumference outer circumference, fuel injection combustion injection is also carried out to several places of the air suction flow, and the combined engine injection section 78B for air suction injection is driven. The combined injection unit 78B is supplied at a pressure of 10 to 100 times, and the superheated steam 50 on the outer periphery of the fuel injection combustion is heated to the cold heat 28a to inject 10 times the amount of heat, etc. Double-short time approach to space, various solar thermal gravitational airplanes 39A, etc. to make the best use of space near zero fuel cost, enabling day trips anywhere on the earth, such as 16 rounds of the earth a day, As fuel costs 0 and insignificant at the time of flight of the medium, for injection speed is maximum in a vacuum, considered the worst existing space rocket ground large amount of injection, and in how to promote large output rocket highly existing airplane the best flight, to reach the space.

宇宙到達時には竪型全動翼比重大物質重力冷熱タービン8H駆動の過程で、空気路入口28Bを密閉した空気路28Aとして、120度前後直射太陽光を長レンズ2d熱吸収材2Bで構成の吸入空気路28Aで空気28aを加熱し、宇宙では最も効率良く温熱50+冷熱28aを製造貯蔵して、宇宙での噴射推進は過熱蒸気50による噴射推進とし、宇宙での圧縮空気28aは過熱蒸気50の製造に使用して、タービン8H1〜複数段熱ポンプ1G駆動として長距離の宇宙旅行を可能にし、地球帰還時には摩擦熱を含む高圧高温空気28aを吸入圧縮熱交換する熱製造にして、圧縮空気28a冷熱で冷熱タービン8Hを駆動し、その排気を合流抽出器51と合体機関噴射部78B酸化剤の最適圧力部で吸引合流して、酸化剤で使用すると共に、過熱蒸気50排気も同様に合流して推進剤噴射質量を増大し、78B超高速流速で温熱タービン8H排気室を最高真空として、酸化剤に燃料噴射着火燃焼噴射推進出力の増大にし、既存ジェット機の10〜100倍圧力1/10噴射熱量10倍噴射推進出力大型化等として、合体機関噴射部78B円筒回転部77Gを180度以上回転して、逆噴射や垂直上昇垂直降下を可能にし、宇宙利用やビルの屋上や月面等何処でも飛行場にする方法にして、各種エネルギ保存サイクル合体機関にする。 At the time of reaching the universe, in the process of driving the vertical all-blade blade critical material gravity cooling / heating turbine 8H, the air passage 28A is sealed as the air passage inlet 28B, and the direct sunlight which is around 120 degrees is sucked by the long lens 2d heat absorbing material 2B. The air 28a is heated in the air passage 28A, and the hot 50 + cold 28a is most efficiently manufactured and stored in the universe. The propulsion in the universe is propulsion by the superheated steam 50, and the compressed air 28a in the universe is the superheated steam 50. Compressed air 28a is used for manufacturing, and is capable of long-distance space travel as a turbine 8H1 to multi-stage heat pump 1G drive, and high-pressure high-temperature air 28a including frictional heat is sucked and compressed to exchange heat when returning to the earth. The cold turbine 8H is driven by cold heat, and the exhaust gas is sucked and merged at the optimum pressure portion of the merged extractor 51 and the combined engine injection unit 78B oxidant and used as an oxidant. Similarly, the superheated steam 50 exhaust is combined to increase the propellant injection mass, the thermal turbine 8H exhaust chamber is set to the highest vacuum at a super-high speed flow rate of 78B, the fuel injection ignition combustion injection propulsion output is increased to the oxidizer, 10-100 times pressure 1/10 injection heat quantity 10 times injection propulsion output enlargement, etc. Rotating the combined engine injection part 78B cylindrical rotation part 77G more than 180 degrees, enabling reverse injection and vertical ascending vertical descent, space utilization It can be used as an airfield anywhere on the rooftop of the building or on the moon, and it can be combined into various energy conservation cycle engines.

図12の合体機関噴射部78B太陽熱重力回転飛行機39B駆動は、軽量大出力必須のため液体比重大物質水銀3E配分使用とし、タングステン合金粉末焼結球2E使用比重大として水銀3E圧力混合噴射として、資源量に最適対応し、噴射推進出力の発生は前記図11と同様として、図3図4竪型全動翼比重大物質重力太陽熱タービン8H必要台数でプロペラ7A又は回転翼7B駆動にし、熱製造を図10と同様に太陽光加熱の空気28aを1〜複数段熱ポンプ1Gと1〜複数段圧縮熱交換器2Cで、複数回圧縮高温にして複数回熱回収し、図3と同様に温熱50を温熱室3Bに+冷熱28aを冷熱室3Aに分割保存や、陸上製造の電気+冷熱+温熱供給設備より圧入受給貯蔵出力増大に使用や、超小型簡単飛行機類を冷熱往復機関や冷熱温熱往復機関やで合体機関噴射部78B駆動して、冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射する合体機関噴射部78Bを駆動し、宇宙上昇時には既存ジェット機噴射圧力の10〜100倍圧力等で合体機関噴射部78Bに供給し、冷熱28aに燃料噴射燃焼外周の過熱蒸気50を加熱全部で10倍熱量等を噴射して、噴射推進出力を既存ジェット機の100〜1000倍に短時間近付けて宇宙に到達し、各種噴射推進太陽熱重力回転飛行機39B類で燃料費0に近い宇宙利用全盛にして、1日に地球を16周する等地球上何処でも日帰り旅行を可能にし、空気中を飛行時には燃料費0や僅少のプロペラ7A飛行や回転翼7B飛行として、噴射速度が真空で最大のため既存宇宙ロケット地上大量噴射を最悪と考え、既存飛行機最高飛行高度で大出力ロケット推進宇宙に到達法にする。   The combined engine injection unit 78B solar gravity rotating airplane 39B drive of FIG. 12 uses the liquid ratio critical substance mercury 3E allocation because light weight and high output are essential, and the tungsten alloy powder sintered sphere 2E usage ratio is critical as mercury 3E pressure mixed injection. The generation of the injection propulsion output is the same as in FIG. 11, and the propeller 7A or the rotor blade 7B is driven by the required number of vertical solar gravity turbines 8H in FIG. As in FIG. 10, the solar-heated air 28a is compressed at a plurality of times by a 1-multiple-stage heat pump 1G and 1-multiple-stage compression heat exchanger 2C, and heat is recovered multiple times. Is stored in the thermal chamber 3B and the cold 28a is divided and stored in the cold chamber 3A, and is used to increase the pressure receiving and storage output from the electricity + cold heat + heat supply equipment of onshore production, Drives the combined engine injection unit 78B with a thermal reciprocating engine, and injects and burns the fuel multiple times to cool and injects the heat by injecting the heat multiple times from the inner and outer peripheries. The combined engine injection unit 78B that performs combustion injection and air suction injection is driven, and is supplied to the combined engine injection unit 78B at a pressure of 10 to 100 times the existing jet injection pressure or the like when the space rises. The superheated steam 50 is heated to inject 10 times the amount of heat, etc., and the propulsion propulsion output reaches 100 to 1000 times that of the existing jet aircraft in a short time to reach the universe. As a space use, it is possible to make day trips anywhere on the earth, such as making 16 orbits of the earth a day. When flying in the air, there is no fuel cost, a small propeller 7A flight or a rotary wing 7B flight, Morphism speed up thought the worst existing space rocket ground mass injection for a vacuum, to reach method existing aircraft maximum altitude large output rocket propulsion universe.

宇宙到達時には竪型全動翼比重大物質重力冷熱タービン8H駆動の過程で、空気路入口28Bを密閉した空気路28Aとし、図11と同様に熱回収過熱蒸気推進剤製造を繰り返して、過熱蒸気推進剤を限り無く増大し、宇宙では過熱蒸気50を最も効率良く製造貯蔵する1〜複数段熱ポンプ1Gや太陽光加熱にして、宇宙での噴射推進は過熱蒸気50による噴射推進とし、宇宙での圧縮空気28aは過熱蒸気50の製造に使用して、タービン8Hで1〜複数段熱ポンプ1G駆動として長距離の宇宙旅行を可能にし、地球帰還時には摩擦熱を含む高圧高温空気28aを吸入圧縮熱交換する熱製造にして、圧縮空気28a冷熱で冷熱タービン8Hを駆動し、その排気を合流抽出器51と合体機関噴射部78B酸化剤の最適圧力部で吸引合流して、酸化剤で使用すると共に過熱蒸気排気も同様に合流推進剤噴射質量を増大し、78B超高速流速で温熱タービン8H排気室を最高真空として、酸化剤に燃料噴射着火燃焼噴射推進出力の増大にし、既存ジェット機の10〜100倍圧力1/10噴射熱量10倍噴射推進出力大型化等として、合体機関噴射部78B円筒回転部77Gを180度以上回転して、逆噴射や垂直上昇垂直降下を可能にし、宇宙利用やビルの屋上や月面等何処でも飛行場にする、各種エネルギ保存サイクル合体機関にする。 At the time of reaching the space, in the process of driving the vertical type moving blade ratio critical material gravity cooling / heating turbine 8H, the air passage inlet 28B is made into a sealed air passage 28A, and heat recovery superheated steam propellant production is repeated as in FIG. The propellant is increased without limit, and in the space, the superheated steam 50 is produced and stored most efficiently by the 1 to multi-stage heat pump 1G or solar heating, and the propulsion in space is the propulsion by the superheated steam 50. The compressed air 28a is used for the production of the superheated steam 50 and enables a long-distance space travel as a 1-stage multi-stage heat pump 1G driven by the turbine 8H, and sucks and compresses the high-pressure high-temperature air 28a including frictional heat when returning to the earth In the heat production for heat exchange, the cold turbine 8H is driven by the cold air of the compressed air 28a, and the exhaust gas is sucked and merged at the optimum pressure portion of the combined extractor 51 and the combined engine injection unit 78B, The superheated steam exhaust also increases the combined propellant injection mass in the same way as the oxidizer, the thermal turbine 8H exhaust chamber is at the highest vacuum at a super-high speed flow rate of 78B, and the fuel injection ignition combustion injection propulsion output is increased to the oxidant. 10-100 times the pressure of existing jets, 1/10 the heat of injection, 10 times the amount of propulsion propulsion output, etc. To rotate the combined engine injection part 78B cylindrical rotation part 77G more than 180 degrees, enabling reverse injection and vertical ascending vertical descent , Make use of space, use the rooftop of the building, the moon surface, etc. anywhere to be an airfield, and make it an engine that combines various energy conservation cycles.

図13の水吸引ウォータージェット79U船舶駆動は、液体低融点合金3E駆動竪型全動翼比重大物質重力太陽熱タービン8H駆動の説明とし、陸上製造の電気+冷熱+温熱供給設備より液体酸素や液体窒素を冷熱室に液体窒素を温熱室に圧入受給貯蔵出力圧力増大にして、冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、水を吸引噴射するウォータージェット79Uにして、図3図4冷熱海水混合器2Hや冷熱回収器103等に変えて79U使用し、過熱蒸気制御弁25を開放分割保存した過熱蒸気50と受給圧入気化した液体窒素最適量を、燃焼器1Y外周の過熱蒸気溜95cの最上流(図を改良)に供給して、燃焼ガス制御弁24乃至圧縮空気制御弁24Aを開放し、200度前後24〜400MPa燃焼ガス49と受給液体酸素と液体窒素最適量を、燃焼ガス溜95a燃焼器1Yの最上流に供給と圧入して、燃料制御弁25b開放図に無い燃料噴射ポンプ1Dより、燃料管1bの最適温度燃料を燃料噴射ノズル6Xより噴射し、燃焼器1Y最上流で着火燃焼外周の過熱蒸気50や窒素を加熱燃焼温度上昇して、外周過熱蒸気溜95cの400度前後過熱蒸気50や窒素を600〜900度等に加熱、双方の噴射出力を増大し、燃焼器1Y複数の燃焼ガス噴射ノズル6Yを環状に過熱蒸気溜95c外周に具備して、1段燃焼噴射流の中に夫々環状に具備した複数燃料噴射ノズル6Xより、燃料管1b温度管理最適温度の燃料を噴射2段燃焼器複数最適距離環状燃焼にし、過熱蒸気50を外周より最適距離環状加熱過熱蒸気温度を600〜900度等にして、過熱蒸気容積と燃焼ガス容積を最大に増大夫々の噴射速度を最大に増大します。 The water suction water jet 79U ship drive in FIG. 13 is an explanation of the liquid low melting point alloy 3E driven vertical all blade ratio material gravity solar thermal turbine 8H drive. Nitrogen is injected into the cold room and liquid nitrogen is press-fitted, received, stored, and output pressure is increased.The fuel is injected and burned into the cold several times, and the heat is injected from the inner and outer circumferences and the inner and outer circumferences multiple times to inject water. The water jet 79U to be sucked and injected is used in place of the cold seawater mixer 2H, the cold heat recovery unit 103, etc. in FIG. 3, FIG. The optimum amount of nitrogen is supplied to the uppermost stream (improved figure) of the superheated steam reservoir 95c on the outer periphery of the combustor 1Y, the combustion gas control valve 24 to the compressed air control valve 24A are opened, and about 200 to 24 to 400 The Pa combustion gas 49, the received liquid oxygen, and the optimal amount of liquid nitrogen are supplied and pressed into the uppermost stream of the combustion gas reservoir 95a combustor 1Y, and the fuel control valve 25b is opened. The optimum temperature fuel is injected from the fuel injection nozzle 6X, and the superheated steam 50 and nitrogen on the outer periphery of the ignition combustion are heated and heated at the uppermost stream of the combustor 1Y. Heating to 600-900 degrees, etc., increasing both injection outputs, combustor 1Y, a plurality of combustion gas injection nozzles 6Y are annularly provided on the outer periphery of the superheated steam reservoir 95c, each annularly in the single stage combustion injection flow From the multiple fuel injection nozzles 6X provided, the fuel at the optimum temperature control of the fuel pipe 1b is made into the two-stage combustor multiple optimum distance annular combustion, and the superheated steam 50 is set to the optimum distance annular heating superheated steam temperature from the outer periphery to 600. In the 900-degree, etc., to increase the increase respective ejection speed up to the maximum superheated steam volume combustion gas volume.

過熱蒸気50の大膨張速度とスクラムジェットの高速燃焼を合体したウォータージェット79Uとし、超高圧大質量の冷熱に燃料噴射着火燃焼して、燃料燃焼量の最大と噴射速度の最大にし、2段燃焼で外周から3段燃焼以後も燃料管1bの高温燃焼部通過を僅少として、過熱蒸気50噴射流を内部と外部から燃焼ガス49で環状加熱し、過熱蒸気50の最高温度噴射と理論空燃比燃焼可能に4段燃焼等複数燃焼を可能にして、大気圧100度真空では絶対0度に近付く過熱蒸気温度を内部と外部から環状加熱600〜900度等とし、過熱蒸気50容積噴射出力と燃焼ガス冷熱28a燃焼噴射出力を最大に増大して、過熱蒸気噴射ノズル6Aと燃焼ガス噴射ノズル6Yより最大速度噴射し、前方の水を吸引する出力を最大に増大して水を吸引噴射して、過熱蒸気50と燃焼ガス49の噴射推進出力を最大に増大し、温熱タービン8H排気過熱蒸気50や冷熱タービン8H排気空気28aを合流抽出器51で昇圧して、79U最適圧力部に合流推進剤や酸化剤を増大噴射出力増大する構成にし、冷熱に複数回燃料噴射燃焼して、温熱を内周と外周と内周外周から複数回加熱して噴射し、水を吸引噴射するウォータージェット79Uの噴射推進出力を最大にして、海中に窒素や酸素やCO2を高速供給混合溶解する速度を最大にし、自然現象高速化2a人類の食糧を増大して、各種中大型船舶速度を既存船舶の10倍狙いに増大し、船底に大量空気等噴射で水抵抗僅少2bにして、電気+冷熱+温熱供給設備より受給専門の各種小型船舶まで略同様に79U使用可能にする。 The water jet 79U combines the large expansion speed of the superheated steam 50 and the high-speed combustion of the scramjet, and the fuel injection is ignited and burned to the ultrahigh pressure and mass of cold to maximize the fuel combustion amount and the maximum injection speed. After the third stage combustion from the outer periphery, the passage of the high-temperature combustion part of the fuel pipe 1b is made small, and the superheated steam 50 injection flow is annularly heated by the combustion gas 49 from the inside and outside, and the highest temperature injection of the superheated steam 50 and the stoichiometric air-fuel ratio combustion Enables multiple combustion, such as four-stage combustion, and superheated steam temperature close to absolute 0 degree in an atmospheric pressure of 100 degrees vacuum is set to 600-900 degrees annular heating from the inside and outside, etc., 50 volume injection output of superheated steam and combustion gas The combustion injection output of the cold heat 28a is increased to the maximum, the maximum speed injection is performed from the superheated steam injection nozzle 6A and the combustion gas injection nozzle 6Y, and the output for sucking forward water is increased to the maximum to absorb the water. The injection propulsion output of the superheated steam 50 and the combustion gas 49 is increased to the maximum, and the hot turbine 8H exhaust superheated steam 50 and the cold turbine 8H exhaust air 28a are boosted by the combined extractor 51, and the 79U optimum pressure portion is obtained. Water that injects and injects water with a structure that increases the injection output of the combined propellant and oxidizer, injects and burns the fuel multiple times to the cold, heats the heat multiple times from the inner periphery, outer periphery, and inner periphery Maximize the jet propulsion output of jet 79U, maximize the speed of high-speed supply, mixing and dissolution of nitrogen, oxygen and CO2 in the sea, increase the speed of natural phenomena 2a Increase human food, and increase the speed of various medium and large ships The water resistance is reduced to 2b by injecting a large amount of air into the bottom of the ship, making it possible to use 79U from electric + cold + heat supply equipment to various small vessels specialized in receiving.

図14の水吸引ウォータージェット79X船舶駆動は、液体低融点合金3E駆動竪型全動翼比重大物質重力太陽熱タービン8H駆動の説明とし、陸上製造の電気+冷熱+温熱供給設備より液体酸素や液体窒素を冷熱室に液体窒素を温熱室に圧入受給貯蔵出力圧力増大にして、冷熱に複数回燃料噴射燃焼し、温熱を内周と内周外周から複数回加熱して噴射して、水を吸引噴射するウォータージェット79Xにし、図3図4冷熱海水混合器2Hや冷熱回収器103等に変えて79X使用して、過熱蒸気制御弁25を開放分割保存した過熱蒸気50と受給圧入気化した液体窒素最適量を、燃焼器1Y外周の過熱蒸気溜95cの最上流に供給し、燃焼ガス制御弁24乃至圧縮空気制御弁24Aを開放し、200度前後24〜400MPa燃焼ガス49冷熱28aを燃焼ガス溜95a燃焼器1Yの最上流に供給して、燃料制御弁25b開放図に無い燃料噴射ポンプ1Dより燃料管1b燃料を燃料噴射ノズル6Xより噴射し、燃焼器1Y最上流で着火燃焼外周の過熱蒸気50や窒素を加熱燃焼温度を加熱分以上等上昇して、外周過熱蒸気溜95cの過熱蒸気50や窒素を600〜900度等に加熱双方の噴射出力を増大し、燃焼器1Y複数の燃焼ガス噴射ノズル6Yを環状に過熱蒸気溜95c内に環状具備して、1段燃焼噴射流の中に夫々の燃料噴射ノズル6Xより、燃料噴射2段燃焼器や3段燃焼器以後複数段燃焼器最適距離環状燃焼にし、2段燃焼以後は燃料管1bの燃料温度最適噴射を可能に具備して、燃料噴射燃焼理論空燃比燃焼を可能にします。 The water suction water jet 79X ship drive of FIG. 14 explains liquid low-melting-point alloy 3E-driven saddle type all-blade ratio critical material gravity solar turbine 8H drive, liquid oxygen and liquid from land-based electric + cold + heat supply equipment Nitrogen is injected into the cold room and liquid nitrogen is press-fitted, received, stored, and output pressure is increased, fuel is injected into the cold multiple times, and fuel is injected and burned multiple times. The superheated steam 50 in which the superheated steam control valve 25 is stored in an open divided state and the liquid nitrogen that has been received and pressurized are vaporized by using the waterjet 79X to be jetted and using 79X instead of the cold seawater mixer 2H and the cold heat recovery unit 103 in FIG. The optimum amount is supplied to the uppermost stream of the superheated steam reservoir 95c on the outer periphery of the combustor 1Y, the combustion gas control valve 24 to the compressed air control valve 24A are opened, and the combustion gas 49 around 24 degrees to 400 degrees Celsius. The heat 28a is supplied to the uppermost stream of the combustion gas reservoir 95a, the fuel control valve 25b is opened, the fuel pipe 1b is injected from the fuel injection pump 1D not shown in the open view, and the fuel injection nozzle 6X, and the uppermost stream of the combustor 1Y. Ignition combustion outer heating superheated steam 50 and nitrogen are heated and the combustion temperature is increased by more than the heating amount, heating the superheated steam 50 and nitrogen in the outer heating superheated steam reservoir 95c to 600-900 degrees, etc. 1Y A plurality of combustion gas injection nozzles 6Y are provided annularly in the superheated steam reservoir 95c, and a fuel injection two-stage combustor or a three-stage combustor is provided from each fuel injection nozzle 6X in the one-stage combustion injection flow. After that, the multi-stage combustor optimal distance annular combustion is adopted, and after the second stage combustion, the fuel temperature optimal injection of the fuel pipe 1b is possible to enable the fuel injection combustion theoretical air-fuel ratio combustion.

空気中100度真空中絶対0度に近付く過熱蒸気50を、冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、水を吸引噴射するウォータージェット79Xにより最適距離環状加熱して、過熱蒸気50温度を600〜900度等過熱蒸気容積の増大にし、噴射速度を増大燃焼ガス吸引出力を増大して、燃焼ガス燃焼により過熱蒸気吸引出力を増大する循環にし、温熱タービン8H排気過熱蒸気50や冷熱タービン8H排気空気28aを合流抽出器51で昇圧して、79U最適圧力部に合流推進剤や酸化剤を増大噴射出力増大し、過熱蒸気の大膨張速度とスクラムジェットの高速燃焼を合体したウォータージェット79Xとして、超高圧大質量の冷熱28aに燃料噴射着火燃焼し、燃料燃焼量の最大と過熱蒸気50容積を水の5000倍前後等噴射速度の最大にして、過熱蒸気噴射出力と燃焼ガス噴射出力を最大に増大噴射し、過熱蒸気噴射ノズル6Aと燃焼ガス噴射ノズル6Yより最大速度噴射して、前方の水を吸引噴射するウォータージェット79X水吸引噴射出力を最大にし、海中に窒素や酸素やCO2等の栄養分を供給する自然現象高速化2a人類の食糧を増大して、各種中大型船舶速度を既存船舶の10倍等に増大水抵抗僅少2bにして、電気+冷熱+温熱供給設備より受給専門の各種小型船舶まで略同様に79X使用可能にする。 Water jet 79X that injects and injects water by superheated steam 50 approaching absolute 0 degree in air 100 degrees in vacuum, injecting and burning fuel to the cold multiple times by injecting and burning the heat multiple times from the inner and outer circumferences Cycle to increase the superheated steam suction output by combustion gas combustion, increase the superheated steam volume such as 600-900 degrees, increase the injection speed, increase the combustion gas suction output, and the optimum distance annular heating Then, the heated turbine 8H exhaust superheated steam 50 and the cold turbine 8H exhaust air 28a are boosted by the combined extractor 51, and the combined propellant and oxidant are increased in the 79U optimum pressure section to increase the injection output, and the superheated steam has a large expansion rate. As a water jet 79X that combines the high-speed combustion of the scramjet and the superheated high-mass cold 28a, fuel injection ignition combustion is performed, and the maximum amount of fuel combustion and superheated steam 50 The product is made up to the maximum injection speed of about 5000 times the water, the superheated steam injection output and the combustion gas injection output are increased to the maximum, and the maximum speed injection is performed from the superheated steam injection nozzle 6A and the combustion gas injection nozzle 6Y. Water jet 79X, which sucks and jets water of water, maximizes the water suction and jet output, speeds up the natural phenomenon of supplying nutrients such as nitrogen, oxygen and CO2 into the sea 2a Increases human food, existing various medium and large vessel speeds The water resistance is increased to 2b, which is 10 times that of ships, and 79X can be used from electric + cold + hot supply facilities to various small vessels specialized in receiving.

図15の空気吸引ウォータージェット79S駆動は、液体低融点合金3E駆動竪型全動翼比重大物質重力太陽熱タービン8H駆動の説明とし、陸上製造の電気+冷熱+温熱供給設備より液体酸素や液体窒素を冷熱室に液体窒素を温熱室に圧入受給貯蔵出力圧力増大にして、図13の水吸引ウォータージェット79Uの水吸引を空気吸引の79Sにし、水52a吸引噴射部を増設具備して、冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、空気吸引噴射して水を吸引噴射するウォータージェット79Sにして、大量の空気28aを吸引噴射する噴射推進にし、海中に大量の窒素や酸素やCO2を噴射して、海水52aに混合する部分を最適長さとし、海水空気混合部を追加して海中に栄養分を高速供給混合して、図13と同様に自然現象高速化2a人類の食糧を大増大し、各種中大型船舶速度を既存船舶の10倍狙いにして、船底に空気等大量噴射で水抵抗僅少2bにして、電気+冷熱+温熱供給設備より受給専門の各種小型船舶まで略同様に79S使用可能にする。 The air suction water jet 79S drive in FIG. 15 is described as an explanation of the liquid low melting point alloy 3E driven saddle type all-blade ratio critical material gravity solar turbine 8H drive, and liquid oxygen and liquid nitrogen from the electricity + cold heat + heat supply equipment manufactured on land In the cold room, liquid nitrogen is press-fitted, received and stored and the output pressure is increased, the water suction of the water suction water jet 79U in FIG. 13 is changed to 79S for air suction, and the water 52a suction / injection part is additionally provided for cooling. A plurality of times of fuel injection combustion is performed, and heat is injected from the inner circumference, outer circumference, and inner circumference outer circumference several times, and the water jet 79S that sucks and jets water by air suction and jetting is used to suck and jet a large amount of air 28a. Injecting propulsion, injecting a large amount of nitrogen, oxygen, and CO2 into the sea, mixing the seawater 52a with the optimum length, and adding a seawater air mixing section to feed and feed nutrients into the sea at high speed As in FIG. 13, the natural phenomenon speed-up 2a greatly increases humanity's food, aims at 10 times the speed of various medium and large-sized ships, and makes the water resistance to 2b by mass injection of air etc. on the bottom of the ship, 79S can be used in a similar manner, from electricity + cold heat + heat supply equipment to various small vessels specializing in receiving.

図16の空気吸引ウォータージェット79T駆動は、液体低融点合金3E駆動竪型全動翼比重大物質重力太陽熱タービン8Hで説明とし、陸上製造の電気+冷熱+温熱供給設備より液体酸素や液体窒素を冷熱室に液体窒素を温熱室に圧入受給貯蔵出力圧力増大にし、図15の空気吸引ウォータージェット79Sにアフターバーナー6X複数を追加して、冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射して水を吸引噴射するウォータージェット79Tにし、冷熱28a燃焼流6Yに合流燃焼して、燃料燃焼量を大幅に増大し、海中に窒素や酸素やCO2を噴射して、図15と同様に海水52aに混合する部分を最適長さとし、海水52a空気28a混合部を追加して海中に栄養分を高速供給混合して、自然現象高速化2a人類の食糧を大増大し、各種中大型船舶速度を既存船舶の10倍狙い水抵抗僅少2bにして、電気+冷熱+温熱供給設備より受給専門の各種小型船舶まで略同様に79T使用可能にする。 The air suction water jet 79T drive in FIG. 16 is explained with a liquid low melting point alloy 3E driven saddle type full blade ratio gravity material gravity solar turbine 8H. Liquid nitrogen is injected into the cold room and the pressure is increased by receiving and storing and the output pressure is increased. A plurality of afterburners 6X are added to the air suction water jet 79S in FIG. Heated and injected multiple times from the inner and outer circumferences, fuel injection combustion injection at several locations of air suction flow, water jet 79T for air suction injection and water suction injection, combined with the cold 28a combustion flow 6Y Thus, the amount of fuel combustion is greatly increased, nitrogen, oxygen or CO2 is injected into the sea, and the portion mixed with the seawater 52a is set to the optimum length as in FIG. Add 28a mixing section to feed and mix nutrients at high speed in the sea, speed up natural phenomena 2a greatly increase human foods, aim at 10 times the speed of various medium and large ships, and reduce water resistance to 2b It is possible to use 79T in a similar manner, from + cold / heat supply facilities to various small vessels specializing in receiving.

図17の空気吸引ウォータージェット79Y駆動は、液体低融点合金3E駆動竪型全動翼比重大物質重力太陽熱タービン8Hで説明とし、陸上製造の電気+冷熱+温熱供給設備より液体酸素や液体窒素を冷熱室に液体窒素を温熱室に圧入受給貯蔵出力圧力増大にして、図14の水吸引ウォータージェット79Xの水吸引を空気吸引の79Yにし、水52a吸引噴射部を増設具備して、冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引噴射して水を吸引噴射するウォータージェット79Yにして、大量の空気28aを吸引噴射する噴射推進にし、海中に大量の窒素や酸素やCO2等の栄養分を大幅に増大海水52aに混合する部分を最適長さとし、海水52a空気28a混合部を追加して海中に栄養分を高速供給混合して、自然現象高速化2a人類の食糧を大増大して、各種中大型船舶速度を既存船舶の10倍狙い水抵抗僅少2bにして、電気+冷熱+温熱供給設備より受給専門の各種小型船舶まで略同様に79Y使用可能にする。 The air suction water jet 79Y drive in FIG. 17 is explained with a liquid low melting point alloy 3E driven saddle type all-blade ratio critical material gravity solar turbine 8H, and liquid oxygen and liquid nitrogen are supplied from electricity + cold + heat supply equipment manufactured on land. Liquid nitrogen is injected into the cold room and the storage pressure is increased in the hot room, the water suction of the water suction water jet 79X shown in FIG. 14 is changed to 79Y for air suction, and the water 52a suction / injection unit is additionally provided. Injecting propulsion that sucks and injects a large amount of air 28a by using a water jet 79Y that heats and injects heat multiple times from the inner periphery and inner and outer periphery, and injects and sucks air and sucks and injects water. , Large amount of nutrients such as nitrogen, oxygen and CO2 in the sea are greatly increased. The part that mixes with the seawater 52a is the optimum length, and the seawater 52a air 28a mixing part is added to the sea. High-speed supply mixing, natural phenomenon speed-up 2a Mankind's food is greatly increased, various medium and large-sized ship speed is 10 times that of existing ship, water resistance is reduced to 2b, and it is specialized in receiving from electricity + cold + heat supply equipment 79Y can be used in a similar manner to various small vessels.

図18の空気吸引ウォータージェット79Z駆動は、液体低融点合金3E駆動竪型全動翼比重大物質重力太陽熱タービン8Hで説明として、陸上製造の電気+冷熱+温熱供給設備より液体酸素や液体窒素を冷熱室に液体窒素を温熱室に圧入受給貯蔵出力圧力増大にし、図17空気吸引ウォータージェット79Yにアフターバーナー6X複数を追加79Zにして、冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射して水を吸引噴射するウォータージェット79Zにし、冷熱28a燃焼流6Yに合流燃焼して、燃料燃焼量を大増大して海中に窒素や酸素やCO2を噴射し、図17と同様に海水52aに混合する部分を最適長さとして、海水52a空気28a混合部を追加し、海中に栄養分を高速供給混合して、自然現象高速化2a人類の食糧を大増大し、各種中大型船舶速度を既存船舶の10倍狙い水抵抗僅少2bにして、電気+冷熱+温熱供給設備より受給専門の各種小型船舶まで略同様に79Z使用可能にする。 The air suction water jet 79Z drive of FIG. 18 is a liquid low melting point alloy 3E driven saddle-type full blade ratio critical material gravity solar turbine 8H. Liquid nitrogen is injected into the cold room and the pressure is increased by receiving and storing and the output pressure is increased, and a plurality of afterburners 6X are added to the air suction water jet 79Y in 79Z, and fuel is injected into the cold multiple times to inject and burn the heat to the inner and inner circumferences. It is heated and injected several times from the outer periphery, fuel injection combustion injection is also performed at a plurality of locations of the air suction flow, water jet 79Z that sucks and injects water by air suction injection, and merges and burns into the cold heat 28a combustion flow 6Y. The amount of fuel combustion is greatly increased, and nitrogen, oxygen or CO2 is injected into the sea, and the portion mixed with the seawater 52a as in FIG. Add 8a mixing unit, feed and mix nutrients in the sea at high speed, speed up natural phenomena 2a greatly increase human food, aim at 10 times the speed of various medium and large ships, and reduce water resistance to 2b. It is possible to use 79Z in a similar manner, from + cold heat + heat supply facilities to various small vessels specializing in receiving.

図19の合体機関噴射部78W駆動は、液体比重大物質水銀3E圧力でタングステン合金粉末焼結球2Eを混合噴射で説明し、陸上製造の電気+冷熱+温熱供給設備より液体酸素や液体窒素を冷熱室に液体窒素を温熱室に圧入受給貯蔵出力圧力増大にして、竪型全動翼比重大物質重力太陽熱タービン8H駆動とし、図12の水吸引ウォータージェット79Uの水吸入を空気吸入にして、冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、空気吸引噴射する合体機関噴射部78Wとし、宇宙上昇の場合は1〜複数段熱ポンプ1Gで複数回圧縮して、1〜複数段圧縮熱回収器2Cで複数回燃料噴射燃焼複数回熱回収し、限り無く高圧の燃焼ガス49酸化剤と過熱蒸気50推進剤を貯蔵限り無く増大して、燃焼ガス制御弁24を開放し、200度前後24〜400MPa燃焼ガス49を燃焼ガス溜95a燃焼器1Yの最上流に供給して、燃料制御弁25b開放、図に無い燃料噴射ポンプ1Dにより燃料管1b燃料を燃料噴射ノズル6Xより噴射し、燃焼器1Y最上流で着火燃焼外周の過熱蒸気50を加熱燃焼温度上昇して、外周長大な過熱蒸気溜95cの400度前後24〜400MPa過熱蒸気50を加熱双方の噴射出力を増大し、燃焼器1Yの複数燃焼ガス噴射ノズル6Yを過熱蒸気溜95c内部より外部に環状に具備して、複数1段噴射燃焼流の燃料噴射ノズル6Xより燃料噴射2段燃焼器複数最適距離環状燃焼にし、過熱蒸気50を外周より加熱噴射出力と燃焼ガス吸引出力を増大します。 The combined engine injection unit 78W drive of FIG. 19 explains the tungsten alloy powder sintered sphere 2E by mixed injection with the liquid specific significant substance mercury 3E pressure, and cools liquid oxygen and liquid nitrogen from the electricity + cold + hot supply equipment of onshore production Liquid nitrogen is press-fitted into the hot chamber, and the storage pressure of the hot water chamber is increased to drive the vertical all-blade ratio critical material gravity solar heat turbine 8H. The combined engine injection unit 78W that injects and heats the fuel multiple times and heats it from the inner periphery, the outer periphery, and the inner and outer periphery to inject and sucks the air, and injects the air by suction. Compressed multiple times with 1 to multiple stage compression heat recovery unit 2C, recovered multiple times with fuel injection combustion multiple times, and increased infinitely high pressure combustion gas 49 oxidant and superheated steam 50 propellant without limit storage ,combustion The gas control valve 24 is opened, and a combustion gas 49 of about 200 to 24 degrees Celsius is supplied to the uppermost stream of the combustion gas reservoir 95a, the fuel control valve 25b is opened, and a fuel injection pump 1D (not shown) is connected to the fuel pipe 1b. The fuel is injected from the fuel injection nozzle 6X, the superheated steam 50 on the outer periphery of the ignition combustion is heated by the uppermost stream of the combustor 1Y, the combustion temperature rises, and the superheated steam 50 around 24-400 MPa in the superheated steam reservoir 95c having a long outer periphery is heated. Both injection outputs are increased, and a plurality of combustion gas injection nozzles 6Y of the combustor 1Y are provided annularly from the inside of the superheated steam reservoir 95c, and fuel injection two-stage combustion is performed from the fuel injection nozzle 6X of the plurality of one-stage injection combustion flows. Multi-unit optimum distance annular combustion is used, and the heating injection power and combustion gas suction output of superheated steam 50 are increased from the outer periphery.

2段燃焼ガス燃焼流に複数の燃焼ガス噴射ノズル6Yを具備し、夫々の燃料噴射ノズル6Xより燃料噴射3段燃焼器複数最適距離環状燃焼にして、過熱蒸気50噴射流を内周と外周から環状加熱し、大質量冷熱利用必要に応じて同様に4段燃焼以後複数燃焼にして、大気圧では100度Cに近付き真空では絶対0度に近付く過熱蒸気を500度以上等とし、既存ジェット機の10〜100倍圧力10倍質量噴射の安価な噴射出力にして、過熱蒸気50の低温噴射大膨張速度と燃焼ガス49の高温ロケット噴射を合体し、夫々の長所を利用最良の組み合わせにした理論最良の合体機関噴射部78Wとして、スクラムジェットの高速燃焼+蒸気タービンの高圧噴射大膨張速度+ロケットの真空飛行を合体し、空気中を通常飛行時には3.6万倍仕事率に近いタービン8Hで燃料費0飛行狙いとして、推進剤と酸化剤を保存増大し、主として過熱蒸気50による噴射推進として、宇宙上昇準備の地球温暖化防止推進とし、円筒回転部77Gを回転案内具38の歯車装置76で180度以上回転して、垂直上昇や垂直降下や逆噴射を可能にし、何処でも飛行場や1日に地球を16周する等宇宙利用全盛にして、地球上何処でも日帰り旅行等を可能にし、電気+冷熱+温熱供給設備より受給専門の各種小型飛行機類まで略同様に78W使用可能にする。 A plurality of combustion gas injection nozzles 6Y are provided in the two-stage combustion gas combustion flow, and the fuel injection three-stage combustor multi-optimal distance annular combustion is performed from each fuel injection nozzle 6X, so that the superheated steam 50 injection flow is generated from the inner periphery and the outer periphery In the same way, if necessary, use high-mass cold heat. If necessary, use four-stage combustion and then multiple combustion, and make the superheated steam close to 100 ° C at atmospheric pressure and close to 0 ° C in vacuum, over 500 ° C. 10 to 100 times pressure 10 times mass injection low-cost injection output, combined with low-temperature injection large expansion speed of superheated steam 50 and high-temperature rocket injection of combustion gas 49, the best combination of the best use of each advantage As a combined engine injection unit 78W, it combines high-speed combustion of scramjet + high-pressure injection high expansion speed of steam turbine + vacuum flight of rocket, and 36,000 times the normal flight in the air With the turbine 8H close to the rate, the propellant and oxidant are conserved and increased, aiming at zero fuel cost flight, mainly as the propulsion propulsion by the superheated steam 50, to prevent global warming in preparation for space rise, and to rotate and guide the cylindrical rotating part 77G The gear device 76 of the tool 38 is rotated 180 degrees or more to enable vertical ascending, descending, and reverse injection. It enables travel, etc., and 78W can be used in almost the same way from electric + cold + heat supply equipment to various small airplanes specialized in receiving.

図20の合体機関噴射部78V駆動は、液体比重大物質水銀3E圧力でタングステン合金粉末焼結球2Eを混合噴射で説明し、陸上製造の電気+冷熱+温熱供給設備より液体酸素や液体窒素を冷熱室に液体窒素を温熱室に圧入受給貯蔵出力圧力増大にして、竪型全動翼比重大物質重力太陽熱タービン8H使用とし、図18合体機関噴射部78Wにアフターバーナー6X複数を追加して、冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射する合体機関噴射部78Vにして冷熱28a燃焼流6Yに合流燃焼し、燃料燃焼量大増大噴射推進出力を大増大して、合体機関噴射部78V高圧大質量の噴射で短時間宇宙到達にし、既存ジェット機の10〜100倍圧力10倍質量噴射1000倍噴射推進出力狙いにして、円筒回転部77Gを180度以上回転し、垂直上昇や垂直降下や逆噴射を可能にして、何処でも飛行場や1日に地球を16周する等宇宙利用全盛にし、地球上何処でも日帰り旅行等を可能にして、電気+冷熱+温熱供給設備より受給専門の各種小型飛行機類まで略同様に78V使用可能にする。 The combined engine injection unit 78V drive of FIG. 20 explains mixed alloy injection of tungsten alloy powder sintered spheres 2E with liquid specific material mercury 3E pressure, and cools liquid oxygen and liquid nitrogen from land-based electric + cold + heat supply equipment Liquid nitrogen in the chamber is increased in pressure, received and stored output pressure is increased, and the vertical type moving blade ratio critical material gravity solar turbine 8H is used. In FIG. Combined engine injection section 78V that injects and injects air multiple times, heats and injects the heat multiple times from the inner periphery, outer periphery, and inner and outer periphery, and also injects and injects fuel into multiple air suction flows. In this way, the fuel is combined and combusted with the cold 28a combustion flow 6Y, the fuel combustion amount is greatly increased, and the propulsion output is greatly increased. With the aim of 100 times pressure 10 times mass injection 1000 times injection propulsion output, the cylindrical rotating part 77G is rotated 180 degrees or more to enable vertical ascent, vertical descent, and reverse injection. We will make a great use of space, such as going around, and make day trips anywhere on the earth, making it possible to use 78V in a similar manner, from electric + cold + heat supply equipment to various small airplanes specializing in receiving.

図21の合体機関噴射部78A駆動は、液体比重大物質水銀3E圧力でタングステン合金粉末焼結球2Eを混合噴射で説明し、陸上製造の電気+冷熱+温熱供給設備より液体酸素や液体窒素を冷熱室に液体窒素を温熱室に圧入受給貯蔵出力圧力増大にして、竪型全動翼比重大物質重力太陽熱タービン8H使用とし、図16空気吸引ウォータージェット79Yの水吸引噴射部を削除して、冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引噴射する合体機関噴射部78Aにして、図16同様に1段燃焼器1Yにより過熱蒸気50を内周より環状加熱し、2段燃焼器1Yや3段燃焼器1Yや4段燃焼器1Y等、用途に合わせた複数段燃焼器1Yにより、過熱蒸気50温熱を冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引噴射する合体機関噴射部78Aにして、高圧大質量の冷熱28a燃焼流6Yと合流噴射して短時間宇宙到達とし、既存ジェット機の10〜100倍圧力10倍質量噴射1000倍噴射推進出力狙いにして、円筒回転部77Gを回転案内具38の歯車装置76で180度以上回転して、垂直上昇や垂直降下や逆噴射を可能にし、何処でも飛行場や1日に地球を16周する等宇宙利用全盛にして、地球上何処でも日帰り旅行等を可能にし、電気+冷熱+温熱供給設備より受給専門の各種小型飛行機類まで略同様に78A使用可能にする。 The combined engine injection unit 78A drive in FIG. 21 explains mixed alloy injection of the tungsten alloy powder sintered sphere 2E with the liquid specific material mercury 3E pressure, and cools liquid oxygen and liquid nitrogen from the electricity + cold heat + heat supply equipment of onshore production. Liquid nitrogen is injected into the hot chamber, the pressure is increased, the storage output pressure is increased, and the vertical type moving blade ratio critical material gravity solar turbine 8H is used, and the water suction injection section of the air suction water jet 79Y in FIG. As shown in FIG. 16, the superheated steam 50 is heated by the one-stage combustor 1 </ b> A as shown in FIG. 16. Is heated annularly from the inner periphery, and fuel injection combustion is performed several times with 50-degree superheated steam as cold by using a multi-stage combustor 1Y, such as a 2-stage combustor 1Y, a 3-stage combustor 1Y, or a 4-stage combustor 1Y. And warm The combined jet engine 78A that heats and sprays the inner circumference and the inner circumference outer circumference a plurality of times, and sucks and injects air, is joined with the high-pressure, large-mass cold heat 28a combustion flow 6Y, and reaches the space for a short time. With the aim of 10 to 100 times pressure 10 times mass injection 1000 times injection propulsion output, the cylindrical rotating part 77G can be rotated 180 degrees or more with the gear device 76 of the rotation guide 38 to allow vertical ascent, vertical descent and reverse injection It is possible to make day trips anywhere on the earth, such as airfields and 16 orbits of the earth every day, making it possible to make day trips anywhere on the earth. 78A can be used.

図22の合体機関噴射部78B駆動は、液体比重大物質水銀3E圧力でタングステン合金粉末焼結球2Eを混合噴射で説明して、陸上製造の電気+冷熱+温熱供給設備より液体酸素や液体窒素を冷熱室に液体窒素を温熱室に圧入受給貯蔵出力圧力増大にし、陸上製造の電気+冷熱+温熱供給設備より液体酸素や液体窒素で受給貯蔵出力圧力増大容易にして、竪型全動翼比重大物質重力太陽熱タービン8H使用とし、図20の合体機関噴射部78Aに複数のアフターバーナー6Xを追加して、冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射する合体機関噴射部78Bを構成、図20同様に1段燃焼器1Yにより過熱蒸気50を内周より環状加熱し、2段燃焼器1Yや3段燃焼器1Yや4段燃焼器1Y等、用途に合わせた複数段燃焼器1Yにより、過熱蒸気50を内周と外周より環状加熱して、合体機関噴射部78B高圧大質量の冷熱28a燃焼流6Yに燃料噴射燃焼し、更に空気28a吸引噴射流に複数のアフターバーナー6Xを具備して、燃料噴射して冷熱28a燃焼流6Yに合流着火燃焼大幅な燃料燃焼量追加とし、高圧大質量冷熱28a利用で短時間宇宙に到達して、既存ジェット機の10〜100倍圧力10倍質量噴射1000倍噴射推進出力狙いにし、円筒回転部77Gを回転案内具38の歯車装置76で180度以上回転して、垂直上昇や垂直降下や逆噴射を可能にし、何処でも飛行場や1日に地球を16周する等宇宙利用全盛にして、地球上何処でも日帰り旅行等を可能にし、電気+冷熱+温熱供給設備より受給専門の各種小型飛行機類まで略同様に78B使用可能にする。 The combined engine injection unit 78B drive in FIG. 22 explains the tungsten alloy powder sintered sphere 2E by mixed injection at the liquid specific significant substance mercury 3E pressure, and supplies liquid oxygen and liquid nitrogen from the electricity + cold + heat supply equipment of land production. Increasing the supply and storage output pressure of liquid nitrogen in the cold room and pressurizing the hot and cold room, making it easier to increase the supply and storage output pressure with liquid oxygen and liquid nitrogen from the electricity + cold heat + heat supply equipment of onshore production A material gravity solar turbine 8H is used, and a plurality of afterburners 6X are added to the combined engine injection section 78A of FIG. 20, and fuel is injected into the cold multiple times to inject and burn the heat multiple times from the inner circumference and inner circumference outer circumference. In addition, a combined engine injection unit 78B that performs fuel injection combustion injection at a plurality of locations of the air suction flow and performs air suction injection is configured, and the superheated steam 50 is annularly heated from the inner periphery by the single-stage combustor 1Y as in FIG. The superheated steam 50 is annularly heated from the inner periphery and the outer periphery by a multi-stage combustor 1Y such as a two-stage combustor 1Y, a three-stage combustor 1Y, a four-stage combustor 1Y, etc. Fuel is burned and burned into a large mass of cold 28a combustion stream 6Y, and a plurality of afterburners 6X are provided in the air 28a suction jet stream, and fuel injection is performed to add a significant amount of fuel combustion to the cold 28a combustion stream 6Y. The high-speed, large-mass cold 28a is used to reach the universe for a short time, aiming for 10 to 100 times pressure 10 times mass injection 1000 times injection propulsion output of the existing jet aircraft, and the cylindrical rotating part 77G with the gear device 76 of the rotation guide 38 Rotate more than 180 degrees to allow vertical ascent, vertical descent, and reverse injection, making it possible to take a day trip anywhere on the earth by making full use of the space, such as flying around the earth 16 times a day anywhere. And, to 78B enable substantially similarly to than electrical + cold + heat supply equipment until receiving professional various small aircraft such.

理論最良タービンを全動翼比重大物質重力タービン8Hや、全動翼比重大物質重力冷熱タービン8Hや、全動翼比重大物質重力温熱タービン8H等として、大気圧同速度同容積仕事率kg重m/秒を、既存蒸気タービン発電の3.6万倍に近付け、発電機や船舶を駆動自然現象高速化2aして窒素や酸素やCO2を海水に供給し、微生物や植物プランクトンや海草等を増殖海水冷却中核にして、食物連鎖等により魚類やコンブ類等人類の食糧を増大し、各種中大型船舶速度を既存船舶の10倍速度等狙えるため、既存の火力発電所や原子力発電所や大型船舶を0に近付けて、竜巻の巨大化海水の豪雨で陸地に塩の被覆を設ける死の地球を阻止して、人類絶滅阻止人類の食物を増大する可能性が強い。 Theoretical best turbine is the total moving blade ratio critical material gravity turbine 8H, the total moving blade ratio critical material gravity cooling / heating turbine 8H, the total moving blade ratio critical material gravity thermal turbine 8H, etc. m / sec is close to 36,000 times that of existing steam turbine power generation, driving generators and ships, speeding up natural phenomena 2a, supplying nitrogen, oxygen and CO2 to seawater, supplying microorganisms, phytoplankton, seaweed, etc. In order to increase the food for humans such as fish and kombu using the food chain, etc., and to increase the speed of various medium and large ships, such as 10 times the speed of existing ships, the existing thermal power plant, nuclear power plant and large There is a strong possibility that the ship will be brought close to zero, and the torrential torrential rain of the tornado will prevent the dead earth that puts a salt cover on the land and increase human food to prevent human extinction.

太陽光加熱の空気を1〜複数段熱ポンプ1Gで複数回吸入複数回圧縮複数回熱回収し、24〜400MPa冷熱28a+温熱50で保存使用して、タービン駆動や合体機関噴射部駆動やウォータージェット駆動して、発電機や飛行機や船舶を駆動するため、CO2排気0発電全盛や太陽熱重力飛行機全盛や太陽熱重力船舶全盛にする可能性があり、発電量は既存世界の発電量の10倍前後になる可能性がある、船舶速度は燃料費僅少として既存船舶の10倍速度前後水抵抗僅少2bになる可能性が強く、飛行機類は垂直上昇や垂直降下や逆噴射を可能にして、何処でも飛行場や1日に地球を16周する等宇宙利用全盛にし、地球上何処でも日帰り旅行等にする可能性がある。 Solar-heated air is sucked multiple times with 1 to multiple-stage heat pump 1G, recovered multiple times, recovered heat, and stored at 24-400MPa cold 28a + hot 50, used for turbine drive, combined engine injection unit drive and water jet Because it drives and drives generators, airplanes and ships, there is a possibility of making CO2 exhaust 0 power prime, solar gravity airplane prime and solar thermal gravity ship prime, and the power generation amount is about 10 times the power generation amount of the existing world There is a strong possibility that the ship speed will be about 10 times the speed of the existing ship and the water resistance will be a little 2b as the fuel cost is low, and the airplanes will allow vertical ascent, vertical descent and reverse injection, anywhere in the airfield There is a possibility to make a day trip etc. anywhere on the earth by making the best use of space, such as 16 rounds of the earth per day.

各種重力タービン発電では太陽光加熱等各種空気を、1〜複数段熱ポンプ1Gで複数回吸入複数回圧縮複数回熱回収して、24〜400MPa冷熱28a+温熱50に分割保存使用し、発電機を駆動自然現象高速化2aして窒素や酸素やCO2を海水に供給海水冷却するため、燃料費0の電気駆動全盛や工場電化全盛や家庭電化全盛や温熱利用全盛や冷熱利用全盛にして、蓄電池駆動の自動車類全盛や船舶類全盛等蓄電池駆動全盛にし、既存の火力発電や原子力発電の使用熱量全部で海水温度7℃上昇を逆転海水冷却として、竜巻や台風や地震や津波や旱魃や集中豪雨の巨大化を阻止する可能性があります。 In various types of gravity turbine power generation, various types of air, such as solar heating, are suctioned multiple times with 1 to multiple heat pumps 1G, compressed multiple times, and recovered and used separately for storage at 24 to 400 MPa cold 28a + hot 50. Drive natural phenomenon speedup 2a to supply nitrogen, oxygen and CO2 to seawater to cool the seawater, drive battery storage with zero fuel cost electric drive prime, factory electrification prime, home electrification prime, warm use prime and cold use prime Accelerate storage batteries, such as the prime of automobiles and ships, and reverse the seawater temperature by 7 degrees Celsius with the total heat used by existing thermal and nuclear power generation as reverse seawater cooling. There is a possibility to prevent the huge.

0:各種エネルギ保存サイクル合体機関(各種熱エネルギは太陽熱や地熱で加熱等空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500以下液体金属使用時は保温装置で保温保存使用・衝撃エネルギはタービン翼や小径金属球にシリコン樹脂被覆やフッ素樹脂被覆を設け作用時間の保存延長に使用・重力エネルギは上昇装置により上昇保存使用する各種エネルギ合体エンジン) 0:各種エネルギ保存サイクル合体機関及び合体方法(各種熱エネルギは太陽熱や地熱で加熱等空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500以下液体金属使用時は保温装置で保温保存使用・衝撃エネルギはタービン翼や小径金属球にシリコン樹脂被覆やフッ素樹脂被覆を設け作用時間の保存延長に使用・重力エネルギは上昇装置により上昇保存使用する各種エネルギ合体エンジン及び各種エネルギ合体手段) 1:発電機、 1A:電気+冷熱+温熱供給設備(電気自動車の電気供給設備と同様に電気供給設備や冷熱供給設備や温熱供給設備を設けて蓄電池圧力エンジン自動車や蓄電池ウオータージェット船舶や蓄電池合体機関噴射部飛行機等電気利用全盛や冷熱利用全盛や温熱利用全盛にする) 1B:圧力エンジン(冷熱+温熱供給設備より受給して冷熱に燃料噴射燃焼往復機関を駆動等冷熱+温熱温度圧力容積を変化させて駆動するエンジン) 1C:アルコール、 1D:燃料噴射ポンプ、 1F:復水ポンプ、 1G:1〜複数段熱ポンプ(温熱50を温熱室3Bに+冷熱28aを冷熱室3Aに分割保存冷熱回収量増大後圧力無限上昇狙う) 1Y:燃焼器(超高圧高速燃焼で過熱蒸気50加熱が特徴) 1b:燃料管(燃料噴射温度が最適温度になるように具備する) 1d:水銀、 1g:重力加速部、 1h:横軸、 2:太陽光加熱器(長レンズで太陽光を直線状に集めて高温部形成吸入空気を加熱) 2a:自然現象高速化(空気中では変化略0の残飯類が近くの川に移動すると一夜で0に近付く膨大な微生物量を人類の食糧増大に利用) 2a:自然現象高速化(発電では海水に冷熱28aを混合自然現象高速化した海水を海底に供給窒素や酸素やCO2等の栄養分を供給微生物増大して魚類やコンブ等食糧大増大する装置) 2a:自然現象高速化(船舶では海中に窒素や酸素やCO2等の栄養分を供給微生物の消化能力を森林の数万倍狙い植物プランクトンや海草等を増殖食物連鎖等により魚類やコンブ類等人類の食糧を増大) 2b:水抵抗僅少(船底に空気+燃焼ガス+過熱蒸気を超高速噴射して水抵抗僅少にする) 2c:断熱材、 2d:長レンズ(凸レンズ断面を直線状に延長矩形とし複数使用で焦点距離最短レンズ幅最大狙う) 2e:水面、 2A:耐熱材、 2B:熱吸収材、 2C:1〜複数段圧縮熱回収器(1〜複数段熱ポンプで複数回圧縮複数回高温として2Cの2X2Y2Zで複数回熱回収の容器で冷熱+温熱の質量圧力無限増大狙う) 2E:比重大物質(合金含む、白金球・金球・タングステン合金粉末焼結球・銀球・銅球・錫球・鉛球・亜鉛球・アルミニウム球・インジウム・カドミウム・ガリウム・タリウム・ビスマス等比重の大きい物質) 2E:比重大物質(製造法は小径程衝撃エネルギが低減するため例えば溶融鋼を空気中に噴射高速衝突粉砕空気冷却水冷却で超小径鋼球等製造) 2E:比重大物質(シリコン樹脂被覆やケイ素樹脂被覆の、被覆白金合金球・被覆金合金球・被覆タングステン合金粉末焼結球・被覆銀合金球・被覆ビスマス合金球・被覆銅合金球・被覆錫合金球・被覆鉛合金球・被覆亜鉛合金球・被覆アルミニウム合金球) 2F:比重大物質上昇装置(重力エネルギを上昇保存) 2H:冷熱海水混合器(海水に冷熱を混合自然現象高速化の過程で過熱蒸気気化熱を冷却復水にする装置) 2X:空気熱交換器(空気を熱ポンプで圧縮高温として熱回収圧縮空気質量無限増大や圧力無限上昇狙う) 2Y:水熱交換器(高温空気や燃焼ガスで過熱蒸気製造) 2Z:比重大物質熱交換器(500度以下液体金属の温度管理等で使用) 3A:冷熱室(高圧冷熱の保存室) 3B:温熱室(高圧温熱の保存室) 3D:電気+冷熱+温熱供給設備(発電製造物の供給設備から供給し自動車や船舶や飛行機等各種移動手段を駆動や加熱冷却等電気・冷熱・温熱利用全盛にする) 3E:比重大物質(水銀や水等常温で液体の比重大物質) 3E:比重大物質(低融点合金の500度以下液体で安定高温液体合金) 3F:冷熱温熱往復機関(往復機関の吸気弁を給気弁として冷熱に燃料噴射燃焼して外周の温熱や窒素等を加熱双方の加熱温度を最適にする膨張回数でピストン両面又は片面駆動する) 3G:冷熱往復機関(往復機関の吸気弁を給気弁として冷熱に燃料噴射燃焼して外周の窒素を加熱双方の加熱温度を最適にする膨張回数でピストン両面又は片面駆動する) 4X:タービン翼断面(断面積を拡大表面積増大) 6A:過熱蒸気噴射ノズル、 6B:圧縮空気噴射ノズル、 6E:比重大物質噴射ノズル、 6W:比重大物質加速機(比重利用で上部より空気圧力液体比重大物質3E比重大物質2Eとし、3E圧力で2E混合噴射) 6X:燃料噴射ノズル、6X:アフターバーナー(吸引空気流に燃料噴射冷熱28a燃焼流6Yに合流燃焼して燃料燃焼量大増大で宇宙上昇) 6Y:燃焼ガス噴射ノズル(冷熱28a燃焼流) 7A:プロペラ、 7B:回転翼、 7C:スクリュー、 8c:タービン翼(内側と外側タービン翼が回転方向180度相違の時点で夫々を同形同面積多数タービン翼とし実験最良に移行) 8H:竪型全動翼タービン(小型大出力段落毎環状同径略同形略同長ねじ組立9回転止め固定として互いに反対方向に回転する全動翼必須に対応し軽量化等実験最良に移行) 8H:竪型全動翼タービン(超硬合金貼付やシリコン樹脂被覆やフッ素樹脂被覆のタービン翼選択) 8H:竪型全動翼比重大物質重力太陽熱タービン(既存蒸気タービンは静翼で堰き止め出力が0に近付くため全動翼を必須とし仕事率が白金球の1/3.6万等僅少なため比重大物質重力使用必須とし太陽光加熱空気等空気を1〜複数段熱ポンプ+圧縮熱回収器で圧縮熱回収し温熱+冷熱に分割保存タービン駆動+各種用途に使用) 8H:竪型全動翼比重大物質重力タービン(温熱駆動+冷熱駆動にすると使用落差が限定されるため落差使用無制限の場合使用) 9:段落毎環状ネジ組立、 10:船体、 10A:船室、 10b:操縦室、 10c:制御室、 10d:客室、 10e:貨物室、 16B:垂直軸、 24:燃焼ガス制御弁、 24A:圧縮空気制御弁、 25:過熱蒸気制御弁、 25b:燃料制御弁、 28a:空気、 28a:冷熱(空気28aを熱ポンプで圧縮して圧縮空気熱量の過熱蒸気50温熱+液体酸素や液体窒素を含む圧縮空気28a冷熱に分割保存) 28b:圧縮空気熱量、 28A:吸入空気路、 28B:空気路入口、 38:回転案内具、 38a:飛行胴、 38b:飛行翼、 38c:飛行尾翼、 38d:垂直翼、 38e:翼前縁心、 38g:水上翼、 38h:浮上艇、 38B:空気吸引噴射船舶(79S79T79Y79Z具備) 38C:水吸引噴射船舶(79U79X具備) 39A:太陽熱重力飛行機、 39B:太陽熱重力回転飛行機、 39C:太陽熱重力ヘリコプター、 39D:スクリュー船舶、 39G:太陽熱重力飛行船舶、 40A:方向舵、 49:燃焼ガス、 50:過熱蒸気、50:温熱(空気28aを熱ポンプで圧縮して圧縮空気熱量の過熱蒸気50温熱+圧縮空気28a冷熱に分割保存) 51:空気抽出器、 51:合流抽出器(合流するための抽出器) 51A:空気抽出室、 52a:水、 52a:海洋深層水、 52b:高温水、 52d:温熱(50から変化) 52e:冷熱(28aから変化) 55B:変速装置、 60A:内側軸装置(タービン翼具備装置) 60B:外側軸装置(タービン翼具備装置) 60C:内側動翼群(内側と外側が反対回転) 60D:外側動翼群(内側と外側が反対回転) 76:歯車装置(磁気摩擦動力伝達装置を含む) 77B:半筒形外箱、 77F:噴射部外箱、 77G:円筒回転部、 77a:タービン外箱、 78A:合体機関噴射部(冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引噴射する) 78B:合体機関噴射部(冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射する) 78V:合体機関噴射部(冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射する) 78W:合体機関噴射部(冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、空気吸引噴射する) 79S:ウォータージェット(冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、空気吸引噴射して水を吸引噴射する) 79T:ウォータージェット(冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射して水を吸引噴射する) 79U:ウォータージェット(冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、水を吸引噴射する) 79X:ウォータージェット(冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、水を吸引噴射する) 79Y:ウォータージェット(冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引噴射して水を吸引噴射する) 79Z:ウォータージェット(冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射して水を吸引噴射する) 80:軸受、 80a:油圧浮上推力軸受(空気軸受の空気圧を油圧とし、油圧圧力面積増大微傾斜や金属製Oリング複数具備等) 80A:継手、 80B:締付具、 84:二重反転磁気摩擦装置(固定部具備内側動翼群と外側動翼群を略同速度反対回転にする装置) 84Y:二重反転歯車装置(既存技術で同様にする) 95a:燃焼ガス溜、 95b:圧縮空気溜、 95c:過熱蒸気溜、 103:冷熱回収器、 0: Combined engine with various energy storage cycles (various heat energy is heated by solar heat or geothermal heat, etc., used as an air temperature, divided by heat pump, compressed high-pressure cold heat + warm heat, and when used under 500 or less liquid metal, kept warm by a heat retaining device. Impact energy is turbine blades and small diameter metal spheres with silicone resin coating or fluororesin coating used to extend the working time. Gravity energy is increased and stored using a lifting device. 0: Various energy storage cycle combined engines And coalescence method (Various heat energy is heated by solar heat or geothermal heat, etc. Air temperature is divided into heat and compression compressed high pressure cold heat + heat use. Use less than 500 liquid metal, keep warm with heat retention device. Impact energy is turbine blade. Used to extend the working time by providing silicon resin coating or fluororesin coating on small diameter metal balls and gravity energy Gi is various energy coalescing engine and various energy coalescence means that are used for ascending storage by the ascending device) 1: Generator, 1A: Electricity + Cold + Heat supply equipment (Electricity supply equipment and cold heat supply equipment as well as electric supply equipment for electric vehicles) 1B: Pressure engine (received from cold / heat supply facility) 1B: Pressure engine (received from cold + heat supply facility) 1C: alcohol, 1D: fuel injection pump, 1F: condensate pump, 1G: 1 to multi-stage heat pump (Aim for an infinite increase in pressure after increasing the amount of stored cold energy by dividing the warm temperature 50 into the warm chamber 3B and the cold 28a into the cool chamber 3A) 1Y Combustor (super high-pressure high-speed combustion is characterized by 50 superheated steam heating) 1b: Fuel pipe (provided so that the fuel injection temperature becomes the optimum temperature) 1d: Mercury, 1g: Gravity acceleration part, 1h: Horizontal axis, 2: Sunlight heater (collects sunlight in a straight line with a long lens and heats the high-temperature part forming intake air) 2a: Speeding up the natural phenomenon 2a: Acceleration of natural phenomena (In power generation, cold water 28a is mixed with seawater to supply seawater that is accelerated in natural phenomena to the seabed) Nutrients such as nitrogen, oxygen and CO2 are supplied 2a: Accelerating natural phenomena (supplying nutrients such as nitrogen, oxygen and CO2 into the sea in the ocean, phytoplankton, seaweed, etc.) Proliferate food 2b: Low water resistance (Air + combustion gas + superheated steam is sprayed to the bottom of the ship at a high speed to reduce water resistance) 2c: Thermal insulation, 2d: Long Lens (Convex lens cross section is linearly extended rectangular and multiple lenses are used to achieve maximum focal length shortest lens width) 2e: Water surface, 2A: Heat-resistant material, 2B: Heat absorbing material, 2C: 1 to multistage compression heat recovery device (1 to 1) Compressed multiple times with multiple stage heat pump Multiple times high temperature 2C 2X2Y2Z multiple times heat recovery container aiming for infinite increase in cold / hot mass pressure 2E: Specific critical materials (including alloys, platinum balls, gold balls, tungsten alloys) Sintered powder spheres, silver spheres, copper spheres, tin spheres, lead spheres, zinc spheres, aluminum spheres, indium, cadmium, gallium, thallium, bismuth, etc. In order to reduce energy, for example, molten steel is injected into the air, and high-speed collision pulverization and air cooling water cooling is used to produce ultra-small-diameter steel balls. 2E: Specific critical substances (silicon resin-coated or silicon resin-coated platinum alloy balls / coated gold Alloy balls, coated tungsten alloy powder sintered balls, coated silver alloy balls, coated bismuth alloy balls, coated copper alloy balls, coated tin alloy balls, coated lead alloy balls, coated zinc alloy balls, coated aluminum alloy balls) 2F: Specific critical substances Climbing device (gravity energy is saved and saved) 2H: Chilled seawater mixer (mixed cold water into seawater is a device that cools and condenses the heat of vaporization of superheated steam in the process of speeding up natural phenomena) 2X: Air heat exchanger (heats air) 2Y: Water heat exchanger (manufacturing superheated steam with high-temperature air or combustion gas) 2Z: Specific critical material heat exchanger (50 3A: Cold room (high pressure cold storage room) 3B: Hot room (high pressure hot storage room) 3D: Electricity + cold heat + hot water supply equipment (from power supply product supply equipment) 3E: Specific critical substances (specific critical substances that are liquid at normal temperatures such as mercury and water) 3E: Specific critical substances (Low-melting-point alloy 500 ° C liquid and stable high-temperature liquid alloy) 3F: Cold / hot reciprocating engine (both reciprocating engine's intake valve serves as a supply valve for fuel injection and combustion to cool and heat both the outer heat and nitrogen etc.) 3G: Cooling reciprocating engine (using the reciprocating engine's intake valve as a supply valve to heat and cool the fuel by injecting fuel into the cold to optimize the temperature of both sides) With the number of expansions 4X: Turbine blade cross section (enlarged cross section area) 6A: Superheated steam injection nozzle, 6B: Compressed air injection nozzle, 6E: Specific critical material injection nozzle, 6W: Specific critical material accelerator ( Utilizing specific gravity, air pressure liquid ratio material 3E ratio material 2E from the top, 3E pressure and 2E mixed injection) 6X: Fuel injection nozzle, 6X: Afterburner (combustion combined with fuel injection cold heat 28a combustion flow 6Y into suction air flow) 6Y: Combustion gas injection nozzle (cold 28a combustion flow) 7A: Propeller, 7B: Rotating blade, 7C: Screw, 8c: Turbine blade (inner and outer turbine blades rotating in 180 degrees) 8H: Vertical type all-blade turbine (each small high power stage) 8H: Vertical type rotor blade turbine (with cemented carbide alloy attached, etc.) 8H: Vertical type rotor blade turbine Selection of turbine blades with silicon resin coating or fluororesin coating) 8H: Vertical type moving blade specific material gravity solar thermal turbine (existing steam turbine is a stationary blade and the damming output approaches 0, so all moving blades are indispensable and the work rate is 1 / 360,000 of platinum spheres are very small, so it is essential to use gravity, which is a particularly important material. Solar-heated air, etc. is compressed and recovered by compressing heat with 1 to multiple-stage heat pump + compression heat recovery unit, and divided into hot and cold turbines. 8H: Vertical type moving blade ratio critical material gravity turbine (Used in the case of hot drive + cold drive, the use head is limited, so that the head use is unlimited) 9: Ring screw assembly per paragraph, 10 : Hull, 10 : Cabin, 10b: cockpit, 10c: control room, 10d: passenger room, 10e: cargo compartment, 16B: vertical axis, 24: combustion gas control valve, 24A: compressed air control valve, 25: superheated steam control valve, 25b: Fuel control valve 28a: Air 28a: Cold (compressed air 28a is compressed with a heat pump and stored in the form of 50 heat of compressed air calorie + compressed air 28a cold containing liquid oxygen and liquid nitrogen) 28b: Compressed air calorie , 28A: intake air passage, 28B: air passage inlet, 38: rotation guide, 38a: flight trunk, 38b: flight wing, 38c: flight tail, 38d: vertical wing, 38e: leading edge of the wing, 38g: surface wing 38h: Ascending boat, 38B: Air suction jet ship (with 79S79T79Y79Z) 38C: Water suction jet ship (with 79U79X) 39A: Solar thermal weight Airplane, 39B: Solar thermal gravity rotating plane, 39C: Solar thermal gravity helicopter, 39D: Screw ship, 39G: Solar thermal gravity ship, 40A: Rudder, 49: Combustion gas, 50: Superheated steam, 50: Heat pump (heats air 28a) 50: Heat of compressed air calorie and heated by dividing into 50 warm heat + compressed air 28a cold) 51: Air extractor 51: Merge extractor (extractor for joining) 51A: Air extraction chamber, 52a: Water, 52a: Deep ocean water, 52b: Hot water, 52d: Thermal (change from 50) 52e: Cold (change from 28a) 55B: Transmission, 60A: Inner shaft device (turbine blade equipped device) 60B: Outer shaft device (turbine) 60C: Inner blade group (inner and outer rotations opposite) 60D: Outer blade group (inner and outer sides are opposite) Rotation) 76: Gear device (including magnetic friction power transmission device) 77B: Semi-cylindrical outer box, 77F: Outer casing outer box, 77G: Cylindrical rotating section, 77a: Turbine outer casing, 78A: Combined engine injection section (cold heat) 78B: Combined engine injection section (heat injection and combustion multiple times to cool and heat the inner circumference) 78V: Combined engine injection unit (heated by multiple times of fuel injection combustion to cold heat and injection) 78W: Combined engine injection section (multiple times of fuel for cold heat) Inner and outer peripheries and inner and outer peripheries by injection combustion 79S: Water jet (injection into air and inject by air) 79S: Water jet (injection and combustion into cold heat multiple times, heat is injected from the inner periphery, outer periphery, and inner periphery outer periphery multiple times to inject, air suction injection) 79T: Water jet (fuel injection burns multiple times to cool and injects hot heat from the inner circumference, outer circumference, and inner circumference outer circumference, and injects the fuel into multiple locations of air suction flow 79U: Water jet (cooling fuel is burned multiple times to inject and burn and heat is injected multiple times from the inner circumference, outer circumference, and inner circumference outer circumference, and jetted. 79X: Water jet (heat injection and combustion multiple times to cool and inject hot water from the inner periphery and inner and outer periphery to inject and suck water) 79Y: Water jet (to cool) More than once 79Z: Water jet (cold heat is injected several times into the cold and fuel is injected into the heat to inject the heat) 80: bearing, 80a: hydraulic levitation thrust bearing (The air pressure of the air bearing is oil pressure, the hydraulic pressure area increases slightly, and there are a plurality of metal O-rings, etc.) 80A: Joint, 80B: Fastening tool, 84: Counter rotating magnetic friction device (fixed part inner blade group) 84Y: Counter-rotating gear device (same as in the existing technology) 95a: combustion gas reservoir, 95b: compressed air reservoir, 95c: superheated steam reservoir, 103: Cold energy recovery unit,

Claims (214)

仕事率を既存蒸気タービンの3.6万倍白金球仕事率に近付け回転方向180度相違の時点で内側動翼外側動翼夫々を略同形タービン翼(8c)・段落毎環状ネジ組立(9)とした竪型全動翼比重大物質重力タービン(8H)を幅広微傾斜Oリング追加油圧浮上推力軸受(80a)及び電気+冷熱+温熱供給設備具備して発電する、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   When the work rate approaches 36,000 times that of the existing steam turbine and the platinum ball work rate differs by 180 degrees in the rotational direction, the inner rotor blade and outer rotor blade are each substantially the same turbine blade (8c) and annular screw assembly per paragraph (9) The vertical type moving blade ratio critical material gravity turbine (8H), which has a wide and slightly inclined O-ring additional hydraulic levitation thrust bearing (80a) and electric + cold + heat supply equipment, is used to generate electricity. Use a heat pump to separate and store cold / heated high pressure + 500 ° C or less liquid heat storage use • Impact energy is extended with a resin coating, and energy storage cycle is combined to use gravity energy rise storage Organization and coalescence method. 仕事率を既存蒸気タービンの3.6万倍白金球仕事率に近付け回転方向180度相違の時点で内側動翼外側動翼夫々を略同形タービン翼(8c)・段落毎環状ネジ組立(9)とした竪型全動翼比重大物質重力タービン(8H)駆動にして1〜複数段熱ポンプ(1G)1〜複数段圧縮熱回収器(2C)で冷熱製造量増大して冷熱圧力を上昇発電+温熱+冷熱利用及び電気+冷熱+温熱供給設備全盛にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   When the work rate approaches 36,000 times that of the existing steam turbine and the platinum ball work rate differs by 180 degrees in the rotational direction, the inner rotor blade and outer rotor blade are each substantially the same turbine blade (8c) and annular screw assembly per paragraph (9) The vertical type moving blade ratio critical material gravity turbine (8H) is driven, and 1 to multi-stage heat pump (1G) 1 to multi-stage compression heat recovery unit (2C) is used to increase the amount of cold production and raise the cold pressure + Thermal energy + Cold energy use and Electricity + Cold energy + Heat supply equipment is primed. Various heat energy is used as air temperature by heat pump, compressed high pressure cold heat + divided heat use. Various energy conservation cycle coalescence engines and coalescence methods are used in which impact energy is provided with resin coating to extend the action preservation and gravity energy is preserved. 仕事率を既存蒸気タービンの3.6万倍白金球仕事率に近付け回転方向180度相違の時点で内側動翼外側動翼夫々を略同形タービン翼(8c)・段落毎環状ネジ組立(9)とした竪型全動翼比重大物質重力タービン(8H)で発電電気駆動して1〜複数段熱ポンプ(1G)1〜複数段圧縮熱回収器(2C)で冷熱製造量増大して冷熱圧力を上昇発電+温熱+冷熱利用及び電気+冷熱+温熱供給設備全盛にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   When the work rate approaches 36,000 times that of the existing steam turbine and the platinum ball work rate differs by 180 degrees in the rotational direction, the inner rotor blade and outer rotor blade are each substantially the same turbine blade (8c) and annular screw assembly per paragraph (9) Power generation and electric drive by gravity turbine (8H), which is a vertical all-blade ratio critical material, and 1 to multi-stage heat pump (1G) 1 to multi-stage compression heat recovery unit (2C) to increase the amount of cold production and increase the cold pressure Ascending power generation + heat + cold utilization and electricity + cold heat + heat supply facilities prime, various heat energy is compressed and stored in high pressure cold heat + heat with a heat pump as the air temperature · Keeping heat when using liquid metal below 500 degrees Preservation use / impact energy is provided with a resin coating to extend the action preservation. Gravity energy is used for ascending preservation. 仕事率を既存蒸気タービンの3.6万倍白金球仕事率に近付け回転方向180度相違の時点で内側動翼外側動翼夫々を略同形タービン翼(8c)・段落毎環状ネジ組立(9)とした竪型全動翼比重大物質重力太陽熱タービン(8H)で発電電気駆動にして1段熱ポンプ(1G)で温熱+冷熱製造量増大して2〜複数段熱ポンプ(1G)で冷熱圧力を更に上昇発電+温熱+冷熱利用及び電気+冷熱+温熱供給設備全盛にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   When the work rate approaches 36,000 times that of the existing steam turbine and the platinum ball work rate differs by 180 degrees in the rotational direction, the inner rotor blade and outer rotor blade are each substantially the same turbine blade (8c) and annular screw assembly per paragraph (9) A vertical all-blade ratio critical material gravity solar heat turbine (8H) is used for electric power generation and electric power is driven by a single-stage heat pump (1G), and the amount of heat and cold is increased, and a cold pressure is generated by a two-stage heat pump (1G). Further increase power generation + heat + cold utilization and electricity + cold heat + heat supply equipment prime, various heat energy is air temperature as a heat pump compressed and stored in high pressure cold heat + heat and when used below 500 degrees liquid metal Use of heat preservation storage / impact energy is provided with a resin coating to extend the action storage, and gravity energy is used for energy storage cycle coalescence engine and coalescence method using ascending preservation. 仕事率を既存蒸気タービンの3.6万倍白金球仕事率に近付け回転方向180度相違の時点で内側動翼外側動翼夫々を略同形タービン翼(8c)・段落毎環状ネジ組立(9)とした竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)具備及び電気+冷熱+温熱供給設備より受給してプロペラ(7A)駆動する移動手段とした、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   When the work rate approaches 36,000 times that of the existing steam turbine and the platinum ball work rate differs by 180 degrees in the rotational direction, the inner rotor blade and outer rotor blade are each substantially the same turbine blade (8c) and annular screw assembly per paragraph (9) Vertical moving blade ratio critical material gravity solar heat turbine (8H) 1 to multi-stage compression heat recovery device (2C) equipped with and a moving means that receives propeller (7A) by receiving electricity + cold + heat supply equipment , Various heat energies are divided into air pressure, compressed by high pressure cold heat + heat using a heat pump. Use heat preservation when using liquid metal below 500 degrees. Impact energy is extended by preserving action by providing a resin coating. Gravity energy increases. Various energy storage cycle coalescence engines and coalescence methods for preservation and use. 仕事率を既存蒸気タービンの3.6万倍白金球仕事率に近付け回転方向180度相違の時点で内側動翼外側動翼夫々を略同形タービン翼(8c)・段落毎環状ネジ組立(9)とした竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)具備及び電気+冷熱+温熱供給設備より受給して回転翼(7B)駆動する移動手段とした、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   When the work rate approaches 36,000 times that of the existing steam turbine and the platinum ball work rate differs by 180 degrees in the rotational direction, the inner rotor blade and outer rotor blade are each substantially the same turbine blade (8c) and annular screw assembly per paragraph (9) A vertical type moving blade ratio critical material gravity solar turbine (8H) 1 to a multi-stage compression heat recovery unit (2C) and a moving means that receives electric + cold + heat supply equipment and drives the rotary blade (7B) Each heat energy is divided into a high pressure cold heat + heat using a heat pump as the air temperature. Use heat storage when using liquid metal below 500 degrees. Use impact resin to extend the action storage by providing a resin coating. Gravity energy is Various energy conservation cycle coalescence engines and coalescence methods used for ascending conservation. 仕事率を既存蒸気タービンの3.6万倍白金球仕事率に近付け回転方向180度相違の時点で内側動翼外側動翼夫々を略同形タービン翼(8c)・段落毎環状ネジ組立(9)とした竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)具備及び電気+冷熱+温熱供給設備より受給してスクリュー(7C)駆動する移動手段とした、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   When the work rate approaches 36,000 times that of the existing steam turbine and the platinum ball work rate differs by 180 degrees in the rotational direction, the inner rotor blade and outer rotor blade are each substantially the same turbine blade (8c) and annular screw assembly per paragraph (9) Vertical moving blade ratio critical material gravity solar heat turbine (8H) 1 to multistage compression heat recovery unit (2C) equipped with and a moving means that receives the electric + cold + heat supply equipment and drives the screw (7C) , Various heat energies are divided into air pressure, compressed by high pressure cold heat + heat using a heat pump. Use heat preservation when using liquid metal below 500 degrees. Impact energy is extended by preserving action by providing a resin coating. Gravity energy increases. Various energy storage cycle coalescence engines and coalescence methods for preservation and use. 仕事率を既存蒸気タービンの3.6万倍白金球仕事率に近付け回転方向180度相違の時点で内側動翼外側動翼夫々を略同形タービン翼(8c)とした竪型全動翼比重大物質重力太陽熱タービン(8H)と1〜複数段熱ポンプ(1G)で製造電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引噴射する合体機関噴射部(78A)駆動する移動手段とした、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   When the work rate is close to the 36,000 times platinum ball work rate of the existing steam turbine and the rotational direction is 180 degrees different, the inner blade and outer blades are almost identical turbine blades (8c). Manufactured by mass gravity solar heat turbine (8H) and 1 to multi-stage heat pump (1G), heat is injected multiple times into cold heat received from electricity + cold heat + heat supply equipment, and heat is heated multiple times from the inner circumference and inner circumference outer circumference As a moving means to drive the united engine injection part (78A) that injects and injects air, various heat energies are divided into air pressure and compressed high pressure cold heat + heat using a heat pump. Use less than 500 degrees liquid metal When using heat preservation storage ・ Impact energy is provided with a resin coating to extend the action preservation ・ Gravity energy rises and uses various energy preservation cycle coalescence engine and coalescence method. 仕事率を既存蒸気タービンの3.6万倍白金球仕事率に近付け回転方向180度相違の時点で内側動翼外側動翼夫々を略同形タービン翼(8c)とした竪型全動翼比重大物質重力太陽熱タービン(8H)と1〜複数段熱ポンプ(1G)で製造電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射する合体機関噴射部(78B)駆動する移動手段とした、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   When the work rate is close to the 36,000 times platinum ball work rate of the existing steam turbine and the rotational direction is 180 degrees different, the inner blade and outer blades are almost identical turbine blades (8c). Manufactured by mass gravity solar heat turbine (8H) and 1 to multi-stage heat pump (1G), heat is injected multiple times into cold heat received from electricity + cold heat + heat supply equipment, and heat is heated multiple times from the inner circumference and inner circumference outer circumference As a moving means for driving the combined engine injection part (78B) that injects and injects the fuel into the air suction flow at a plurality of locations, and injects and sucks the air, various heat energies are compressed with a heat pump as the air temperature. Uses divided storage of cold heat + heat ・ Uses heat storage when using liquid metal below 500 ° C ・ Impact energy is extended by providing a resin coating ・ Gravity energy is stored and used for various energy storage cycles Method. 仕事率を既存蒸気タービンの3.6万倍白金球仕事率に近付け回転方向180度相違の時点で内側動翼外側動翼夫々を略同形タービン翼(8c)とした竪型全動翼比重大物質重力太陽熱タービン(8H)と1〜複数段熱ポンプ(1G)で製造電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射する合体機関噴射部(78V)駆動する移動手段とした、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。
体機関。
When the work rate is close to the 36,000 times platinum ball work rate of the existing steam turbine and the rotational direction is 180 degrees different, the inner blade and outer blades are almost identical turbine blades (8c). Manufactured by mass gravity solar heat turbine (8H) and 1 to multi-stage heat pump (1G). Multiple heat injections are performed on cold heat received from electricity + cold heat + heat supply equipment, and multiple heat is produced from the inner circumference, outer circumference and inner circumference outer circumference. Various heat energy is used as a moving means to drive the combined engine injection part (78V) that injects and heats, injects, and also injects and injects fuel into a plurality of locations of the air suction flow. Compressed and high-pressure cold / heat divided and stored for use ・ When using liquid metal below 500 degrees C, use for heat storage ・ Impact energy is extended by providing a resin coating ・ Gravity energy is increased and used for storage Combined engine Fine coalescence method.
Body engine.
仕事率を既存蒸気タービンの3.6万倍白金球仕事率に近付け回転方向180度相違の時点で内側動翼外側動翼夫々を略同形タービン翼(8c)とした竪型全動翼比重大物質重力太陽熱タービン(8H)と1〜複数段熱ポンプ(1G)で製造電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、空気吸引噴射する合体機関噴射部(78W)駆動する移動手段とした、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   When the work rate is close to the 36,000 times platinum ball work rate of the existing steam turbine and the rotational direction is 180 degrees different, the inner blade and outer blades are almost identical turbine blades (8c). Manufactured by mass gravity solar heat turbine (8H) and 1 to multi-stage heat pump (1G). Multiple heat injections are performed on cold heat received from electricity + cold heat + heat supply equipment, and multiple heat is produced from the inner circumference, outer circumference and inner circumference outer circumference. Various heat energy used as a moving means to drive the combined engine injection unit (78W) that injects and heats and injects and sucks and injects air. The air temperature is divided into the high pressure cold heat + heat by the heat pump. When using metal, use heat preservation, impact energy is provided with a resin coating, action preservation is extended, and gravitational energy is raised and used. 仕事率を既存蒸気タービンの3.6万倍白金球仕事率に近付け回転方向180度相違の時点で内側動翼外側動翼夫々を略同形タービン翼(8c)とした竪型全動翼比重大物質重力太陽熱タービン(8H)と1〜複数段熱ポンプ(1G)で製造電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、空気吸引噴射して水を吸引噴射するウォータージェット(79S)駆動する移動手段とした、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   When the work rate is close to the 36,000 times platinum ball work rate of the existing steam turbine and the rotational direction is 180 degrees different, the inner blade and outer blades are almost identical turbine blades (8c). Manufactured by mass gravity solar heat turbine (8H) and 1 to multi-stage heat pump (1G). Multiple heat injections are performed on cold heat received from electricity + cold heat + heat supply equipment, and multiple heat is produced from the inner circumference, outer circumference and inner circumference outer circumference. Various heat energy used as moving means driven by water jet (79S) that injects and heats and injects, sucks and injects air by suction, and is used as air temperature by heat pump and compressed and stored in cold + hot heat Various energy storage cycle coalescing engines and coalescing methods that use heat insulation when using liquid metal below 500 degrees, use impact resin to extend the action preservation by providing a resin coating, and use gravity energy for preservation. 仕事率を既存蒸気タービンの3.6万倍白金球仕事率に近付け回転方向180度相違の時点で内側動翼外側動翼夫々を略同形タービン翼(8c)とした竪型全動翼比重大物質重力太陽熱タービン(8H)と1〜複数段熱ポンプ(1G)で製造電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射して水を吸引噴射するウォータージェット(79T)駆動する移動手段とした、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   When the work rate is close to the 36,000 times platinum ball work rate of the existing steam turbine and the rotational direction is 180 degrees different, the inner blade and outer blades are almost identical turbine blades (8c). Manufactured by mass gravity solar heat turbine (8H) and 1 to multi-stage heat pump (1G). Multiple heat injections are performed on cold heat received from electricity + cold heat + heat supply equipment, and multiple heat is produced from the inner circumference, outer circumference and inner circumference outer circumference. Various heat energy is used as a moving means driven by a water jet (79T) that injects and heats, injects, injects and injects fuel into a plurality of air suction flows, and sucks and injects air. Compressed high pressure cold heat + heat with a heat pump and used for split storage ・ When using liquid metal below 500 degrees, use heat storage ・ Shock energy is provided with a resin coating to extend the action storage ・ Gravity energy is stored and used Exist cycle combined institutions and coalescence method. 仕事率を既存蒸気タービンの3.6万倍白金球仕事率に近付け回転方向180度相違の時点で内側動翼外側動翼夫々を略同形タービン翼(8c)とした竪型全動翼比重大物質重力太陽熱タービン(8H)と1〜複数段熱ポンプ(1G)で製造電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、水を吸引噴射するウォータージェット(79U)駆動する移動手段とした、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   When the work rate is close to the 36,000 times platinum ball work rate of the existing steam turbine and the rotational direction is 180 degrees different, the inner blade and outer blades are almost identical turbine blades (8c). Manufactured by mass gravity solar heat turbine (8H) and 1 to multi-stage heat pump (1G). Multiple heat injections are performed on cold heat received from electricity + cold heat + heat supply equipment, and multiple heat is produced from the inner circumference, outer circumference and inner circumference outer circumference. Various heat energy is used as a moving means to drive water jet (79U) that injects and injects water and sucks and injects water. The air temperature is divided into a high pressure cold heat + heat using a heat pump. Various energy storage cycle coalescing engines and coalescing methods that use heat preservation during use, impact energy is provided with resin coating to extend the action preservation, and gravitational energy rises. 仕事率を既存蒸気タービンの3.6万倍白金球仕事率に近付け回転方向180度相違の時点で内側動翼外側動翼夫々を略同形タービン翼(8c)とした竪型全動翼比重大物質重力太陽熱タービン(8H)と1〜複数段熱ポンプ(1G)で製造電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、水を吸引噴射するウォータージェット(79X)駆動する移動手段とした、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   When the work rate is close to the 36,000 times platinum ball work rate of the existing steam turbine and the rotational direction is 180 degrees different, the inner blade and outer blades are almost identical turbine blades (8c). Manufactured by mass gravity solar heat turbine (8H) and 1 to multi-stage heat pump (1G), heat is injected multiple times into cold heat received from electricity + cold heat + heat supply equipment, and heat is heated multiple times from the inner circumference and inner circumference outer circumference As a moving means that drives water jet (79X) that injects and sucks and injects water, various heat energies are stored as air temperature by a heat pump, divided into high pressure cold heat + heat, and when used below 500 degrees Use heat preservation storage, impact energy is provided with resin coating to extend the action storage, and gravity energy is stored by using various energy storage cycle coalescence engine and coalescence method. 仕事率を既存蒸気タービンの3.6万倍白金球仕事率に近付け回転方向180度相違の時点で内側動翼外側動翼夫々を略同形タービン翼(8c)とした竪型全動翼比重大物質重力太陽熱タービン(8H)と1〜複数段熱ポンプ(1G)で製造電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引噴射して水を吸引噴射するウォータージェット(79Y)駆動する移動手段とした、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   When the work rate is close to the 36,000 times platinum ball work rate of the existing steam turbine and the rotational direction is 180 degrees different, the inner blade and outer blades are almost identical turbine blades (8c). Manufactured by mass gravity solar heat turbine (8H) and 1 to multi-stage heat pump (1G), heat is injected multiple times into cold heat received from electricity + cold heat + heat supply equipment, and heat is heated multiple times from the inner circumference and inner circumference outer circumference It is used as a moving means that drives the water jet (79Y) that injects and sucks and injects water by air suction. Various heat energy is stored as air temperature by a heat pump divided into compressed high pressure cold heat + heat. Below, when using liquid metal, use of heat preservation, impact energy is provided with a resin coating, action preservation is extended, and gravitational energy is raised and used. 仕事率を既存蒸気タービンの3.6万倍白金球仕事率に近付け回転方向180度相違の時点で内側動翼外側動翼夫々を略同形タービン翼(8c)とした竪型全動翼比重大物質重力太陽熱タービン(8H)と1〜複数段熱ポンプ(1G)で製造電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射して水を吸引噴射するウォータージェット(79Z)駆動する移動手段とした、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   The power ratio is close to the 36,000 times platinum ball power of the existing steam turbine, and when the rotational direction is 180 degrees different, the inner rotor blade and outer rotor blades are almost identical turbine blades (8c). Manufactured by mass gravity solar heat turbine (8H) and 1 to multi-stage heat pump (1G), heat is injected multiple times into cold heat received from electricity + cold heat + heat supply equipment, and heat is heated multiple times from the inner circumference and inner circumference outer circumference As a moving means for driving the water jet (79Z) that injects and injects fuel into a plurality of locations of air suction flow, and injects and injects air and sucks and injects water, various heat energy is heated as air temperature. Uses divided storage for compression and high pressure cold heat + heat with a pump. Uses heat preservation when using liquid metal below 500 degrees. Uses a resin coating for impact energy to extend the action preservation. Kuru union organizations and coalescence method. 仕事率を既存蒸気タービンの3.6万倍白金球仕事率に近付け回転方向180度相違の時点で内側動翼外側動翼夫々を略同形タービン翼(8c)・段落毎環状ネジ組立(9)とした竪型全動翼比重大物質重力タービン(8H)で発電した電気+冷熱+温熱供給設備より受給して車両類を駆動する、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   When the work rate approaches 36,000 times that of the existing steam turbine and the platinum ball work rate differs by 180 degrees in the rotational direction, the inner rotor blade and outer rotor blade are each substantially the same turbine blade (8c) and annular screw assembly per paragraph (9) Electric power generated by gravity-type gravity turbine (8H) + cold heat + heat supply equipment to drive vehicles, and various heat energy is compressed by high-pressure cold heat compressed by a heat pump as air temperature + Various energy storage cycle coalescence engines and coalescence methods that use divided heat storage, use heat preservation when using liquid metal below 500 degrees, use impact energy to extend the action preservation by providing a resin coating, and use gravitational energy rise. 仕事率を既存蒸気タービンの3.6万倍白金球仕事率に近付け回転方向180度相違の時点で内側動翼外側動翼夫々を略同形タービン翼(8c)・段落毎環状ネジ組立(9)とした竪型全動翼比重大物質重力太陽熱タービン(8H)で発電した電気で車両類を駆動する、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   When the work rate approaches 36,000 times that of the existing steam turbine and the platinum ball work rate differs by 180 degrees in the rotational direction, the inner rotor blade and outer rotor blade are each substantially the same turbine blade (8c) and annular screw assembly per paragraph (9)竪 type all-blade ratio critical material gravity Vehicles are driven by electricity generated by gravity solar heat turbine (8H), and various heat energy is stored as air temperature by heat pump compressed high pressure cold heat + heat and stored at 500 degrees Below, when using liquid metal, use of heat preservation, impact energy is provided with a resin coating, action preservation is extended, and gravitational energy is raised and used. 仕事率を既存蒸気タービンの3.6万倍白金球仕事率に近付け回転方向180度相違の時点で内側動翼外側動翼夫々を略同形タービン翼(8c)・段落毎環状ネジ組立(9)とした竪型全動翼比重大物質重力タービン(8H)で発電電気+冷熱+温熱供給設備より受給して圧力エンジン+蓄電池で自動車類を駆動する、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   When the work rate approaches 36,000 times that of the existing steam turbine and the platinum ball work rate differs by 180 degrees in the rotational direction, the inner rotor blade and outer rotor blade are each substantially the same turbine blade (8c) and annular screw assembly per paragraph (9) It is received from the electricity generation electricity + cold heat + heat supply equipment by a vertical turbine blade type critical material gravity turbine (8H) and drives cars with a pressure engine + storage battery, and various heat energy is compressed by a heat pump as air temperature Divided storage use for high pressure cold heat + heat ・ Use heat storage when using liquid metal below 500 degrees ・ Impact energy is extended by applying a resin coating ・ Gravity energy is increased storage Use various energy storage cycle coalescence engine and coalescence method . 仕事率を既存蒸気タービンの3.6万倍白金球仕事率に近付け回転方向180度相違の時点で内側動翼外側動翼夫々を略同形タービン翼(8c)・段落毎環状ネジ組立(9)とした竪型全動翼比重大物質重力太陽熱タービン(8H)で発電電気+冷熱+温熱供給設備より受給して圧力エンジン+蓄電池で自動車類を駆動する、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   When the work rate approaches 36,000 times that of the existing steam turbine and the platinum ball work rate differs by 180 degrees in the rotational direction, the inner rotor blade and outer rotor blade are each substantially the same turbine blade (8c) and annular screw assembly per paragraph (9) The vertical type moving blade ratio critical material gravity solar heat turbine (8H), which is received from the generator electricity + cold heat + heat supply equipment and drives the cars with the pressure engine + storage battery, various heat energy is air temperature as a heat pump Compressed and high-pressure cold / heat divided and used for storage ・ Use of heat storage when using liquid metal below 500 degrees ・ Impact energy is extended by applying a resin coating ・ Gravity energy is increased and used for various energy storage cycles Method. 仕事率を既存蒸気タービンの3.6万倍白金球仕事率に近付け回転方向180度相違の時点で内側動翼外側動翼夫々を略同形タービン翼(8c)・段落毎環状ネジ組立(9)とした竪型全動翼比重大物質重力タービン(8H)で発電電気+冷熱+温熱供給設備より受給して冷熱温熱利用船舶類を駆動する、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   When the work rate approaches 36,000 times that of the existing steam turbine and the platinum ball work rate differs by 180 degrees in the rotational direction, the inner rotor blade and outer rotor blade are each substantially the same turbine blade (8c) and annular screw assembly per paragraph (9) It is received from the electricity generation electricity + cold heat + heat supply facility by the vertical type moving blade ratio critical material gravity turbine (8H) and drives ships using cold heat, and various heat energy is compressed by the heat pump as the air temperature Various energy storage cycle coalescing engines and coalescence methods that use cold storage and warm heat separately, use heat preservation when using liquid metal below 500 degrees, use impact energy to extend the action storage by applying a resin coating, and use gravitational energy as an upward storage. 仕事率を既存蒸気タービンの3.6万倍白金球仕事率に近付け回転方向180度相違の時点で内側動翼外側動翼夫々を略同形タービン翼(8c)・段落毎環状ネジ組立(9)とした竪型全動翼比重大物質重力太陽熱タービン(8H)で発電電気+冷熱+温熱供給設備より受給して冷熱温熱利用船舶類を駆動する、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   When the work rate approaches 36,000 times that of the existing steam turbine and the platinum ball work rate differs by 180 degrees in the rotational direction, the inner rotor blade and outer rotor blade are each substantially the same turbine blade (8c) and annular screw assembly per paragraph (9) Species-type all-blade ratio critical material gravity solar heat turbine (8H) receives electricity from generator electricity + cold heat + hot water supply equipment to drive ships using cold and hot heat, various heat energy is compressed by high pressure with heat pump as air temperature Various energy storage cycle coalescing engines and coalescence methods that use divided storage for cold heat + warm heat, use heat preservation when using liquid metal of 500 degrees or less, use impact coating to extend the action preservation by applying a resin coating, and use gravitational energy as an elevated preservation. 仕事率を既存蒸気タービンの3.6万倍白金球仕事率に近付け回転方向180度相違の時点で内側動翼外側動翼夫々を略同形タービン翼(8c)とした竪型全動翼比重大物質重力太陽熱タービン(8H)と1〜複数段熱ポンプ(1G)で製造電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引噴射する合体機関噴射部(78A)駆動する各種宇宙往還飛行機類にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   When the work rate is close to the 36,000 times platinum ball work rate of the existing steam turbine and the rotational direction is 180 degrees different, the inner blade and outer blades are almost identical turbine blades (8c). Manufactured by mass gravity solar heat turbine (8H) and 1 to multi-stage heat pump (1G), heat is injected multiple times into cold heat received from electricity + cold heat + heat supply equipment, and heat is heated multiple times from the inner circumference and inner circumference outer circumference Injected into a combined engine injection unit (78A) that injects and sucks air into various space return planes. Various heat energy is stored as air temperature by a heat pump, divided into compressed high-pressure cold / hot heat. When using liquid metal, keep warm and use ・ Impact energy is provided with resin coating to extend the action storage ・ Gravity energy is increased and used, and various energy storage cycle coalescing engine and coalescence method. 仕事率を既存蒸気タービンの3.6万倍白金球仕事率に近付け回転方向180度相違の時点で内側動翼外側動翼夫々を略同形タービン翼(8c)とした竪型全動翼比重大物質重力太陽熱タービン(8H)と1〜複数段熱ポンプ(1G)で製造電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射する合体機関噴射部(78B)駆動する各種宇宙往還飛行機類にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   When the work rate is close to the 36,000 times platinum ball work rate of the existing steam turbine and the rotational direction is 180 degrees different, the inner blade and outer blades are almost identical turbine blades (8c). Manufactured by mass gravity solar heat turbine (8H) and 1 to multi-stage heat pump (1G), heat is injected multiple times into cold heat received from electricity + cold heat + heat supply equipment, and heat is heated multiple times from the inner circumference and inner circumference outer circumference Injecting and injecting air into multiple places, fuel injection combustion injection into various places, and into various space return planes driven by a combined engine injection unit (78B) for air suction injection, various thermal energy is heat pump as air temperature Compressed and high-pressure cold / heat divided and stored • When using liquid metal below 500 ° C, use heat storage • Impact energy is extended by a resin coating • Gravity energy is increased and used for various energy storage cycles Institutions and coalescence method. 仕事率を既存蒸気タービンの3.6万倍白金球仕事率に近付け回転方向180度相違の時点で内側動翼外側動翼夫々を略同形タービン翼(8c)とした竪型全動翼比重大物質重力太陽熱タービン(8H)と1〜複数段熱ポンプ(1G)で製造電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射する合体機関噴射部(78V)駆動する各種宇宙往還飛行機類にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   When the work rate is close to the 36,000 times platinum ball work rate of the existing steam turbine and the rotational direction is 180 degrees different, the inner blade and outer blades are almost identical turbine blades (8c). Manufactured by mass gravity solar heat turbine (8H) and 1 to multi-stage heat pump (1G). Multiple heat injections are performed on cold heat received from electricity + cold heat + heat supply equipment, and multiple heat is produced from the inner circumference, outer circumference and inner circumference outer circumference. Injected by multiple heating and injection, fuel injection combustion injection into multiple air suction flows, and various space energy planes driven by a combined engine injection unit (78V) that performs air suction injection, various thermal energy as air temperature Uses heat pump to store separately in high-pressure cold / hot heat. Uses heat-preserving when liquid metal is less than 500 ° C. Uses a resin coating to extend the action storage. Gravity energy increases and uses various energy storage types. Le union organizations and coalescence method. 仕事率を既存蒸気タービンの3.6万倍白金球仕事率に近付け回転方向180度相違の時点で内側動翼外側動翼夫々を略同形タービン翼(8c)とした竪型全動翼比重大物質重力太陽熱タービン(8H)と1〜複数段熱ポンプ(1G)で製造電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、空気吸引噴射する合体機関噴射部(78W)駆動する各種宇宙往還飛行機類にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   When the work rate is close to the 36,000 times platinum ball work rate of the existing steam turbine and the rotational direction is 180 degrees different, the inner blade and outer blades are almost identical turbine blades (8c). Manufactured by mass gravity solar heat turbine (8H) and 1 to multi-stage heat pump (1G). Multiple heat injections are performed on cold heat received from electricity + cold heat + heat supply equipment, and multiple heat is produced from the inner circumference, outer circumference and inner circumference outer circumference. Combined engine injection unit (78W) that drives by spraying and injecting air, and driving into various space-return airplanes that drive, using various heat energy as air temperature by heat pump, compressing and compressing high-pressure cold heat + heat storage use 500 When using a liquid metal below a certain degree, use a heat preservation storage, impact energy is provided with a resin coating to extend the action storage, and gravity energy is increased storage use. 仕事率を既存蒸気タービンの3.6万倍白金球仕事率に近付け回転方向180度相違の時点で内側動翼外側動翼夫々を略同形タービン翼(8c)・段落毎環状ネジ組立(9)とした竪型全動翼比重大物質重力太陽熱タービン(8H)電気+冷熱+温熱供給設備より受給して家庭電化冷熱利用温熱利用全盛にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   When the work rate approaches 36,000 times that of the existing steam turbine and the platinum ball work rate differs by 180 degrees in the rotational direction, the inner rotor blade and outer rotor blade are each substantially the same turbine blade (8c) and annular screw assembly per paragraph (9)竪 type full blade ratio material gravity solar turbine (8H) received from electricity + cold heat + heat supply equipment to make the best use of home electric cold use heat, various heat energy is compressed by high pressure with heat pump as air temperature Various energy storage cycle coalescing engines and coalescence methods that use cold storage and warm heat separately, use heat preservation when using liquid metal below 500 degrees, use impact energy to extend the action storage by applying a resin coating, and use gravitational energy as an upward storage. 仕事率を既存蒸気タービンの3.6万倍白金球仕事率に近付け回転方向180度相違の時点で内側動翼外側動翼夫々を略同形タービン翼(8c)・段落毎環状ネジ組立(9)とした竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段熱ポンプ(1G)で製造電気+冷熱+温熱供給設備より受給して氷を大量生産する等冷熱利用全盛にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   When the work rate approaches 36,000 times that of the existing steam turbine and the platinum ball work rate differs by 180 degrees in the rotational direction, the inner rotor blade and outer rotor blade are each substantially the same turbine blade (8c) and annular screw assembly per paragraph (9) Species-type whole moving blade ratio material gravity solar turbine (8H) 1 to multi-stage heat pump (1G) manufactured by using electricity + cold heat + heat supply equipment to produce ice mass, etc. Various heat energies are stored as divided into air-temperature compressed by high pressure cold heat + heat using a heat pump. When using liquid metal of less than 500 degrees centigrade, use is kept warm. Impact energy is extended by preserving the action by providing a resin coating. Gravity energy is stored up. Various energy storage cycle coalescence engines and coalescence methods used. 仕事率を既存蒸気タービンの3.6万倍白金球仕事率に近付け回転方向180度相違の時点で内側動翼外側動翼夫々を略同形タービン翼(8c)・段落毎環状ネジ組立(9)とした竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段熱ポンプ(1G)で製造電気+冷熱+温熱供給設備より受給してメタンハイドレートに注入メタンを回収する等温熱利用冷熱利用全盛にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   When the work rate approaches 36,000 times that of the existing steam turbine and the platinum ball work rate differs by 180 degrees in the rotational direction, the inner rotor blade and outer rotor blade are each substantially the same turbine blade (8c) and annular screw assembly per paragraph (9) Use of isothermal heat to recover methane injected into methane hydrate received from electricity + cold heat + heat supply equipment manufactured by vertical solar blade (8H) 1 to multistage heat pump (1G) Use various heat energy as the air temperature, use a heat pump as the air temperature and store it separately in a high pressure cold heat + heat using heat storage use when using a liquid metal below 500 degrees C・ Gravity energy is stored and used in various energy storage cycles. 仕事率を既存蒸気タービンの3.6万倍白金球仕事率に近付け回転方向180度相違の時点で内側動翼外側動翼夫々を略同形タービン翼(8c)・段落毎環状ネジ組立(9)とした竪型全動翼比重大物質重力太陽熱タービン(8H)電気+冷熱+温熱供給設備より受給して冷熱利用温熱利用工場電化全盛にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   When the work rate approaches 36,000 times that of the existing steam turbine and the platinum ball work rate differs by 180 degrees in the rotational direction, the inner rotor blade and outer rotor blade are each substantially the same turbine blade (8c) and annular screw assembly per paragraph (9) The vertical type moving blade ratio critical material gravity solar thermal turbine (8H) received from electricity + cold heat + heat supply equipment to make the factory electrification of cold heat and heat use, various heat energy is compressed with high pressure by heat pump as air temperature Various energy storage cycle coalescing engines and coalescence methods that use cold storage and warm heat separately, use heat preservation when using liquid metal below 500 degrees, use impact energy to extend the action storage by applying a resin coating, and use gravitational energy as an upward storage. 仕事率を既存蒸気タービンの3.6万倍白金球仕事率に近付け回転方向180度相違の時点で内側動翼外側動翼夫々を略同形タービン翼(8c)・段落毎環状ネジ組立(9)とした竪型全動翼比重大物質重力タービン(8H)電気+冷熱+温熱供給設備より受給して冷熱利用温熱利用工場電化全盛にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   When the work rate approaches 36,000 times that of the existing steam turbine and the platinum ball work rate differs by 180 degrees in the rotational direction, the inner rotor blade and outer rotor blade are each substantially the same turbine blade (8c) and annular screw assembly per paragraph (9) Specimen-type full blade ratio material Gravity Turbine (8H) Electricity + Cold heat + Heat supply equipment that receives electricity from the cold and hot factory, and various types of heat energy are compressed by the heat pump as the air temperature. + Divided storage use for heat ・ Use of heat preservation when using liquid metal below 500 degrees ・ Various energy storage cycle coalescing engine and coalescence method that uses impact resin to extend the action preservation by providing resin coating and impact energy. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水(3E)圧力で比重利用被覆鋼球(2E)を噴射重力加速度加速して被覆鋼球(2E)中核駆動の竪型全動翼比重大物質重力タービン(8H)電気+冷熱+温熱供給設備より受給して冷熱利用温熱利用電気利用発電手段にする各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Accelerate and store the specific gravity substance accelerator (6W) with water (3E) pressure and accelerate the gravity acceleration of the coated steel ball (2E) using the specific gravity substance riser (2F), and drive the core of the coated steel ball (2E). Vertical type moving blade ratio critical material Gravity turbine (8H) Electricity + Cold heat + Heat energy received from the heat supply facility and used as electric power generation means using cold energy as the air temperature. Divided storage use ・ In the case of using liquid metal under 500 degrees C 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水(3E)圧力で比重利用被覆鋼球(2E)を噴射重力加速度加速して被覆鋼球(2E)中核駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)電気+冷熱+温熱供給設備より受給して冷熱利用温熱利用電気利用発電手段にする各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Accelerate and store the specific gravity substance accelerator (6W) with water (3E) pressure and accelerate the gravity acceleration of the coated steel ball (2E) using the specific gravity substance riser (2F), and drive the core of the coated steel ball (2E). Vertical type moving blade ratio critical material gravity Solar turbine (8H) Electricity + Cold energy + Various heat energy received from the cold water supply facility using cold heat and heat as electricity generation means Various energy storage cycle coalescence engines and coalescence methods that use divided heat storage, use heat preservation when using liquid metal below 500 degrees, use impact energy to extend the action preservation by providing a resin coating, and use gravitational energy rise. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水(3E)圧力で比重利用被覆鋼球(2E)を噴射重力加速度加速して被覆鋼球(2E)中核駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)と電気+冷熱+温熱供給設備より受給して冷熱利用温熱利用電気利用移動手段にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Accelerate and store the specific gravity substance accelerator (6W) with water (3E) pressure and accelerate the gravity acceleration of the coated steel ball (2E) using the specific gravity substance riser (2F), and drive the core of the coated steel ball (2E). Remarkable material gravity solar thermal turbine (8H) and electricity + cold heat + heat supply equipment received from the vertical solar turbine (8H) to make use of cold heat and heat using electricity, various heat energy is compressed by the heat pump as the air temperature Various energy storage cycle coalescing engines and coalescence methods that use cold storage and warm heat separately, use heat preservation when using liquid metal below 500 degrees, use impact energy to extend the action storage by applying a resin coating, and use gravitational energy as an upward storage. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水(3E)圧力で比重利用被覆鋼球(2E)を噴射重力加速度加速して被覆鋼球(2E)中核駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)と電気+冷熱+温熱供給設備より受給して船舶類駆動手段にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Accelerate and store the specific gravity substance accelerator (6W) with water (3E) pressure and accelerate the gravity acceleration of the coated steel ball (2E) using the specific gravity substance riser (2F), and drive the core of the coated steel ball (2E). Vessel-type all-blade ratio critical material gravity solar heat turbine (8H) and electricity + cold heat + heat supply equipment to use as ship drive means, various heat energy is compressed into high pressure cold heat + heat with a heat pump as air temperature Divided storage use ・ Use of heat storage when using liquid metal below 500 degrees ・ Various energy storage cycle coalescence engine and coalescence method that uses impact storage to extend the action preservation by providing resin coating and impact energy. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水(3E)圧力で比重利用被覆鋼球(2E)を噴射重力加速度加速して被覆鋼球(2E)中核駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)と電気+冷熱+温熱供給設備より受給して飛行機類駆動手段にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Accelerate and store the specific gravity substance accelerator (6W) with water (3E) pressure and accelerate the gravity acceleration of the coated steel ball (2E) using the specific gravity substance riser (2F), and drive the core of the coated steel ball (2E). A type of all-wing blade ratio critical material gravity solar turbine (8H) and electricity + cold heat + heat supply equipment, which is used as airplane drive means, various heat energy is compressed into high pressure cold heat + heat with a heat pump as air temperature Divided storage use ・ Use of heat storage when using liquid metal below 500 degrees ・ Various energy storage cycle coalescence engine and coalescence method that uses impact storage to extend the action preservation by providing resin coating and impact energy. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水銀(3E)圧力で比重大物質(2E)を混合噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)と電気+冷熱+温熱供給設備より受給して冷熱利用温熱利用電気利用発電手段ににする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen material riser (2F) is stored and saved, Specimen material accelerator (6W) Mercury (3E) pressure, Specimen material (2E) is mixed and sprayed by gravitational acceleration, and driven by a specific type of all blades Receiving from the gravitational solar turbine (8H) and electricity + cold + heat supply equipment, and making it into a cold-use / heat-use electricity-use power generation means, various heat energy is divided and stored into air-temperature compressed high-pressure cold / heat using a heat pump・ When using liquid metal of 500 degrees or less, keep warm and use. ・ Impact energy is provided with a resin coating to extend action storage. ・ Gravity energy is stored and used in various energy storage cycles. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水銀(3E)圧力で比重大物質(2E)を混合噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)と電気+冷熱+温熱供給設備より受給して冷熱利用温熱利用電気利用移動手段にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen material riser (2F) is stored and saved, Specimen material accelerator (6W) Mercury (3E) pressure, Specimen material (2E) is mixed and sprayed by gravitational acceleration, and driven by a specific type of all blades Receiving from the gravity solar turbine (8H) and electricity + cold + heat supply equipment, and using it as a means of transportation using electricity using cold heat, use various heat energy as air temperature, divided into compressed high pressure cold + heat using a heat pump Various energy storage cycle coalescing engines and coalescing methods that use heat insulation when using liquid metal below 500 degrees, use impact resin to extend the action preservation by providing a resin coating, and use gravity energy for preservation. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水銀(3E)圧力で比重大物質(2E)を混合噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)と電気+冷熱+温熱供給設備より受給して船舶類駆動手段にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen material riser (2F) is stored and saved, Specimen material accelerator (6W) Mercury (3E) pressure, Specimen material (2E) is mixed and sprayed by gravitational acceleration, and driven by a specific type of all blades Receiving from the gravity solar turbine (8H) and electricity + cold + heat supply equipment and using it as a ship drive means, various heat energy is stored as air temperature with a heat pump compressed and compressed cold + heat divided and used. When using metal, use heat preservation, impact energy is provided with a resin coating, action preservation is extended, and gravitational energy is raised and used. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水銀(3E)圧力で比重大物質(2E)を混合噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)と電気+冷熱+温熱供給設備より受給して飛行機類駆動手段にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen material riser (2F) is stored and saved, Specimen material accelerator (6W) Mercury (3E) pressure, Specimen material (2E) is mixed and sprayed by gravitational acceleration, and driven by a specific type of all blades Receiving from the gravity solar turbine (8H) and electricity + cold + heat supply equipment and using it as airplane drive means, various heat energy is divided into air pressure and compressed high pressure cold heat + heat using a heat pump. When using metal, use of heat preservation storage ・ Impact energy is provided with a resin coating to extend the action preservation ・ Gravity energy rises and uses various energy preservation cycle coalescence engine and coalescence method. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)低融点合金(3E)を高圧噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)電気+冷熱+温熱供給設備より受給して冷熱利用温熱利用電気利用発電手段にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen material acceleration device (2F) to save and save Specimen material accelerator (6W) Low melting point alloy (3E) High-pressure injection gravity acceleration accelerating drive type all-blade specific material gravity solar thermal turbine (8H) Receiving from electricity + cold heat + heat supply equipment and using it as a means of generating electricity using cold heat using heat, various heat energy is stored as air temperature using a heat pump and divided into high pressure cold heat + heat and used at temperatures below 500 degrees Use heat preservation storage, impact energy is provided with resin coating to extend the action storage, and gravity energy is stored by using various energy storage cycle coalescence engine and coalescence method. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)低融点合金(3E)を高圧噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)と電気+冷熱+温熱供給設備より受給して冷熱利用温熱利用電気利用にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen material acceleration device (2F) to save and save Specimen material accelerator (6W) Low melting point alloy (3E) high pressure injection gravity acceleration and drive driven vertical all blade specific material gravity solar thermal turbine (8H) The heat energy is received from the electricity + cold heat + heat supply facility and used as electricity using cold heat. The heat energy is divided into the high pressure cold heat + heat compressed by the heat pump as the air temperature. Use of heat preservation storage / impact energy is provided with resin coating to extend the action storage, and gravitational energy is increased storage use. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)低融点合金(3E)を高圧噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)と電気+冷熱+温熱供給設備より受給して船舶類駆動手段にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen material acceleration device (2F) to save and save Specimen material accelerator (6W) Low melting point alloy (3E) High-pressure injection gravity acceleration accelerating drive type all-blade specific material gravity solar thermal turbine (8H) The heat energy is received from the electricity + cold heat + heat supply equipment and used as a ship drive means. Various heat energy is stored as air temperature using a heat pump and divided into high-pressure cold heat + heat using the heat pump. Use / impact energy is provided with a resin coating to extend the action storage. Gravity energy is stored in an energy storage cycle. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)低融点合金(3E)を高圧噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)と電気+冷熱+温熱供給設備より受給して飛行機類駆動手段にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen material acceleration device (2F) to save and save Specimen material accelerator (6W) Low melting point alloy (3E) High-pressure injection gravity acceleration accelerating drive type all-blade specific material gravity solar thermal turbine (8H) Receiving from electricity + cold heat + heat supply equipment and using it as airplane drive means, various heat energy is stored as air temperature by heat pump and compressed high pressure cold heat + heat divided and stored under heat when using liquid metal below 500 degrees Use / impact energy is provided with a resin coating to extend the action storage. Gravity energy is stored and used in various energy storage cycles. 矩形長レンズ(2d)複数重ねて太陽光を直線状に集めて焦点距離短縮断熱にした太陽光加熱器(2)複数を直角継手で一纏めにした加熱空気を熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)電気+冷熱+温熱供給設備より受給して冷熱利用温熱利用電気利用発電手段にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   A rectangular long lens (2d), a solar heater (2) that collects sunlight in a straight line by collecting multiple pieces of sunlight and shortens the focal length, and (2) heat that is compressed by a heat pump (1G) Recovered cold energy (28a) + hot-water (50) vertical type moving blade ratio critical material gravity solar turbine (8H) powered by electricity + cold + heat supply equipment to receive cold-use heat-use electricity-use power generation means, Various heat energies are stored as divided into air-temperature compressed by high pressure cold heat + heat using a heat pump. When using liquid metal of less than 500 degrees centigrade, use is kept warm. Impact energy is extended by preserving the action by providing a resin coating. Various energy storage cycle coalescence engines and coalescence methods used. 矩形長レンズ(2d)複数重ねて太陽光を直線状に集めて焦点距離短縮断熱にした太陽光加熱器複数を直角継手等で一纏めにした加熱空気を熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)と電気+冷熱+温熱供給設備より受給して冷熱利用温熱利用電気利用にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   A plurality of rectangular long lenses (2d) are stacked to collect sunlight in a straight line to reduce the focal length, and heat is collected by collecting heat with a heat pump (1G) using a heat pump (1G). Various thermal energy that is received from cold-type (28a) + hot-heat (50) vertical all blade ratio material gravity solar turbine (8H) and electricity + cold + heat supply equipment to make use of cold and hot electricity The air temperature is stored separately by heat pump compressed high pressure cold heat + heat. When using liquid metal of less than 500 degrees centigrade, heat storage is used. Impact energy is extended by a resin coating. Gravity energy is increased. Energy conservation cycle coalescence engine and coalescence method. 矩形長レンズ(2d)複数重ねて太陽光を直線状に集めて焦点距離短縮断熱にした太陽光加熱器複数を直角継手等で一纏めにした加熱空気を熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)と電気+冷熱+温熱供給設備より受給して船舶類駆動手段にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   A plurality of rectangular long lenses (2d) are stacked to collect sunlight in a straight line to reduce the focal length, and heat is collected by collecting heat with a heat pump (1G) using a heat pump (1G). Refrigerant type (28a) + hot (50) driven vertical all blade ratio critical material gravity solar turbine (8H) and electricity + cold + hot water supply equipment to receive the ship's driving means, various thermal energy is air Use a heat pump to compress and store high pressure cold heat + heat, use heat insulation when using liquid metal below 500 degrees, use a resin coating for impact energy, extend the action storage, and save energy by using gravity energy Cycle coalescence engine and coalescence method. 矩形長レンズ(2d)複数重ねて太陽光を直線状に集めて焦点距離短縮断熱にした太陽光加熱器複数を直角継手等で一纏めにした加熱空気を熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)と電気+冷熱+温熱供給設備より受給して飛行機類駆動手段にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   A plurality of rectangular long lenses (2d) are stacked to collect sunlight in a straight line to reduce the focal length, and heat is collected by collecting heat with a heat pump (1G) using a heat pump (1G). Refrigerant type (28a) + warm (50) driven vertical all blade ratio material gravity solar turbine (8H) and electricity + cold + hot heat supply equipment to receive airplanes as a means for driving airplanes. Use a heat pump to compress and store high pressure cold heat + heat, use heat insulation when using liquid metal below 500 degrees, use a resin coating for impact energy, extend the action storage, and save energy by using gravity energy Cycle coalescence engine and coalescence method. 矩形長レンズ(2d)複数重ねて太陽光を直線状に集めて焦点距離短縮断熱にした太陽光加熱器複数を直角継手等で一纏めにした加熱空気を熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)と電気+冷熱+温熱供給設備より受給して冷熱温熱電気駆動の各種移動手段にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   A plurality of rectangular long lenses (2d) are stacked to collect sunlight in a straight line to reduce the focal length, and heat is collected by collecting heat with a heat pump (1G) using a heat pump (1G). Refrigerant (28a) + hot (50) driven vertical type moving blade ratio critical material gravity solar heat turbine (8H) and electricity + cold + hot water supply equipment to receive a variety of moving means of cold and hot electric drive Heat energy is compressed using a heat pump as the air temperature and stored separately in cold / high temperature heat + 500 ° C or less liquid heat storage is used. Impact energy is provided with a resin coating to extend the action storage. Various energy storage cycle coalescence engine and coalescence method. 矩形長レンズ(2d)複数重ねて太陽光を直線状に集めて焦点距離短縮断熱にした太陽光加熱器複数を直角継手等で一纏めにした加熱空気を熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)と電気+冷熱+温熱供給設備より受給して冷熱利用工場電化全盛にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   A plurality of rectangular long lenses (2d) are stacked to collect sunlight in a straight line to reduce the focal length, and heat is collected by collecting heat with a heat pump (1G) using a heat pump (1G). Refrigerant type (28a) + hot (50) driven vertical type moving blade ratio critical material gravity solar turbine (8H) and electricity + cold + hot water supply equipment to receive the heat from the cold energy factory electrification, Air temperature is compressed using a heat pump and divided into high-pressure cold / heated heat. Uses heat-preserving when using liquid metal below 500 degrees. Uses a resin coating to extend impact storage. Gravity energy increases and uses various energy. Storage cycle coalescence engine and coalescence method. 矩形長レンズ(2d)複数重ねて太陽光を直線状に集めて焦点距離短縮断熱にした太陽光加熱器複数を直角継手等で一纏めにした加熱空気を熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)と電気+冷熱+温熱供給設備より受給して温熱利用家庭電化全盛にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   A plurality of rectangular long lenses (2d) are stacked to collect sunlight in a straight line to reduce the focal length, and heat is collected by collecting heat with a heat pump (1G) using a heat pump (1G). Various heat energy, which is received from cold solar (28a) + hot (50) vertical-type blades-critical material gravity solar turbine (8H) and electricity + cold + heat supply equipment, and is used to warm home electricity. Air temperature is compressed using a heat pump and divided into high-pressure cold / heated heat. Uses heat-preserving when using liquid metal below 500 degrees. Uses a resin coating to extend impact storage. Gravity energy increases and uses various energy. Storage cycle coalescence engine and coalescence method. 矩形長レンズ(2d)複数重ねて太陽光を直線状に集めて焦点距離短縮断熱にした太陽光加熱器複数を直角継手等で一纏めにした加熱空気を熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)と電気+冷熱+温熱供給設備より受給して冷熱温熱電気駆動全盛にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   A plurality of rectangular long lenses (2d) are stacked to collect sunlight in a straight line to reduce the focal length, and heat is collected by collecting heat with a heat pump (1G) using a heat pump (1G). Refrigerant (28a) + warm (50) driven vertical full rotor blade ratio critical material gravity solar turbine (8H) and electricity + cold + heat supply equipment to receive the cold and hot electric drive prime, various thermal energy is Air temperature is compressed using a heat pump and divided into high-pressure cold / heated heat. Uses heat-preserving when using liquid metal below 500 degrees. Uses a resin coating to extend impact storage. Gravity energy increases and uses various energy. Storage cycle coalescence engine and coalescence method. 矩形長レンズ(2d)複数重ねて太陽光を直線状に集めて焦点距離短縮断熱にした太陽光加熱器複数を直角継手等で一纏めにした加熱空気を熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)と電気+冷熱+温熱供給設備より受給して圧力エンジン+電気駆動車両類全盛にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   A plurality of rectangular long lenses (2d) are stacked to collect sunlight in a straight line to reduce the focal length, and heat is collected by collecting heat with a heat pump (1G) using a heat pump (1G). Refrigerant type (28a) + hot (50) driven vertical type moving blade ratio critical material gravity solar turbine (8H) and electric + cold + hot water supply equipment to receive pressure engine + electric drive vehicle prime Heat energy is compressed using a heat pump as the air temperature and stored separately in cold / high temperature heat + 500 ° C or less liquid heat storage is used. Impact energy is provided with a resin coating to extend the action storage. Various energy storage cycle coalescence engine and coalescence method. 矩形長レンズ(2d)複数重ねて太陽光を直線状に集めて焦点距離短縮断熱にした太陽光加熱器複数を直角継手等で一纏めにした加熱空気を熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)と電気+冷熱+温熱供給設備より受給して圧力エンジン+蓄電池駆動車両類全盛にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   A plurality of rectangular long lenses (2d) are stacked to collect sunlight in a straight line to reduce the focal length, and heat is collected by collecting heat with a heat pump (1G) using a heat pump (1G). Refrigerant (28a) + hot (50) driven vertical type blade ratio critical material gravity solar turbine (8H) and electric + cold + hot water supply equipment to receive pressure engine + storage battery driven vehicle prime Heat energy is compressed using a heat pump as the air temperature and stored separately in cold / high temperature heat + 500 ° C or less liquid heat storage is used. Impact energy is provided with a resin coating to extend the action storage. Various energy storage cycle coalescence engine and coalescence method. 矩形長レンズ(2d)複数重ねて太陽光を直線状に集めて焦点距離短縮断熱にした太陽光加熱器複数を直角継手等で一纏めにした加熱空気を熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)と電気+冷熱+温熱供給設備より受給して圧力エンジン+蓄電池駆動全盛にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   A plurality of rectangular long lenses (2d) are stacked to collect sunlight in a straight line to reduce the focal length, and heat is collected by collecting heat with a heat pump (1G) using a heat pump (1G). Various types of thermal energy, which is received from cold solar (28a) + hot (50) vertical-type full blade ratio material gravity solar turbine (8H) and electricity + cold + heat supply equipment to make pressure engine + battery drive prime The air temperature is stored separately by heat pump compressed high pressure cold heat + heat. When using liquid metal of less than 500 degrees centigrade, heat storage is used. Impact energy is extended by a resin coating. Gravity energy is increased. Energy conservation cycle coalescence engine and coalescence method. 矩形長レンズ(2d)複数重ねて太陽光を直線状に集めて焦点距離短縮断熱にした太陽光加熱器複数を直角継手等で一纏めにした加熱空気を熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)と電気+冷熱+温熱供給設備より受給して圧力エンジン+蓄電池駆動移動手段にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   A plurality of rectangular long lenses (2d) are stacked to collect sunlight in a straight line to reduce the focal length, and heat is collected by collecting heat with a heat pump (1G) using a heat pump (1G). Various heat that is received from cold solar (28a) + hot (50) vertical-type all-blade ratio critical material gravity solar turbine (8H) and electricity + cold + heat supply equipment to make pressure engine + storage battery drive moving means Energy is stored by dividing into high pressure cold / hot heat with air pump as air temperature. Use heat preservation when using liquid metal under 500 degrees. Use impact resin to extend the action preservation by using resin coating. Gravity energy is used for preservation. Various energy storage cycle coalescence engines and coalescence methods. 矩形長レンズ(2d)複数重ねて太陽光を直線状に集めて焦点距離短縮断熱にした太陽光加熱器複数を直角継手等で一纏めにした加熱空気を熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)と電気+冷熱+温熱供給設備より受給して冷熱温熱蓄電池駆動船舶類全盛にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   A plurality of rectangular long lenses (2d) are stacked to collect sunlight in a straight line to reduce the focal length, and heat is collected by collecting heat with a heat pump (1G) using a heat pump (1G). Various types of heat, which are received from cold solar (28a) + hot (50) vertical type moving blade ratio critical material gravity solar turbine (8H) and electricity + cold + hot water supply facilities to make cold-heated storage battery driven ships prime Energy is stored by dividing into high pressure cold / hot heat with air pump as air temperature. Use heat preservation when using liquid metal under 500 degrees. Use impact resin to extend the action preservation by using resin coating. Gravity energy is used for preservation. Various energy storage cycle coalescence engines and coalescence methods. 矩形長レンズ(2d)複数重ねて太陽光を直線状に集めて焦点距離短縮断熱にした太陽光加熱器複数を直角継手等で一纏めにした加熱空気を熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)と電気+冷熱+温熱供給設備全盛にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   A plurality of rectangular long lenses (2d) are stacked to collect sunlight in a straight line to reduce the focal length and heat-insulated by collecting heat with a heat pump (1G). Cold-type (28a) + hot-heated (50) vertical type moving blade ratio critical material gravity solar thermal turbine (8H) and electric + cold + hot heat supply equipment prime, various heat energy is compressed by high pressure with heat pump as air temperature Various energy storage cycle coalescing engines and coalescence methods that use divided storage for cold heat + warm heat, use heat preservation when using liquid metal of 500 degrees or less, use impact coating to extend the action preservation by applying a resin coating, and use gravitational energy as an elevated preservation. 矩形長レンズ(2d)複数重ねて太陽光を直線状に集めて焦点距離短縮断熱にした太陽光加熱器複数を直角継手等で一纏めにした加熱空気を熱ポンプ(1G)で吸入圧縮熱回収した電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、水を吸引噴射するウォータージェット79Uにする竪型全動翼タービン(8H)と合体した、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   A plurality of rectangular long lenses (2d) are stacked to collect sunlight in a straight line to reduce the focal length and heat-insulated by collecting heat with a heat pump (1G). A vertical type water jet 79U that injects and injects heat into the cold heat received from electricity + cold heat + heat supply equipment multiple times, injects and burns the heat multiple times from the inner periphery, outer periphery, and inner periphery, and sucks and injects water. Combined with all rotor blade turbine (8H), various heat energy is stored as air temperature by heat pump, divided into compressed high pressure cold heat + hot heat. Use heat preservation when using liquid metal below 500 degrees. Use impact resin with resin coating. Various energy conservation cycle coalescing engine and coalescence method that uses extended energy conservation and gravity energy conservation. 矩形長レンズ(2d)複数重ねて太陽光を直線状に集めて焦点距離短縮断熱にした太陽光加熱器複数を直角継手等で一纏めにした加熱空気を熱ポンプ(1G)で吸入圧縮熱回収した電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、水を吸引噴射するウォータージェット79Xにする竪型全動翼タービン(8H)と合体した、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   A plurality of rectangular long lenses (2d) are stacked to collect sunlight in a straight line to reduce the focal length and heat-insulated by collecting heat with a heat pump (1G). Vertical type full-motion of water jet 79X that injects and injects fuel multiple times into the cold heat received from electricity + cold heat + heat supply equipment, heats and injects heat multiple times from the inner and outer peripheries Combined with the blade turbine (8H), the various heat energy is compressed as air temperature by a heat pump and stored separately in cold + warm heat. Use heat storage when using liquid metal below 500 degrees. Impact energy is provided with a resin coating. Various energy conservation cycle coalescing engine and coalescence method that uses preservation extension and gravity energy ascending conservation. 矩形長レンズ(2d)複数重ねて太陽光を直線状に集めて焦点距離短縮断熱にした太陽光加熱器複数を直角継手等で一纏めにした加熱空気を熱ポンプ(1G)で吸入圧縮熱回収した電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、空気吸引噴射して水を吸引噴射するウォータージェット79Sにする竪型全動翼タービン(8H)と合体した、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   A plurality of rectangular long lenses (2d) are stacked to collect sunlight in a straight line to reduce the focal length, and heat is collected by collecting heat with a heat pump (1G) using a heat pump (1G). Water jet that injects and injects water multiple times by injecting and burning fuel to the cold heat received from electricity + cold heat + heat supply equipment, heating and injecting heat multiple times from the inner circumference, outer circumference and inner circumference outer circumference Combined with a 79S vertical all-blade turbine (8H), the heat energy is divided into heat and pressure compressed / high-temperature cold / heat using a heat pump as the air temperature. Various energy conservation cycle coalescing engines and coalescence methods that use resin coating to extend the action preservation and gravity energy to save and use. 矩形長レンズ(2d)複数重ねて太陽光を直線状に集めて焦点距離短縮断熱にした太陽光加熱器複数を直角継手等で一纏めにした加熱空気を熱ポンプ(1G)で吸入圧縮熱回収した電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射して水を吸引噴射するウォータージェット79Tにする竪型全動翼タービン(8H)と合体した、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   A plurality of rectangular long lenses (2d) are stacked to collect sunlight in a straight line to reduce the focal length, and heat is collected by collecting heat with a heat pump (1G) using a heat pump (1G). Fuel injection / combustion multiple times to the cold heat received from electricity + cold heat + heat supply equipment, and heat is injected multiple times from the inner periphery, outer periphery and inner periphery outer periphery, and fuel injection combustion injection is also performed at multiple locations of the air suction flow Then, the various heat energy combined with the vertical all-blade turbine (8H), which is a water jet 79T that sucks and jets air by sucking and jetting air, is divided and stored as air temperature by a heat pump compressing high pressure cold heat + heat Use ・ When using liquid metal below 500 degrees C 矩形長レンズ(2d)複数重ねて太陽光を直線状に集めて焦点距離短縮断熱にした太陽光加熱器複数を直角継手等で一纏めにした加熱空気を熱ポンプ(1G)で吸入圧縮熱回収した電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引噴射して水を吸引噴射するウォータージェット79Yにする竪型全動翼タービン(8H)と合体した、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   A plurality of rectangular long lenses (2d) are stacked to collect sunlight in a straight line to reduce the focal length, and heat is collected by collecting heat with a heat pump (1G) using a heat pump (1G). Water jet 79Y that injects and injects fuel multiple times into cold heat received from electricity + cold heat + heat supply equipment, heats and injects heat multiple times from the inner and outer peripheries, and sucks and injects water by air suction and injection Combined with a vertical all-blade turbine (8H), various heat energies are used as air temperature by heat pump, divided into compressed high-pressure cold heat + heat, used under heat storage when using liquid metal below 500 degrees, impact energy is Various energy conservation cycle coalescence engines and coalescence methods that use resin coating to extend the action conservation and use gravity energy ascending conservation. 矩形長レンズ(2d)複数重ねて太陽光を直線状に集めて焦点距離短縮断熱にした太陽光加熱器複数を直角継手等で一纏めにした加熱空気を熱ポンプ(1G)で吸入圧縮熱回収した電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射して水を吸引噴射するウォータージェット79Zにする竪型全動翼タービン(8H)と合体した、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   A plurality of rectangular long lenses (2d) are stacked to collect sunlight in a straight line to reduce the focal length, and heat is collected by collecting heat with a heat pump (1G) using a heat pump (1G). The fuel is injected and burned multiple times to the cold received from the electricity + cold + heat supply facility, and the heat is heated and injected multiple times from the inner and outer peripheries. Combined with a vertical all-blade turbine (8H), which is a water jet 79Z that sucks and injects water and sucks and injects water, various heat energy is stored as air temperature divided into compressed high pressure cold heat + heat with a heat pump Various energy storage cycle coalescing engines and coalescing methods that use heat insulation when using liquid metal below 500 degrees, use impact resin to extend the action preservation by providing a resin coating, and use gravity energy for preservation. 矩形長レンズ(2d)複数重ねて太陽光を直線状に集めて焦点距離短縮断熱にした太陽光加熱器複数を直角継手等で一纏めにした加熱空気を熱ポンプ(1G)で吸入圧縮熱回収した電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引噴射する合体機関噴射部78Aにする竪型全動翼タービン(8H)と合体した、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   A plurality of rectangular long lenses (2d) are stacked to collect sunlight in a straight line to reduce the focal length, and heat is collected by collecting heat with a heat pump (1G) using a heat pump (1G). A vertical all-type engine injection unit 78A that injects and burns fuel multiple times into the cold received from the electricity + cold heat + heat supply facility and heats and heats it from the inner and outer peripheries to inject and suck air. Combined with rotor blade turbine (8H), various heat energy is stored as air temperature using a heat pump, divided into high pressure cold / hot heat and stored separately. When using liquid metal below 500 degrees centigrade, use heat storage. Impact energy is provided with resin coating. Various energy conservation cycle coalescence engines and coalescence methods that use extended action conservation and gravity energy conservation. 矩形長レンズ(2d)複数重ねて太陽光を直線状に集めて焦点距離短縮断熱にした太陽光加熱器複数を直角継手等で一纏めにした加熱空気を熱ポンプ(1G)で吸入圧縮熱回収した電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射する合体機関噴射部78Bにする竪型全動翼タービン(8H)と合体した、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   A plurality of rectangular long lenses (2d) are stacked to collect sunlight in a straight line to reduce the focal length, and heat is collected by collecting heat with a heat pump (1G) using a heat pump (1G). The fuel is injected and burned multiple times to the cold received from the electricity + cold + heat supply facility, and the heat is heated and injected multiple times from the inner and outer peripheries. Combined with a vertical all-blade turbine (8H) to be a combined engine injection unit 78B that sucks and injects air, various heat energies are stored as air temperature by a heat pump, divided into compressed high-pressure cold / heat and stored at a temperature of 500 degrees or less When using metal, use heat preservation, impact energy is provided with a resin coating, action preservation is extended, and gravitational energy is raised and used. 矩形長レンズ(2d)複数重ねて太陽光を直線状に集めて焦点距離短縮断熱にした太陽光加熱器複数を直角継手等で一纏めにした加熱空気を熱ポンプ(1G)で吸入圧縮熱回収した電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射する合体機関噴射部78Vにする竪型全動翼タービン(8H)と合体した、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   A plurality of rectangular long lenses (2d) are stacked to collect sunlight in a straight line to reduce the focal length, and heat is collected by collecting heat with a heat pump (1G) using a heat pump (1G). Fuel injection / combustion multiple times to the cold heat received from electricity + cold heat + heat supply equipment, and heat is injected multiple times from the inner periphery, outer periphery and inner periphery outer periphery, and fuel injection combustion injection is also performed at multiple locations of the air suction flow Combined with a vertical all-blade turbine (8H) that makes a combined engine injection unit 78V that performs air suction injection, various heat energy is stored as air temperature, divided into compressed high-pressure cold / heat by a heat pump. Below, when using liquid metal, use of heat preservation, impact energy is provided with a resin coating, action preservation is extended, and gravitational energy is raised and used. 矩形長レンズ(2d)複数重ねて太陽光を直線状に集めて焦点距離短縮断熱にした太陽光加熱器複数を直角継手等で一纏めにした加熱空気を熱ポンプ(1G)で吸入圧縮熱回収した電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、空気吸引噴射する合体機関噴射部78Wにする竪型全動翼タービン(8H)と合体した、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   A plurality of rectangular long lenses (2d) are stacked to collect sunlight in a straight line to reduce the focal length, and heat is collected by collecting heat with a heat pump (1G) using a heat pump (1G). A combined engine injection unit 78W that injects and injects heat into the cold received from the electricity + cold heat + heat supply facility multiple times, injects and burns the heat multiple times from the inner circumference, outer circumference, and inner circumference outer circumference. Combined with all-type blade turbine (8H), various heat energy is stored as air temperature using a heat pump, divided into cold / high temperature heat and heat divided by heat pump. When using liquid metal below 500 degrees centigrade, use heat storage. Impact energy is resin-coated. Various energy conservation cycle coalescing engines and coalescence methods that use and extend the action preservation / gravity energy rise preservation. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水(3E)圧力で比重利用被覆鋼球(2E)を噴射重力加速度加速して被覆鋼球(2E)中核駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、水を吸引噴射するウォータージェット79Uにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Accelerate and store the specific gravity substance accelerator (6W) with water (3E) pressure and accelerate the gravity acceleration of the coated steel ball (2E) using the specific gravity substance riser (2F), and drive the core of the coated steel ball (2E). Vertical type moving blade ratio critical material gravity Solar turbine (8H) 1-Multistage compression heat recovery unit (2C) manufactured by electric + cold + hot heat supply equipment, fuel injection and combustion multiple times to cool and heat Water jet 79U that heats and injects multiple times from the circumference, outer circumference, and inner circumference outer circumference to make water jet 79U that sucks and injects water. Various heat energy is stored as air temperature by a heat pump compressed into cold high pressure + heat. Below, when using liquid metal, use of heat preservation, impact energy is provided with a resin coating, action preservation is extended, and gravitational energy is raised and used. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水(3E)圧力で比重利用被覆鋼球(2E)を噴射重力加速度加速して被覆鋼球(2E)中核駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、水を吸引噴射するウォータージェット79Xにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Accelerate and store the specific gravity substance accelerator (6W) with water (3E) pressure and accelerate the gravity acceleration of the coated steel ball (2E) using the specific gravity substance riser (2F), and drive the core of the coated steel ball (2E). Vertical type moving blade ratio critical material gravity Solar turbine (8H) 1-Multistage compression heat recovery unit (2C) manufactured by electric + cold + hot heat supply equipment, fuel injection and combustion multiple times to cool and heat Water jet 79X that heats and injects multiple times from the circumference and inner and outer circumferences to produce water jet 79X that sucks and injects water. Various heat energy is stored as air temperature using a heat pump divided into high-pressure cold / hot heat. When using metal, use heat preservation, impact energy is provided with a resin coating, action preservation is extended, and gravitational energy is raised and used. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水(3E)圧力で比重利用被覆鋼球(2E)を噴射重力加速度加速して被覆鋼球(2E)中核駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、空気吸引噴射して水を吸引噴射するウォータージェット79Sにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Accelerate and store the specific gravity substance accelerator (6W) with water (3E) pressure and accelerate the gravity acceleration of the coated steel ball (2E) using the specific gravity substance riser (2F), and drive the core of the coated steel ball (2E). Vertical type moving blade ratio critical material gravity Solar turbine (8H) 1-Multistage compression heat recovery unit (2C) manufactured by electric + cold + hot heat supply equipment, fuel injection and combustion multiple times to cool and heat Water jet 79S, which is heated and sprayed multiple times from the circumference, outer circumference, and inner circumference outer circumference, and is made into air jet 79S that sucks and jets water, and various heat energy is divided into air-temperature compressed high pressure cold heat + heat with a heat pump Preservation use ・ Use of heat preservation when using liquid metal of less than 500 degrees ・ Impact energy is provided with resin coating to extend the action preservation ・ Gravity energy is used for the preservation and combination of various energy preservation cycle coalescence engines and coalescence methods. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水(3E)圧力で比重利用被覆鋼球(2E)を噴射重力加速度加速して被覆鋼球(2E)中核駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射して水を吸引噴射するウォータージェット79Tにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Accelerate and store the specific gravity substance accelerator (6W) with water (3E) pressure and accelerate the gravity acceleration of the coated steel ball (2E) using the specific gravity substance riser (2F), and drive the core of the coated steel ball (2E). Vertical type moving blade ratio critical material gravity Solar turbine (8H) 1-Multistage compression heat recovery unit (2C) manufactured by electric + cold + hot heat supply equipment, fuel injection and combustion multiple times to cool and heat Various heat energies that are heated and injected several times from the circumference, outer circumference, and inner circumference outer circumference, and water jet 79T that injects and injects fuel into a plurality of locations of air suction flow and sucks and injects water by air suction and injection The air temperature is stored separately by heat pump compressed high pressure cold heat + heat. When using liquid metal of less than 500 degrees centigrade, heat storage is used. Impact energy is extended by a resin coating. Gravity energy is increased. Enel Save cycle combined institutions and coalescence method. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水(3E)圧力で比重利用被覆鋼球(2E)を噴射重力加速度加速して被覆鋼球(2E)中核駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引噴射して水を吸引噴射するウォータージェット79Yにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Accelerate and store the specific gravity substance accelerator (6W) with water (3E) pressure and accelerate the gravity acceleration of the coated steel ball (2E) using the specific gravity substance riser (2F), and drive the core of the coated steel ball (2E). Vertical type moving blade ratio critical material gravity Solar turbine (8H) 1-Multistage compression heat recovery unit (2C) manufactured by electric + cold + hot heat supply equipment, fuel injection and combustion multiple times to cool and heat Water jet 79Y that heats and injects multiple times from the circumference and inner and outer circumferences to produce water jet 79Y that sucks and injects water into the air. Various heat energies are stored as air temperature in a compressed high-pressure cold / heated state using a heat pump.・ When using liquid metal of 500 degrees or less, keep warm and use. ・ Impact energy is provided with a resin coating to extend action storage. ・ Gravity energy is stored and used in various energy storage cycles. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水(3E)圧力で比重利用被覆鋼球(2E)を噴射重力加速度加速して被覆鋼球(2E)中核駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射して水を吸引噴射するウォータージェット79Zにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Accelerate and store the specific gravity substance accelerator (6W) with water (3E) pressure and accelerate the gravity acceleration of the coated steel ball (2E) using the specific gravity substance riser (2F), and drive the core of the coated steel ball (2E). Vertical type moving blade ratio critical material gravity Solar turbine (8H) 1-Multistage compression heat recovery unit (2C) manufactured by electric + cold + hot heat supply equipment, fuel injection and combustion multiple times to cool and heat Heat is injected several times from the outer circumference and inner circumference outer circumference, fuel is injected into a plurality of locations of air suction flow, fuel injection combustion injection is made into water jet 79Z that sucks and injects water, and various thermal energy is air Use a heat pump to compress and store high pressure cold heat + heat, use heat insulation when using liquid metal below 500 degrees, use a resin coating for impact energy, extend the action storage, and save energy by using gravity energy Cycle combined institutions and coalescence method. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水(3E)圧力で比重利用被覆鋼球(2E)を噴射重力加速度加速して被覆鋼球(2E)中核駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引噴射する合体機関噴射部78Aにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Accelerate and store the specific gravity substance accelerator (6W) with water (3E) pressure and accelerate the gravity acceleration of the coated steel ball (2E) using the specific gravity substance riser (2F), and drive the core of the coated steel ball (2E). Vertical type moving blade ratio critical material gravity Solar turbine (8H) 1-Multistage compression heat recovery unit (2C) manufactured by electric + cold + hot heat supply equipment, fuel injection and combustion multiple times to cool and heat Uses a combined engine injection unit 78A that heats and injects multiple times from the outer periphery and inner periphery, and injects and sucks air. Various heat energy is stored as air temperature using a heat pump and divided into compressed high-pressure cold / hot heat. When using liquid metal, use of heat preservation storage ・ Impact energy is provided with a resin coating to extend the action storage ・ Gravity energy is stored and used in various energy storage cycles. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水(3E)圧力で比重利用被覆鋼球(2E)を噴射重力加速度加速して被覆鋼球(2E)中核駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射する合体機関噴射部78Bにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Accelerate and store the specific gravity substance accelerator (6W) with water (3E) pressure and accelerate the gravity acceleration of the coated steel ball (2E) using the specific gravity substance riser (2F), and drive the core of the coated steel ball (2E). Vertical type moving blade ratio critical material gravity Solar turbine (8H) 1-Multistage compression heat recovery unit (2C) manufactured by electric + cold + hot heat supply equipment, fuel injection and combustion multiple times to cool and heat Heat is injected multiple times from the outer circumference and inner circumference outer circumference, and fuel injection combustion injection is also carried out at a plurality of locations of the air suction flow, and the combined engine injection section 78B that performs air suction injection is used. Compressed and high-pressure cold / heated and divided storage use. When using liquid metal below 500 ° C, keep it warm. Use impact resin to extend the action storage. Gravity energy is increased and used. Body method. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水(3E)圧力で比重利用被覆鋼球(2E)を噴射重力加速度加速して被覆鋼球(2E)中核駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射する合体機関噴射部78Vにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Accelerate and store the specific gravity substance accelerator (6W) with water (3E) pressure and accelerate the gravity acceleration of the coated steel ball (2E) using the specific gravity substance riser (2F), and drive the core of the coated steel ball (2E). Vertical type moving blade ratio critical material gravity Solar turbine (8H) 1-Multistage compression heat recovery unit (2C) manufactured by electric + cold + hot heat supply equipment, fuel injection and combustion multiple times to cool and heat It is heated and injected several times from the circumference, outer circumference, and inner circumference outer circumference, and fuel injection combustion injection is also carried out to a plurality of locations of air suction flow to form a combined engine injection section 78V that performs air suction injection, and various thermal energy is air temperature Use a heat pump to separate and store cold / heated high pressure + 500 ° C or less liquid heat storage use • Impact energy is extended with a resin coating, and energy storage cycle is combined to use gravity energy rise storage Machine And coalescence method. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水(3E)圧力で比重利用被覆鋼球(2E)を噴射重力加速度加速して被覆鋼球(2E)中核駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、空気吸引噴射する合体機関噴射部78Wにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Accelerate and store the specific gravity substance accelerator (6W) with water (3E) pressure and accelerate the gravity acceleration of the coated steel ball (2E) using the specific gravity substance riser (2F), and drive the core of the coated steel ball (2E). Vertical type moving blade ratio critical material gravity Solar turbine (8H) 1-Multistage compression heat recovery unit (2C) manufactured by electric + cold + hot heat supply equipment, fuel injection and combustion multiple times to cool and heat The combined engine injection unit 78W that heats and injects multiple times from the periphery, outer periphery, and inner periphery outer periphery to produce the combined engine injection unit 78W that inhales and injects air. When using a liquid metal below a certain degree, use a heat preservation storage, impact energy is provided with a resin coating to extend the action storage, and gravity energy is increased storage use. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水銀(3E)圧力で比重大物質(2E)を混合噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、水を吸引噴射するウォータージェット79Uにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen material riser (2F) is stored and saved, Specimen material accelerator (6W) Mercury (3E) pressure, Specimen material (2E) is mixed and sprayed by gravitational acceleration, and driven by a specific type of all blades Gravity solar turbine (8H) 1 to multistage compression heat recovery unit (2C) manufactured by electricity + cold heat + cold energy received from the hot heat supply equipment, fuel injection and combustion multiple times to heat from the inner circumference, outer circumference and inner circumference outer circumference Water jet 79U that heats and injects multiple times to produce water suction and jets water. Various heat energy is stored as air temperature using a heat pump, divided into high-pressure cold / heated heat + divided into temperatures. Use / impact energy is provided with a resin coating to extend the action storage. Gravity energy is stored in an energy storage cycle. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水銀(3E)圧力で比重大物質(2E)を混合噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、水を吸引噴射するウォータージェット79Xにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen material riser (2F) is stored and saved, Specimen material accelerator (6W) Mercury (3E) pressure, Specimen material (2E) is mixed and sprayed by gravitational acceleration, and driven by a specific type of all blades Gravity solar turbine (8H) 1 to multistage compression heat recovery unit (2C) manufactured by electricity + cold heat + cold heat received from the heat supply equipment multiple times fuel injection combustion to heat the heat multiple times from the inner circumference and inner circumference outer circumference Uses water jet 79X that heats and injects and sucks and injects water. Various heat energy is stored as air temperature using a heat pump divided into compressed high-pressure cold and warm heat. Various energy conservation cycle coalescence engines and coalescence methods are used in which impact energy is provided with resin coating to extend the action preservation and gravity energy is preserved. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水銀(3E)圧力で比重大物質(2E)を混合噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、 空気吸引噴射して水を吸引噴射するウォータージェット79Sにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen material riser (2F) is stored and saved, Specimen material accelerator (6W) Mercury (3E) pressure, Specimen material (2E) is mixed and sprayed by gravitational acceleration, and driven by a specific type of all blades Gravity solar turbine (8H) 1 to multistage compression heat recovery unit (2C) manufactured by electricity + cold heat + cold energy received from the hot heat supply equipment, fuel injection and combustion multiple times to heat from the inner circumference, outer circumference and inner circumference outer circumference Heating and spraying multiple times to form a water jet 79S that injects air and sucks and injects water. Various heat energies are stored in a heat pump as a compressed air with a high pressure compressed by high pressure + 500 degrees C or less liquid metal Various energy storage cycle coalescing engines and coalescing methods that use heat preservation during use, impact energy is provided with resin coating to extend the action preservation, and gravitational energy rises. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水銀(3E)圧力で比重大物質(2E)を混合噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射して水を吸引噴射するウォータージェット79Tにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen material riser (2F) is stored and saved, Specimen material accelerator (6W) Mercury (3E) pressure, Specimen material (2E) is mixed and sprayed by gravitational acceleration, and driven by a specific type of all blades Gravity solar turbine (8H) 1 to multistage compression heat recovery unit (2C) manufactured by electricity + cold heat + cold energy received from the hot heat supply equipment, fuel injection and combustion multiple times to heat from the inner circumference, outer circumference and inner circumference outer circumference Heated and injected multiple times, fuel injection combustion injection at multiple locations of air suction flow, water jet 79T that sucks and injects air and makes water jet 79T, various thermal energy is compressed by heat pump as air temperature Divided storage use for high-pressure cold heat + heat ・ Insulation storage use when using liquid metal below 500 ° C ・ Impact energy is extended by a resin coating, and energy storage cycle coalescing machine is used to save and use gravity energy And coalescence method. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水銀(3E)圧力で比重大物質(2E)を混合噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引噴射して水を吸引噴射するウォータージェット79Yにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen material riser (2F) is stored and saved, Specimen material accelerator (6W) Mercury (3E) pressure, Specimen material (2E) is mixed and sprayed by gravitational acceleration, and driven by a specific type of all blades Gravity solar turbine (8H) 1 to multistage compression heat recovery unit (2C) manufactured by electricity + cold heat + cold heat received from the heat supply equipment multiple times fuel injection combustion to heat the heat multiple times from the inner circumference and inner circumference outer circumference Water jet 79Y that heats and injects, sucks and injects air, and sucks and injects water. Various heat energy is stored as air temperature in a heat pump, compressed into high-pressure cold / heated and stored separately. Use heat preservation storage, impact energy is provided with resin coating to extend the action storage, and gravity energy is stored by using various energy storage cycle coalescence engine and coalescence method. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水銀(3E)圧力で比重大物質(2E)を混合噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射して水を吸引噴射するウォータージェット79Zにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen material riser (2F) is stored and saved, Specimen material accelerator (6W) Mercury (3E) pressure, Specimen material (2E) is mixed and sprayed by gravitational acceleration, and driven by a specific type of all blades Gravity solar turbine (8H) 1 to multistage compression heat recovery unit (2C) manufactured by electricity + cold heat + cold heat received from the heat supply equipment multiple times fuel injection combustion to heat the heat multiple times from the inner circumference and inner circumference outer circumference Heating and injecting, fuel injection combustion injection to multiple places of air suction flow, water jet 79Z for air suction injection and water suction injection, various heat energy is compressed by high pressure with heat pump as air temperature Uses divided storage for cold and warm heat. Uses heat storage when using liquid metal below 500 degrees. Uses a resin coating for impact energy to extend the action storage. Combines various energy storage cycle engines that use and save gravity energy. Body method. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水銀(3E)圧力で比重大物質(2E)を混合噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引噴射する合体機関噴射部78Aにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen material riser (2F) is stored and saved, Specimen material accelerator (6W) Mercury (3E) pressure, Specimen material (2E) is mixed and sprayed by gravitational acceleration, and driven by a specific type of all blades Gravity solar turbine (8H) 1 to multistage compression heat recovery unit (2C) manufactured by electricity + cold heat + cold heat received from the heat supply equipment multiple times fuel injection combustion to heat the heat multiple times from the inner circumference and inner circumference outer circumference Combined engine injection unit 78A that injects and injects air and injects and sucks air. Various heat energies are stored as air temperature by heat pump, compressed high pressure cold heat + divided heat use.・ Impact energy is provided with a resin coating to extend the action storage. ・ Gravity energy is stored and used in various energy storage cycles. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水銀(3E)圧力で比重大物質(2E)を混合噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射する合体機関噴射部78Bにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen material riser (2F) is stored and saved, Specimen material accelerator (6W) Mercury (3E) pressure, Specimen material (2E) is mixed and sprayed by gravitational acceleration, and driven by a specific type of all blades Gravity solar turbine (8H) 1 to multistage compression heat recovery unit (2C) manufactured by electricity + cold heat + cold heat received from the heat supply equipment multiple times fuel injection combustion to heat the heat multiple times from the inner circumference and inner circumference outer circumference Heating and injecting, fuel injection combustion injection at multiple locations of air suction flow, and a combined engine injection unit 78B for air suction injection, various heat energy is compressed into high pressure cold heat + heat with a heat pump as air temperature Divided storage use ・ Use of heat storage when using liquid metal below 500 degrees ・ Various energy storage cycle coalescence engine and coalescence method that uses impact storage to extend the action preservation by providing resin coating and impact energy. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水銀(3E)圧力で比重大物質(2E)を混合噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射する合体機関噴射部78Vにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen material riser (2F) is stored and saved, Specimen material accelerator (6W) Mercury (3E) pressure, Specimen material (2E) is mixed and sprayed by gravitational acceleration, and driven by a specific type of all blades Gravity solar turbine (8H) 1 to multistage compression heat recovery unit (2C) manufactured by electricity + cold heat + cold energy received from the hot heat supply equipment, fuel injection and combustion multiple times to heat from the inner circumference, outer circumference and inner circumference outer circumference Injected by heating multiple times, injected into a plurality of locations of air suction flow, and injected into a combined engine injection unit 78V for air suction injection, various heat energy is compressed by a high-pressure cold heat with a heat pump as air temperature + Various energy storage cycle coalescence engines and coalescence methods that use divided heat storage, use heat preservation when using liquid metal below 500 degrees, use impact energy to extend the action preservation by providing a resin coating, and use gravitational energy rise. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水銀(3E)圧力で比重大物質(2E)を混合噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、空気吸引噴射する合体機関噴射部78Wにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen material riser (2F) is stored and saved, Specimen material accelerator (6W) Mercury (3E) pressure, Specimen material (2E) is mixed and sprayed by gravitational acceleration, and driven by a specific type of all blades Gravity solar turbine (8H) 1 to multistage compression heat recovery unit (2C) manufactured by electricity + cold heat + cold energy received from the hot heat supply equipment, fuel injection and combustion multiple times to heat from the inner circumference, outer circumference and inner circumference outer circumference Combined engine injection unit 78W that heats and injects multiple times to inject and sucks and injects air. Various heat energy is stored as air temperature by heat pump compressed high pressure cold heat + warm heat. Keeping heat when using liquid metal below 500 degrees Preservation use / impact energy is provided with a resin coating to extend the action preservation. Gravity energy is used for ascending preservation. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)低融点合金(3E)を高圧噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、水を吸引噴射するウォータージェット79Uにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen material acceleration device (2F) to save and save Specimen material accelerator (6W) Low melting point alloy (3E) High-pressure injection gravity acceleration accelerating drive type all-blade specific material gravity solar thermal turbine (8H) 1-multistage compression heat recovery unit (2C) manufactured by electricity + cold heat + cold heat received from the heat supply equipment multiple times fuel injection combustion and heat is heated multiple times from the inner circumference, outer circumference and inner circumference outer circumference and injected Water jet 79U that sucks and injects water. Various heat energy is stored as air temperature using a heat pump divided into cold high pressure and heat + compressed heat. Use heat storage when using liquid metal below 500 degrees. Impact energy is resin. Various energy conservation cycle coalescence engines and coalescence methods that use a coating to extend the action preservation and use the gravity energy ascending preservation. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)低融点合金(3E)を高圧噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、水を吸引噴射するウォータージェット79Xにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen material acceleration device (2F) to save and save Specimen material accelerator (6W) Low melting point alloy (3E) High-pressure injection gravity acceleration accelerating drive type all-blade specific material gravity solar thermal turbine (8H) 1 to multiple stages of compressed heat recovery unit (2C) manufactured by electricity + cold heat + heat supplied from the heat supply equipment multiple times fuel injection and combustion, heat is injected multiple times from the inner periphery and inner periphery outer periphery and injected, Water jet 79X that sucks and injects water. Various heat energy is stored as air temperature using a heat pump and divided into high pressure cold heat + heat. Use heat storage when using liquid metal below 500 degrees. Use impact resin with resin coating. Various energy conservation cycle coalescence engines and coalescence methods that use extended energy conservation and gravity energy storage. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)低融点合金(3E)を高圧噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、空気吸引噴射して水を吸引噴射するウォータージェット79Sにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen material acceleration device (2F) to save and save Specimen material accelerator (6W) Low melting point alloy (3E) high pressure injection gravity acceleration and drive driven vertical all blade specific material gravity solar thermal turbine (8H) 1-multistage compression heat recovery unit (2C) manufactured by electricity + cold heat + cold heat received from the heat supply equipment multiple times fuel injection combustion and heat is heated multiple times from the inner circumference, outer circumference and inner circumference outer circumference and injected The water jet 79S, which sucks and jets water by air suction, is used to store various heat energy as air temperature, divided into compressed high-pressure cold heat and heat using a heat pump.・ Impact energy is provided with a resin coating to extend the action storage. ・ Gravity energy is stored and used in various energy storage cycles. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)低融点合金(3E)を高圧噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射して水を吸引噴射するウォータージェット79Tにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen material acceleration device (2F) to save and save Specimen material accelerator (6W) Low melting point alloy (3E) high pressure injection gravity acceleration and drive driven vertical all blade specific material gravity solar thermal turbine (8H) 1-multistage compression heat recovery unit (2C) manufactured by electricity + cold heat + cold heat received from the heat supply equipment multiple times fuel injection combustion and heat is heated multiple times from the inner circumference, outer circumference and inner circumference outer circumference and injected In addition, the fuel is injected into the air suction flow at several locations, and the fuel is injected into the water jet 79T for sucking and injecting the water into the water jet 79T. Divided storage use ・ Use of heat storage when using liquid metal below 500 degrees ・ Various energy storage cycle coalescence engine and coalescence method that uses impact storage to extend the action preservation by providing resin coating and impact energy. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)低融点合金(3E)を高圧噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引噴射して水を吸引噴射するウォータージェット79Yにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen material acceleration device (2F) to save and save Specimen material accelerator (6W) Low melting point alloy (3E) high pressure injection gravity acceleration and drive driven vertical all blade specific material gravity solar thermal turbine (8H) 1 to multiple stages of compressed heat recovery unit (2C) manufactured by electricity + cold heat + heat supplied from the heat supply equipment multiple times fuel injection and combustion, heat is injected multiple times from the inner periphery and inner periphery outer periphery and injected, Use water suction 79Y that sucks and injects air into the water jet 79Y. Various heat energy is stored as air temperature using a heat pump divided into cold high pressure and heat + compressed heat. Various energy conservation cycle coalescing engines and coalescence methods that use resin coating to extend the action preservation and gravity energy to save and use. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)低融点合金(3E)を高圧噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射して水を吸引噴射するウォータージェット79Zにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen material acceleration device (2F) to save and save Specimen material accelerator (6W) Low melting point alloy (3E) High-pressure injection gravity acceleration accelerating drive type all-blade specific material gravity solar thermal turbine (8H) 1 to multiple stages of compressed heat recovery unit (2C) manufactured by electricity + cold heat + heat supplied from the heat supply equipment multiple times fuel injection and combustion, heat is injected multiple times from the inner periphery and inner periphery outer periphery and injected, The air suction flow is also injected into multiple places, fuel injection combustion injection, air suction injection and water jet 79Z that sucks and injects water, and various heat energy is divided into air pressure and compressed high pressure cold heat + heat with a heat pump Use ・ When using liquid metal below 500 degrees C 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)低融点合金(3E)を高圧噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引噴射する合体機関噴射部78Aにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen material acceleration device (2F) to save and save Specimen material accelerator (6W) Low melting point alloy (3E) High-pressure injection gravity acceleration accelerating drive type all-blade specific material gravity solar thermal turbine (8H) 1 to multiple stages of compressed heat recovery unit (2C) manufactured by electricity + cold heat + heat supplied from the heat supply equipment multiple times fuel injection and combustion, heat is injected multiple times from the inner periphery and inner periphery outer periphery and injected, Combined engine injection part 78A for air suction injection, various heat energy is stored as air temperature with heat pump divided into cold high pressure + hot heat and stored separately. When using liquid metal below 500 degrees C Various energy conservation cycle coalescing engines and coalescence methods that use and extend the action preservation / gravity energy rise preservation. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)低融点合金(3E)を高圧噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射する合体機関噴射部78Bにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen material acceleration device (2F) to save and save Specimen material accelerator (6W) Low melting point alloy (3E) High-pressure injection gravity acceleration accelerating drive type all-blade specific material gravity solar thermal turbine (8H) 1 to multiple stages of compressed heat recovery unit (2C) manufactured by electricity + cold heat + heat supplied from the heat supply equipment multiple times fuel injection and combustion, heat is injected multiple times from the inner periphery and inner periphery outer periphery and injected, Combined fuel injection combustion injection into multiple locations of air suction flow to form a combined engine injection unit 78B that performs air suction injection, and various heat energy is stored as air temperature by a heat pump divided into compressed high pressure cold heat + heat. Below, when using liquid metal, use of heat preservation, impact energy is provided with a resin coating, action preservation is extended, and gravitational energy is raised and used. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)低融点合金(3E)を高圧噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射する合体機関噴射部78Vにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen material acceleration device (2F) to save and save Specimen material accelerator (6W) Low melting point alloy (3E) High-pressure injection gravity acceleration accelerating drive type all-blade specific material gravity solar thermal turbine (8H) 1-multistage compression heat recovery unit (2C) manufactured by electricity + cold heat + cold heat received from the heat supply equipment multiple times fuel injection combustion and heat is heated multiple times from the inner circumference, outer circumference and inner circumference outer circumference and injected In addition, fuel injection / combustion injection is also performed at a plurality of locations of the air suction flow, and the combined engine injection unit 78V that performs air suction injection is used. Various energy storage cycle coalescing engines and coalescing methods that use heat insulation when using liquid metal below 500 degrees, use impact resin to extend the action preservation by providing a resin coating, and use gravity energy for preservation. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)低融点合金(3E)を高圧噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、空気吸引噴射する合体機関噴射部78Wにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen material acceleration device (2F) to save and save Specimen material accelerator (6W) Low melting point alloy (3E) High-pressure injection gravity acceleration accelerating drive type all-blade specific material gravity solar thermal turbine (8H) 1-multistage compression heat recovery unit (2C) manufactured by electricity + cold heat + cold heat received from the heat supply equipment multiple times fuel injection combustion and heat is heated multiple times from the inner circumference, outer circumference and inner circumference outer circumference and injected In the combined engine injection section 78W for air suction injection, various heat energy is divided into a high pressure cold heat + heat using a heat pump as air temperature. Various energy conservation cycle coalescence engines and coalescence methods that use resin coating to extend the action conservation and use gravity energy ascending conservation. 矩形長レンズ(2d)複数重ねて太陽光を直線状に集めて焦点距離短縮断熱にした太陽光加熱器複数を直角継手等で一纏めにした加熱空気を1〜複数段熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)電気+冷熱+温熱供給設備より受給して冷熱利用温熱利用電気利用発電手段にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Two or more rectangular long lenses (2d) are stacked to collect sunlight in a straight line to reduce the focal length, and heat is collected by using a right angle joint etc. Compressed heat recovered cold heat (28a) + hot spring (50) driven vertical type moving blade ratio critical material gravity solar turbine (8H) electricity + cold + heat supply equipment received from cold and hot electricity use electricity generation means Use various heat energy as air temperature by using a heat pump compressed and stored in cold + warm heat. Use heat storage when using liquid metal below 500 degrees. Use impact resin to extend the action storage by providing resin coating. Gravity energy is Various energy conservation cycle coalescence engines and coalescence methods used for ascending conservation. 矩形長レンズ(2d)複数重ねて太陽光を直線状に集めて焦点距離短縮断熱にした太陽光加熱器複数を直角継手等で一纏めにした加熱空気を1〜複数段熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)と電気+冷熱+温熱供給設備より受給して冷熱利用温熱利用電気利用移動手段にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Two or more rectangular long lenses (2d) are stacked to collect sunlight in a straight line to reduce the focal length, and heat is collected by using a right angle joint etc. Compressed heat recovered cold heat (28a) + hot water (50) -driven vertical all blade ratio material gravity solar turbine (8H) and electricity + cold + hot water supply equipment received from cold and hot water Various heat energies are stored as air temperature by using a heat pump to divide and store in cold + hot heat + 500 ° C or less. Use heat preservation when using liquid metal below 500 degrees. Is an energy conservation cycle coalescence engine and coalescence method used for ascending conservation. 矩形長レンズ(2d)複数重ねて太陽光を直線状に集めて焦点距離短縮断熱にした太陽光加熱器複数を直角継手等で一纏めにした加熱空気を1〜複数段熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)と電気+冷熱+温熱供給設備より受給して船舶類駆動手段にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Two or more rectangular long lenses (2d) are stacked to collect sunlight in a straight line to reduce the focal length, and heat is collected by using a right angle joint etc. Compressed heat recovered cold heat (28a) + hot water (50) driven saddle type full blade ratio gravity material gravity solar turbine (8H) and electricity + cold heat + hot water supply equipment to receive a variety of ship drive means Heat energy is compressed using a heat pump as the air temperature and stored separately in cold / high temperature heat + 500 ° C or less liquid heat storage is used. Impact energy is provided with a resin coating to extend the action storage. Various energy storage cycle coalescence engine and coalescence method. 矩形長レンズ(2d)複数重ねて太陽光を直線状に集めて焦点距離短縮断熱にした太陽光加熱器複数を直角継手等で一纏めにした加熱空気を1〜複数段熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)と電気+冷熱+温熱供給設備より受給して飛行機類駆動手段にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Two or more rectangular long lenses (2d) are stacked to collect sunlight in a straight line to reduce the focal length, and heat is collected by using a right angle joint etc. Compressed heat recovered cold heat (28a) + hot water (50) driven vertical all blade ratio critical material gravity solar turbine (8H) and electricity + cold + hot water supply equipment to receive airplanes as driving means Heat energy is compressed using a heat pump as the air temperature and stored separately in cold / high temperature heat + 500 ° C or less liquid heat storage is used. Impact energy is provided with a resin coating to extend the action storage. Various energy storage cycle coalescence engine and coalescence method. 矩形長レンズ(2d)複数重ねて太陽光を直線状に集めて焦点距離短縮断熱にした太陽光加熱器複数を直角継手等で一纏めにした加熱空気を1〜複数段熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)と電気+冷熱+温熱供給設備より受給して冷熱温熱電気駆動の各種移動手段にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Two or more rectangular long lenses (2d) are stacked to collect sunlight in a straight line to reduce the focal length, and heat is collected by using a right angle joint etc. Compressed heat recovered cold (28a) + hot water (50) driven vertical type moving blade ratio critical material gravity solar turbine (8H) and electric + cold + hot water supply equipment and various moving means for cold and hot electric drive Various heat energies are stored as air temperature by using a heat pump to divide and store in cold + hot heat + 500 ° C or less. Use heat preservation when using liquid metal below 500 degrees. Is an energy conservation cycle coalescence engine and coalescence method used for ascending conservation. 矩形長レンズ(2d)複数重ねて太陽光を直線状に集めて焦点距離短縮断熱にした太陽光加熱器複数を直角継手等で一纏めにした加熱空気を1〜複数段熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)と電気+冷熱+温熱供給設備より受給して冷熱利用工場電化全盛にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Two or more rectangular long lenses (2d) are stacked to collect sunlight in a straight line to reduce the focal length, and heat is collected by using a right angle joint etc. Compressed heat recovered cold heat (28a) + hot spring (50) driven vertical type blade ratio critical material gravity solar turbine (8H) and electricity + cold heat + hot water supply facility to receive cold heat factory electrification prime, Various heat energies are stored as divided into air-temperature compressed by high pressure cold heat + heat using a heat pump. When using liquid metal of less than 500 degrees centigrade, use is kept warm. Impact energy is extended by preserving the action by providing a resin coating. Various energy storage cycle coalescence engines and coalescence methods used. 矩形長レンズ(2d)複数重ねて太陽光を直線状に集めて焦点距離短縮断熱にした太陽光加熱器複数を直角継手等で一纏めにした加熱空気を1〜複数段熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)と電気+冷熱+温熱供給設備より受給して温熱利用家庭電化全盛にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Two or more rectangular long lenses (2d) are stacked to collect sunlight in a straight line to reduce the focal length, and heat is collected by using a right angle joint etc. Compressed heat recovered cold heat (28a) + hot water (50) driven vertical type blade ratio critical material gravity solar turbine (8H) and electricity + cold heat + heat supply equipment to receive hot electricity for domestic electrification, Various heat energies are stored as divided into air-temperature compressed by high pressure cold heat + heat using a heat pump. When using liquid metal of less than 500 degrees centigrade, use is kept warm. Impact energy is extended by preserving the action by providing a resin coating. Gravity energy is stored up. Various energy storage cycle coalescence engines and coalescence methods used. 矩形長レンズ(2d)複数重ねて太陽光を直線状に集めて焦点距離短縮断熱にした太陽光加熱器複数を直角継手等で一纏めにした加熱空気を1〜複数段熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)と電気+冷熱+温熱供給設備より受給して冷熱温熱電気駆動全盛にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Two or more rectangular long lenses (2d) are stacked to collect sunlight in a straight line to reduce the focal length, and heat is collected by using a right angle joint etc. Compressed heat recovered cold heat (28a) + hot water (50) driven vertical type moving blade ratio critical material gravity solar turbine (8H) and electricity + cold heat + heat supply equipment to receive cold and hot electric drive prime, Various heat energies are stored as divided into air-temperature compressed by high pressure cold heat + heat using a heat pump. When using liquid metal of less than 500 degrees centigrade, use is kept warm. Impact energy is extended by preserving the action by providing a resin coating. Various energy storage cycle coalescence engines and coalescence methods used. 矩形長レンズ(2d)複数重ねて太陽光を直線状に集めて焦点距離短縮断熱にした太陽光加熱器複数を直角継手等で一纏めにした加熱空気を1〜複数段熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)と電気+冷熱+温熱供給設備より受給して圧力エンジン+電気駆動車両類全盛にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Two or more rectangular long lenses (2d) are stacked to collect sunlight in a straight line to reduce the focal length, and heat is collected by using a right angle joint etc. Compressed heat recovered cold heat (28a) + hot spring (50) driven vertical-type whole blade ratio critical material gravity solar turbine (8H) and electricity + cold + hot water supply equipment received from pressure engine + electric drive vehicles Various heat energies are stored as air temperature by using a heat pump to divide and store in cold + hot heat + 500 ° C or less. Use heat preservation when using liquid metal below 500 degrees. Is an energy conservation cycle coalescence engine and coalescence method used for ascending conservation. 矩形長レンズ(2d)複数重ねて太陽光を直線状に集めて焦点距離短縮断熱にした太陽光加熱器複数を直角継手等で一纏めにした加熱空気を1〜複数段熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)と電気+冷熱+温熱供給設備より受給して圧力エンジン+蓄電池駆動車両類全盛にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Two or more rectangular long lenses (2d) are stacked to collect sunlight in a straight line to reduce the focal length, and heat is collected by using a right angle joint etc. Compressed heat recovered cold (28a) + hot (50) driven vertical type blade ratio critical material gravity solar turbine (8H) and electric + cold + hot water supply equipment to receive pressure engine + battery powered vehicles Various heat energies are stored as air temperature by using a heat pump to divide and store in cold + hot heat + 500 ° C or less. Use heat preservation when using liquid metal below 500 degrees. Is an energy conservation cycle coalescence engine and coalescence method used for ascending conservation. 矩形長レンズ(2d)複数重ねて太陽光を直線状に集めて焦点距離短縮断熱にした太陽光加熱器複数を直角継手等で一纏めにした加熱空気を1〜複数段熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)と電気+冷熱+温熱供給設備より受給して圧力エンジン+蓄電池駆動全盛にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Two or more rectangular long lenses (2d) are stacked to collect sunlight in a straight line to reduce the focal length, and heat is collected by using a right angle joint etc. Compressed heat recovered cold heat (28a) + hot water (50) driven saddle type full blade ratio critical material gravity solar turbine (8H) and electricity + cold + hot water supply equipment to receive pressure engine + storage battery drive prime , Various heat energies are divided into air pressure, compressed by high pressure cold heat + heat using a heat pump. Use heat preservation when using liquid metal below 500 degrees. Impact energy is extended by preserving action by providing a resin coating. Gravity energy increases Various energy storage cycle coalescence engines and coalescence methods for preservation and use. 矩形長レンズ(2d)複数重ねて太陽光を直線状に集めて焦点距離短縮断熱にした太陽光加熱器複数を直角継手等で一纏めにした加熱空気を1〜複数段熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)と電気+冷熱+温熱供給設備より受給して圧力エンジン+蓄電池駆動移動手段にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Two or more rectangular long lenses (2d) are stacked to collect sunlight in a straight line to reduce the focal length, and heat is collected by using a right angle joint etc. Compressed heat recovered cold (28a) + hot (50) driven vertical type blade blade critical material gravity solar heat turbine (8H) and electricity + cold + heat supplied from heat supply equipment to pressure engine + storage battery drive moving means Use various heat energy as air temperature by using a heat pump compressed and stored in cold + warm heat. Use heat storage when using liquid metal below 500 degrees. Use impact resin to extend the action storage by providing resin coating. Gravity energy is Various energy conservation cycle coalescence engines and coalescence methods used for ascending conservation. 矩形長レンズ(2d)複数重ねて太陽光を直線状に集めて焦点距離短縮断熱にした太陽光加熱器複数を直角継手等で一纏めにした加熱空気を1〜複数段熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)と電気+冷熱+温熱供給設備より受給して冷熱温熱蓄電池駆動船舶類全盛にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Two or more rectangular long lenses (2d) are stacked to collect sunlight in a straight line to reduce the focal length, and heat is collected by using a right angle joint etc. Compressed heat recovered cold heat (28a) + hot spring (50) driven saddle type whole blade ratio critical material gravity solar heat turbine (8H) and electricity + cold heat + hot water supply facility to receive cold heat storage battery driven ships Use various heat energy as air temperature by using a heat pump compressed and stored in cold + warm heat. Use heat storage when using liquid metal below 500 degrees. Use impact resin to extend the action storage by providing resin coating. Gravity energy is Various energy conservation cycle coalescence engines and coalescence methods used for ascending conservation. 矩形長レンズ(2d)複数重ねて太陽光を直線状に集めて焦点距離短縮断熱にした太陽光加熱器複数を直角継手等で一纏めにした加熱空気を1〜複数段熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)と電気+冷熱+温熱供給設備全盛にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Two or more rectangular long lenses (2d) are stacked to collect sunlight in a straight line to reduce the focal length, and heat is collected by using a right angle joint etc. Compressed heat recovered cold heat (28a) + hot spring (50) driven vertical type blade ratio critical material gravity solar turbine (8H) and electric + cold + hot heat supply equipment prime, various heat energy is heat as air temperature Uses divided storage for compression and high pressure cold heat + heat with a pump. Uses heat preservation when using liquid metal below 500 degrees. Uses a resin coating for impact energy to extend the action preservation. Gravity energy increases and uses. And coalescing method. 矩形長レンズ(2d)複数重ねて太陽光を直線状に集めて焦点距離短縮断熱にした太陽光加熱器複数を直角継手等で一纏めにした加熱空気を1〜複数段熱ポンプ(1G)で吸入圧縮熱回収した電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、水を吸引噴射するウォータージェット79Uにする竪型全動翼タービン(8H)と合体した、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Two or more rectangular long lenses (2d) are stacked to collect sunlight in a straight line to reduce the focal length, and heat is collected by using a right angle joint etc. Water jet 79U that injects and injects water by heating and injecting multiple times from the inner circumference, outer circumference, and inner circumference outer circumference by injecting and burning fuel multiple times into the cold heat received from the compressed heat recovered electricity + cold + hot heat supply equipment Combined with a vertical turbine blade (8H), various heat energy is stored as air temperature using a heat pump, divided into compressed high-pressure cold / heated heat and stored separately. Is a combination of various energy conservation cycle coalescence engines and coalescence methods that use a resin coating to extend the action conservation and use gravitational energy ascending conservation. 矩形長レンズ(2d)複数重ねて太陽光を直線状に集めて焦点距離短縮断熱にした太陽光加熱器複数を直角継手等で一纏めにした加熱空気を1〜複数段熱ポンプ(1G)で吸入圧縮熱回収した電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、水を吸引噴射するウォータージェット79Xにする竪型全動翼タービン(8H)と合体した、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Two or more rectangular long lenses (2d) are stacked to collect sunlight in a straight line to reduce the focal length, and heat is collected by using a right angle joint etc. Water jet 79X that injects and injects hot water multiple times from the inner and outer peripheries by injecting and burning the cold heat received from the compressed heat recovered electricity + cold heat + hot heat supply equipment multiple times. Combined with vertical all-blade turbine (8H), various heat energy is stored as air temperature with heat pump, divided into compressed high pressure cold heat + warm heat, use is kept warm when using liquid metal below 500 degrees, impact energy is resin Various energy conservation cycle coalescence engines and coalescence methods that use a coating to extend the action preservation and use the gravity energy ascending preservation. 矩形長レンズ(2d)複数重ねて太陽光を直線状に集めて焦点距離短縮断熱にした太陽光加熱器複数を直角継手等で一纏めにした加熱空気を1〜複数段熱ポンプ(1G)で吸入圧縮熱回収した電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、空気吸引噴射して水を吸引噴射するウォータージェット79Sにする竪型全動翼タービン(8H)と合体した、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Two or more rectangular long lenses (2d) are stacked to collect sunlight in a straight line to reduce the focal length, and heat is collected by using a right angle joint etc. Compressed heat recovered electricity + cold heat + cold heat received from the heat supply facility fuel injection and combustion multiple times, heat is injected multiple times from the inner circumference, outer circumference and inner circumference outer circumference, air is sucked and jetted to suck water Combined with a vertical all-blade turbine (8H) that makes a water jet 79S to be injected, various heat energy is stored as air temperature with a heat pump, divided into high-pressure cold heat + heat, and kept warm when using liquid metal below 500 degrees Preservation use / impact energy is provided with a resin coating to extend the action preservation. Gravity energy is used for ascending preservation. 矩形長レンズ(2d)複数重ねて太陽光を直線状に集めて焦点距離短縮断熱にした太陽光加熱器複数を直角継手等で一纏めにした加熱空気を1〜複数段熱ポンプ(1G)で吸入圧縮熱回収した電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射して水を吸引噴射するウォータージェット79Tにする竪型全動翼タービン(8H)と合体した、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Two or more rectangular long lenses (2d) are stacked to collect sunlight in a straight line to reduce the focal length, and heat is collected by using a right angle joint etc. Compressed heat recovered electricity + cold heat + cold heat received from the heat supply facility fuel injection combustion multiple times, heat is injected multiple times from the inner circumference, outer circumference and inner circumference outer circumference, and also in the air suction flow multiple places Combined with a vertical all-blade turbine (8H), which is a fuel jet combustion injection and a water jet 79T that sucks and injects water by air suction injection, various heat energy is compressed by a heat pump as air temperature, Divided storage use for heat ・ Use of heat preservation when using liquid metal below 500 degrees ・ Impact energy is extended by providing a resin coating ・ Gravity energy rises and uses various energy storage cycle coalescing engine and coalescence Law. 矩形長レンズ(2d)複数重ねて太陽光を直線状に集めて焦点距離短縮断熱にした太陽光加熱器複数を直角継手等で一纏めにした加熱空気を1〜複数段熱ポンプ(1G)で吸入圧縮熱回収した電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引噴射して水を吸引噴射するウォータージェット79Yにする竪型全動翼タービン(8H)と合体した、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Two or more rectangular long lenses (2d) are stacked to collect sunlight in a straight line to reduce the focal length, and heat is collected by using a right angle joint etc. Compressed heat recovered electricity + cold heat + cold energy received from the heat supply facility, fuel injection and combustion multiple times to heat and inject the heat multiple times from the inner periphery and inner periphery outer periphery, air suction injection and water suction injection Combined with a vertical all-blade turbine (8H) that makes the water jet 79Y, various heat energy is divided into heat and compression compressed high pressure cold heat + heat with air pump as air temperature.・ Impact energy is provided with a resin coating to extend the action storage. ・ Gravity energy is stored and used in various energy storage cycles. 矩形長レンズ(2d)複数重ねて太陽光を直線状に集めて焦点距離短縮断熱にした太陽光加熱器複数を直角継手等で一纏めにした加熱空気を1〜複数段熱ポンプ(1G)で吸入圧縮熱回収した電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射して水を吸引噴射するウォータージェット79Zにする竪型全動翼タービン(8H)と合体した、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Two or more rectangular long lenses (2d) are stacked to collect sunlight in a straight line to reduce the focal length, and heat is collected by using a right angle joint etc. Compressed heat recovered electricity + cold heat + cold heat received from the heat supply facility fuel injection and combustion multiple times, and heat is injected multiple times from the inner and outer peripheries, and fuel is also injected into multiple air suction flows Various thermal energy combined with a vertical all-blade turbine (8H) which is a combustion jet and is a water jet 79Z which sucks and injects air to suck and inject water is converted into air temperature and compressed with high pressure cold heat + heat with a heat pump Divided storage use ・ Use of heat storage when using liquid metal below 500 degrees ・ Various energy storage cycle coalescence engine and coalescence method that uses impact storage to extend the action preservation by providing resin coating and impact energy. 矩形長レンズ(2d)複数重ねて太陽光を直線状に集めて焦点距離短縮断熱にした太陽光加熱器複数を直角継手等で一纏めにした加熱空気を1〜複数段熱ポンプ(1G)で吸入圧縮熱回収した電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引噴射する合体機関噴射部78Aにする竪型全動翼タービン(8H)と合体した、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Two or more rectangular long lenses (2d) are stacked to collect sunlight in a straight line to reduce the focal length, and heat is collected by using a right angle joint etc. To the combined engine injection unit 78A that injects and injects air by injecting and burning multiple times to the cold heat received from the compressed heat recovered electricity + cold + hot heat supply equipment, and injecting and heating the heat multiple times from the inner and outer peripheries. Combined with a vertical all-blade turbine (8H), various heat energies are used as air temperature by heat pump, divided into compressed high-pressure cold heat + heat, used under heat storage when using liquid metal below 500 degrees, impact energy is Various energy conservation cycle coalescence engines and coalescence methods that use resin coating to extend the action conservation and use gravity energy ascending conservation. 矩形長レンズ(2d)複数重ねて太陽光を直線状に集めて焦点距離短縮断熱にした太陽光加熱器複数を直角継手等で一纏めにした加熱空気を1〜複数段熱ポンプ(1G)で吸入圧縮熱回収した電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射する合体機関噴射部78Bにする竪型全動翼タービン(8H)と合体した、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Two or more rectangular long lenses (2d) are stacked to collect sunlight in a straight line to reduce the focal length, and heat is collected by using a right angle joint etc. Compressed heat recovered electricity + cold heat + cold heat received from the heat supply facility fuel injection and combustion multiple times, and heat is injected multiple times from the inner and outer peripheries, and fuel is also injected into multiple air suction flows Combined with a vertical all-blade turbine (8H) to be a combined engine injection part 78B that performs combustion injection and air suction injection, various heat energy is stored as air temperature divided into compressed high pressure cold heat + heat with a heat pump Various energy storage cycle coalescing engines and coalescing methods that use heat insulation when using liquid metal below 500 degrees, use impact resin to extend the action preservation by providing a resin coating, and use gravity energy for preservation. 矩形長レンズ(2d)複数重ねて太陽光を直線状に集めて焦点距離短縮断熱にした太陽光加熱器複数を直角継手等で一纏めにした加熱空気を1〜複数段熱ポンプ(1G)で吸入圧縮熱回収した電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射する合体機関噴射部78Vにする竪型全動翼タービン(8H)と合体した、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Two or more rectangular long lenses (2d) are stacked to collect sunlight in a straight line to reduce the focal length, and heat is collected by using a right angle joint etc. Compressed heat recovered electricity + cold heat + cold heat received from the heat supply facility fuel injection combustion multiple times, heat is injected multiple times from the inner circumference, outer circumference and inner circumference outer circumference, and also in the air suction flow multiple places Combined with a vertical all-blade turbine (8H) that combines fuel injection combustion injection into a combined engine injection unit 78V that performs air suction injection, various heat energy is divided and stored as air temperature with a heat pump compressing high pressure cold heat + heat Use ・ When using liquid metal below 500 degrees C 矩形長レンズ(2d)複数重ねて太陽光を直線状に集めて焦点距離短縮断熱にした太陽光加熱器複数を直角継手等で一纏めにした加熱空気を1〜複数段熱ポンプ(1G)で吸入圧縮熱回収した電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、空気吸引噴射する合体機関噴射部78Wにする竪型全動翼タービン(8H)と合体した、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Two or more rectangular long lenses (2d) are stacked to collect sunlight in a straight line to reduce the focal length, and heat is collected by using a right angle joint etc. Combined engine injection unit that injects and injects air by heating multiple times from the inner circumference, outer circumference, and inner circumference outer circumference by injecting and burning the cold heat received from the compressed heat recovered electricity + cold heat + hot heat supply equipment multiple times Combined with a 78W vertical all-blade turbine (8H), various heat energies are stored as air temperature using a heat pump divided into high pressure cold / hot heat and stored separately. Various energy conservation cycle coalescing engines and coalescence methods that use resin coating to extend the action preservation and gravity energy to save and use. 空気を熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力タービン(8H)電気+冷熱+温熱供給設備より受給して冷熱利用温熱利用電気利用発電手段にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Cooled air (28a) + hot spring (50) driven by a heat pump (1G) recovered from the compression heat of the vertical type moving blade ratio critical material gravity turbine (8H) electricity + cold heat + heat supply equipment Use various heat energy as a means of generating electricity using electricity, using heat pumps as heat, compressing and compressing high pressure cold heat + using heat, using heat storage when using liquid metal below 500 degrees, and providing impact energy with resin coating Various energy conservation cycle coalescence engines and coalescence methods that use extended action conservation and gravity energy conservation. 空気を熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力タービン(8H)と電気+冷熱+温熱供給設備より受給して冷熱利用温熱利用電気利用移動手段にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   The air is received from a cold turbine (28a) + hot spring (50), which is recovered by suction and compression heat collected by a heat pump (1G), from a vertical all blade ratio material gravity turbine (8H) and electricity + cold + hot water supply equipment. Use various heat energy as a means of transportation using electricity using cold heat Use various heat energy as air temperature compressed and compressed into high pressure cold heat + heat using a heat pump. Use heat preservation when using liquid metal below 500 degrees. Various energy conservation cycle coalescing engine and coalescence method that uses extended energy conservation and gravity energy conservation. 空気を熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力タービン(8H)と電気+冷熱+温熱供給設備より受給して船舶類駆動手段にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   The air is received from a cold turbine (28a) + hot spring (50), which is recovered by suction and compression heat collected by a heat pump (1G), from a vertical all blade ratio material gravity turbine (8H) and electricity + cold + hot water supply equipment. Various heat energy to be used as a ship drive means, divided into air pressure, heat pump compressed high pressure cold heat + warm heat, use heat retention when using liquid metal below 500 degrees, shock energy is provided with resin coating and extended action preservation Various energy conservation cycle coalescence engine and coalescence method used to save and use gravity energy. 空気を熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力タービン(8H)と電気+冷熱+温熱供給設備より受給して飛行機類駆動手段にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   The air is received from a cold turbine (28a) + hot spring (50), which is recovered by suction and compression heat collected by a heat pump (1G), from a vertical all blade ratio material gravity turbine (8H) and electricity + cold + hot water supply equipment. Use as an airplane drive means, heat energy is divided into a high pressure cold heat + heat using a heat pump as the air temperature. Use heat storage when using liquid metal below 500 degrees. Various energy conservation cycle coalescence engine and coalescence method used to save and use gravity energy. 空気を熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力タービン(8H)と電気+冷熱+温熱供給設備より受給して冷熱温熱電気駆動の各種移動手段にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   The air is received from a cold turbine (28a) + hot spring (50), which is recovered by suction and compression heat collected by a heat pump (1G), from a vertical all blade ratio material gravity turbine (8H) and electricity + cold + hot water supply equipment. Use various heat energy as a moving device for cold / hot / electric drive. Use various heat energy as air temperature with a heat pump divided into high pressure cold / heat and heat. Various energy conservation cycle coalescing engine and coalescence method that uses extended energy conservation and gravity energy conservation. 空気を熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力タービン(8H)と電気+冷熱+温熱供給設備より受給して冷熱利用工場電化全盛にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   The air is received from a cold turbine (28a) + hot spring (50), which is recovered by suction and compression heat collected by a heat pump (1G), from a vertical all blade ratio material gravity turbine (8H) and electricity + cold + hot water supply equipment. Various heat energy is used in cold-powered factory electrification. Various heat energy is stored as air temperature using a heat pump divided into high-pressure cold heat + heat. Use heat storage when using liquid metal below 500 degrees. Impact energy is stored with resin coating. Various energy conservation cycle coalescence engine and coalescence method that uses extended and gravity energy ascending conservation. 空気を熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力タービン(8H)と電気+冷熱+温熱供給設備より受給して温熱利用家庭電化全盛にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   The air is received from a cold turbine (28a) + hot spring (50), which is recovered by suction and compression heat collected by a heat pump (1G), from a vertical all blade ratio material gravity turbine (8H) and electricity + cold + hot water supply equipment. Use various heat energy to make the home electrification warm, use a heat pump as the air temperature and store it separately in a high-pressure cold / heated heat + 500 ° C or less liquid heat use and shock energy use a resin coating to preserve the action energy Various energy conservation cycle coalescence engine and coalescence method that uses extended and gravity energy conservation. 空気を熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力タービン(8H)と電気+冷熱+温熱供給設備より受給して冷熱温熱電気駆動全盛にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   The air is received from a cold turbine (28a) + hot spring (50), which is recovered by suction and compression heat collected by a heat pump (1G), from a vertical all blade ratio material gravity turbine (8H) and electricity + cold + hot water supply equipment. Various heat energy is made into the prime of cold / hot / electric drive, and the heat is compressed and stored in a high-pressure cold / heat with a heat pump as the air temperature. Various energy conservation cycle coalescence engine and coalescence method that uses extended and gravity energy conservation. 空気を熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力タービン(8H)と電気+冷熱+温熱供給設備より受給して圧力エンジン+電気駆動車両類全盛にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   The air is received from a cold turbine (28a) + hot spring (50), which is recovered by suction and compression heat collected by a heat pump (1G), from a vertical all blade ratio material gravity turbine (8H) and electricity + cold + hot water supply equipment. Pressure engine + Electric drive vehicles are plentiful. Various heat energy is compressed as air temperature with a heat pump and divided into high pressure cold heat + heat. Use heat preservation when using liquid metal below 500 degrees. Use impact resin with resin coating. Various energy conservation cycle coalescing engine and coalescence method that uses extended energy conservation and gravity energy conservation. 空気を熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力タービン(8H)と電気+冷熱+温熱供給設備より受給して圧力エンジン+蓄電池駆動車両類全盛にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   The air is received from a cold turbine (28a) + hot spring (50), which is recovered by suction and compression heat collected by a heat pump (1G), from a vertical all blade ratio material gravity turbine (8H) and electricity + cold + hot water supply equipment. Pressure engine + battery-powered vehicles are in full swing, various heat energy is stored as air temperature by heat pump, divided into high pressure cold / heated heat + heat storage use when using liquid metal below 500 degrees, impact energy is resin coated Various energy conservation cycle coalescing engine and coalescence method that uses extended energy conservation and gravity energy conservation. 空気を熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力タービン(8H)と電気+冷熱+温熱供給設備より受給して圧力エンジン+蓄電池駆動全盛にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   The air is received from a cold turbine (28a) + hot spring (50), which is recovered by suction and compression heat collected by a heat pump (1G), from a vertical all blade ratio material gravity turbine (8H) and electricity + cold + hot water supply equipment. Pressure engine + storage battery drive prime, various heat energy as air temperature is compressed by high pressure cold heat + heat with a heat pump and used for heat storage when using less than 500 degrees liquid metal. Impact energy is provided with resin coating Various energy conservation cycle coalescing engine and coalescence method that use preservation extension and gravity energy ascend preservation. 空気を熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力タービン(8H)と電気+冷熱+温熱供給設備より受給して圧力エンジン+蓄電池駆動移動手段にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   The air is received from a cold turbine (28a) + hot spring (50), which is recovered by suction and compression heat collected by a heat pump (1G), from a vertical all blade ratio material gravity turbine (8H) and electricity + cold + hot water supply equipment. Uses a pressure engine + storage battery drive movement means, various heat energy as air temperature is compressed with a heat pump and compressed and used to store cold heat + heat, use heat storage when using liquid metal below 500 degrees, and impact energy is provided with resin coating Various energy conservation cycle coalescence engines and coalescence methods that use extended action conservation and gravity energy conservation. 空気を熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力タービン(8H)と電気+冷熱+温熱供給設備より受給して冷熱温熱蓄電池駆動船舶類全盛にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   The air is received from a cold turbine (28a) + hot spring (50), which is recovered by suction and compression heat collected by a heat pump (1G), from a vertical all blade ratio material gravity turbine (8H) and electricity + cold + hot water supply equipment. Cold energy storage battery-powered ships are primed. Various heat energy is stored as air temperature using a heat pump and divided into high pressure cold heat + heat. Use heat storage when using liquid metal below 500 degrees. Impact energy is provided with resin coating. Various energy conservation cycle coalescence engines and coalescence methods that use extended action conservation and gravity energy conservation. 空気を熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力タービン(8H)と電気+冷熱+温熱供給設備全盛にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Cooled air (28a) collected by heat pump (1G) with heat pump (1G) + vertical moving blade ratio critical material gravity turbine (8H) driven by heat (50) and electric + cold + hot heat supply equipment Various heat energies are stored as divided into air-temperature compressed by high pressure cold heat + heat using a heat pump. When using liquid metal of less than 500 degrees centigrade, use is kept warm. Impact energy is extended by preserving the action by providing a resin coating. Gravity energy is stored up. Various energy storage cycle coalescence engines and coalescence methods used. 空気を熱ポンプ(1G)で吸入圧縮熱回収した電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、水を吸引噴射するウォータージェット79Uにする竪型全動翼タービン(8H)と合体した、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Fuel is injected and burned multiple times to the cold received from the electricity + cold + hot heat supply equipment that has collected the suction compression heat by the heat pump (1G), and the heat is heated and injected several times from the inner circumference, outer circumference, and inner circumference outer circumference. Combined with a vertical all-blade turbine (8H) that makes water jet 79U that sucks and injects water, various heat energy is stored as air temperature by heat pump compressed high pressure cold heat + heat and used. Various energy storage cycle coalescing engines and coalescing methods that use heat preservation during use, impact energy is provided with resin coating to extend the action preservation, and gravitational energy rises. 空気を熱ポンプ(1G)で吸入圧縮熱回収した電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、水を吸引噴射するウォータージェット79Xにする竪型全動翼タービン(8H)と合体した、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Air is heated and injected multiple times from the inner and outer peripheries to the cold received from the electricity + cold + hot heat supply equipment, which is recovered by suction and compression heat with a heat pump (1G), and the hot heat is injected multiple times from the inner and outer peripheries. Combined with a vertical all-blade turbine (8H), which is a water jet 79X that sucks and injects various types of heat energy, the air temperature is divided into heat and pressure compressed by the heat pump and stored in cold + hot heat. Use heat preservation storage, impact energy is provided with resin coating to extend the action storage, and gravity energy is stored by using various energy storage cycle coalescence engine and coalescence method. 空気を熱ポンプ(1G)で吸入圧縮熱回収した電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、空気吸引噴射して水を吸引噴射するウォータージェット79Sにする竪型全動翼タービン(8H)と合体した、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Fuel is injected and burned multiple times to the cold received from the electricity + cold + hot heat supply equipment that has collected the suction compression heat by the heat pump (1G), and the heat is heated and injected several times from the inner circumference, outer circumference, and inner circumference outer circumference. Combined with a vertical all-blade turbine (8H), which is a water jet 79S that sucks and injects water and sucks and injects water, the various heat energy is divided into a high pressure cold heat + heat using a heat pump as air temperature Various energy storage cycle coalescing engines and coalescing methods that use heat insulation when using liquid metal below 500 degrees, use impact resin to extend the action preservation by providing a resin coating, and use gravity energy for preservation. 空気を熱ポンプ(1G)で吸入圧縮熱回収した電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射して水を吸引噴射するウォータージェット79Tにする竪型全動翼タービン(8H)と合体した、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Fuel is injected and burned multiple times to the cold received from the electricity + cold + hot heat supply equipment that has collected the suction compression heat by the heat pump (1G), and the heat is heated and injected several times from the inner circumference, outer circumference, and inner circumference outer circumference. The various thermal energy combined with the vertical all-blade turbine (8H), which is a water jet 79T that injects and injects fuel into a plurality of locations of the air suction flow, and sucks and injects air by air suction and injection. Compressed high pressure cold heat + heat using a heat pump as part of the storage use. When using liquid metal below 500 degrees, use heat storage. Impact energy is provided with a resin coating, and action storage is extended. Gravity energy is increased and used. Merger engine and merger method. 空気を熱ポンプ(1G)で吸入圧縮熱回収した電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引噴射して水を吸引噴射するウォータージェット79Yにする竪型全動翼タービン(8H)と合体した、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Air is heated and injected multiple times from the inner and outer peripheries to the cold received from the heat + heat and heat supply equipment that collects heat by suction and heat recovery by the heat pump (1G). Combined with a vertical all-blade turbine (8H) that makes water jet 79Y to suck and inject water, various heat energies are stored as air temperature, divided into compressed high pressure cold heat + heat with a heat pump, 500 degrees Below, when using liquid metal, use of heat preservation, impact energy is provided with a resin coating, action preservation is extended, and gravitational energy is raised and used. 空気を熱ポンプ(1G)で吸入圧縮熱回収した電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射して水を吸引噴射するウォータージェット79Zにする竪型全動翼タービン(8H)と合体した、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Air is heated and injected multiple times from the inner and outer peripheries to the cold received from the heat + heat and heat supply equipment that collects heat by suction and heat recovery by the heat pump (1G). Various thermal energy combined with a vertical all-blade turbine (8H), which is made into a water jet 79Z that injects and injects fuel into a plurality of suction flow locations, and injects and injects air to suck and injects water, is heated as air temperature. Uses divided storage for compression and high pressure cold heat + heat with a pump. Uses heat preservation when using liquid metal below 500 degrees. Uses a resin coating for impact energy to extend the action preservation. Gravity energy increases and uses. And coalescing method. 空気を熱ポンプ(1G)で吸入圧縮熱回収した電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引噴射する合体機関噴射部78Aにする竪型全動翼タービン(8H)と合体した各種エネルギ保存サイクル合体機関及び合体方法。、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する   Air is heated and injected multiple times from the inner and outer peripheries to the cold received from the heat + heat and heat supply equipment that collects heat by suction and heat recovery by the heat pump (1G). Various energy storage cycle coalescing engines and coalescing methods combined with a vertical all-blade turbine (8H) to be a coalescing engine injection unit 78A for suction injection. , Various heat energies are divided into air pressure, compressed by high pressure cold heat + heat using a heat pump. Use heat preservation when using liquid metal below 500 degrees. Impact energy is extended by preserving action by providing a resin coating. Gravity energy increases. Use 空気を熱ポンプ(1G)で吸入圧縮熱回収した電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射する合体機関噴射部78Bにする竪型全動翼タービン(8H)と合体した、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Air is heated and injected multiple times from the inner and outer peripheries to the cold received from the heat + heat and heat supply equipment that collects heat by suction and heat recovery by the heat pump (1G). Various heat energies combined with a vertical all-blade turbine (8H), which is a combined engine injection unit 78B that performs fuel injection combustion injection at a plurality of suction flow locations and performs air suction injection, is compressed by a heat pump as air temperature and high pressure Various energy storage cycle coalescing engines and coalescence methods that use divided storage for cold heat + warm heat, use heat preservation when using liquid metal of 500 degrees or less, use impact coating to extend the action preservation by applying a resin coating, and use gravitational energy as an elevated preservation. 空気を熱ポンプ(1G)で吸入圧縮熱回収した電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射する合体機関噴射部78Vにする竪型全動翼タービン(8H)と合体した、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Fuel is injected and burned multiple times to the cold received from the electricity + cold + hot heat supply equipment that has collected the suction compression heat by the heat pump (1G), and the heat is heated and injected several times from the inner circumference, outer circumference, and inner circumference outer circumference. The various heat energy combined with the vertical all-blade turbine (8H), which is a combined engine injection unit 78V that injects and injects fuel into a plurality of locations of the air suction flow and sucks and injects air, is converted into air temperature by a heat pump. Compressed and high-pressure cold / heat divided and used for storage ・ Use of heat storage when using liquid metal below 500 degrees ・ Impact energy is extended by applying a resin coating ・ Gravity energy is increased and used for various energy storage cycles Method. 空気を熱ポンプ(1G)で吸入圧縮熱回収した電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、空気吸引噴射する合体機関噴射部78Wにする竪型全動翼タービン(8H)と合体した、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Fuel is injected and burned multiple times to the cold received from the electricity + cold + hot heat supply equipment that has collected the suction compression heat by the heat pump (1G), and the heat is heated and injected several times from the inner circumference, outer circumference, and inner circumference outer circumference. , Combined with a vertical all-blade turbine (8H) to make a combined engine injection part 78W for air suction injection, various heat energy is divided into a high pressure cold heat + heat using a heat pump as the air temperature. When using metal, use heat preservation, impact energy is provided with a resin coating, action preservation is extended, and gravitational energy is raised and used. 空気を1〜複数段熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力タービン(8H)電気+冷熱+温熱供給設備より受給して冷熱利用温熱利用電気利用発電手段にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   From the cold (28a) + hot air (50) driven by a single-stage multi-stage heat pump (1G), and from a vertical all-blade specific material gravity turbine (8H) driven by hot (50) electricity + cold + hot heat supply equipment Receiving and making use of cold heat and electric power generation means using heat, various heat energy is air temperature as heat pump, compressed and compressed into high pressure cold heat + heat and stored separately. Various energy conservation cycle coalescence engines and coalescence methods that use resin coating to extend the action preservation and gravity energy is preserved. 空気を1〜複数段熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力タービン(8H)と電気+冷熱+温熱供給設備より受給して冷熱利用温熱利用電気利用移動手段にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Cold (28a) + hot air (50) driven by a single-stage multi-stage heat pump (1G), and a vertical full blade ratio material gravity turbine (8H) driven by heat (50) and electricity + cold + heat supply equipment Receiving more and using it as a means of transportation using electricity using cold energy, using various heat energy as air temperature, use a heat pump to store compressed high-pressure cold heat + heat, use heat storage when using liquid metal below 500 degrees, use impact energy Is a combination of various energy conservation cycle coalescence engines and coalescence methods that use a resin coating to extend the action conservation and use gravitational energy ascending conservation. 空気を1〜複数段熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力タービン(8H)と電気+冷熱+温熱供給設備より受給して船舶類駆動手段にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Cold (28a) + hot air (50) driven by a single-stage multi-stage heat pump (1G), and a vertical full blade ratio material gravity turbine (8H) driven by heat (50) and electricity + cold + heat supply equipment Receiving more and using it as a ship drive means, various heat energy is compressed and stored as air temperature with a heat pump compressed into high pressure cold heat + heat. Various energy conservation cycle coalescing engine and coalescence method that uses extended energy conservation and gravity energy conservation. 空気を1〜複数段熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力タービン(8H)と電気+冷熱+温熱供給設備より受給して飛行機類駆動手段にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Cold (28a) + hot air (50) driven by a single-stage multi-stage heat pump (1G), and a vertical full blade ratio material gravity turbine (8H) driven by heat (50) and electricity + cold + heat supply equipment Receive various heat energy from airplanes and use it as air temperature. Use heat pump to separate and store compressed high pressure cold heat + heat. Use heat storage when using liquid metal below 500 degrees. Use impact resin with resin coating. Various energy conservation cycle coalescing engine and coalescence method that uses extended energy conservation and gravity energy conservation. 空気を1〜複数段熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力タービン(8H)と電気+冷熱+温熱供給設備より受給して冷熱温熱電気駆動の各種移動手段にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Cold (28a) + hot air (50) driven by a single-stage multi-stage heat pump (1G), and a vertical full blade ratio material gravity turbine (8H) driven by heat (50) and electricity + cold + heat supply equipment Receiving more and using it as various moving means of cold / thermal electric drive, various heat energy is divided into air pressure and compressed high pressure cold heat + heat with a heat pump. Use under heat storage when using liquid metal below 500 degrees. Impact energy Is a combination of various energy conservation cycle coalescence engines and coalescence methods that use a resin coating to extend the action conservation and use gravitational energy ascending conservation. 空気を1〜複数段熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力タービン(8H)と電気+冷熱+温熱供給設備より受給して冷熱利用工場電化全盛にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Cold (28a) + hot air (50) driven by a single-stage multi-stage heat pump (1G), and a vertical full blade ratio material gravity turbine (8H) driven by heat (50) and electricity + cold + heat supply equipment Receiving more and using it to make the factory electrify the cold, various heat energy is stored as air temperature using a heat pump divided into high pressure cold heat + warm heat. Use heat preservation when using liquid metal below 500 degrees. Impact energy is resin coated. Various energy conservation cycle coalescing engines and coalescence methods that use and extend the action preservation / gravity energy rise preservation. 空気を1〜複数段熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力タービン(8H)と電気+冷熱+温熱供給設備より受給して温熱利用家庭電化全盛にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Cold (28a) + hot air (50) driven by a single-stage multi-stage heat pump (1G), and a vertical full blade ratio material gravity turbine (8H) driven by heat (50) and electricity + cold + heat supply equipment Receiving more heat and using it as a home electric appliance, various heat energy is stored as air temperature using a heat pump, divided into cold high pressure + heat, divided into heat and stored. When using liquid metal below 500 degrees C Various energy conservation cycle coalescing engines and coalescence methods that use and extend the action preservation / gravity energy rise preservation. 空気を1〜複数段熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力タービン(8H)と電気+冷熱+温熱供給設備より受給して冷熱温熱電気駆動全盛にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Cold (28a) + hot air (50) driven by a single-stage multi-stage heat pump (1G), and a vertical full blade ratio material gravity turbine (8H) driven by heat (50) and electricity + cold + heat supply equipment Receiving more heat and electric drive prime, use various heat energy as air temperature with heat pump compressed and stored in high pressure cold heat + heat ・ Use heat insulation when using liquid metal below 500 degrees ・ Shock energy is resin coating Various energy conservation cycle coalescing engines and coalescence methods that use and extend the action preservation / gravity energy rise preservation. 空気を1〜複数段熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力タービン(8H)と電気+冷熱+温熱供給設備より受給して圧力エンジン+電気駆動車両類全盛にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Cold (28a) + hot air (50) driven by a single-stage multi-stage heat pump (1G), and a vertical full blade ratio material gravity turbine (8H) driven by heat (50) and electricity + cold + heat supply equipment Receiving from the pressure engine + electric drive vehicles prime, various heat energy is air temperature as a heat pump, divided into compressed high pressure cold heat + heat use. Is a combination of various energy conservation cycle coalescence engines and coalescence methods that use a resin coating to extend the action conservation and use gravitational energy ascending conservation. 空気を1〜複数段熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力タービン(8H)と電気+冷熱+温熱供給設備より受給して圧力エンジン+蓄電池駆動車両類全盛にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Cold (28a) + hot air (50) driven by a single-stage multi-stage heat pump (1G), and a vertical full blade ratio material gravity turbine (8H) driven by heat (50) and electricity + cold + heat supply equipment Receiving more from pressure engine + battery-powered vehicles, various heat energy is divided into air pressure, compressed high pressure cold heat + heat with a heat pump, use heat storage when using liquid metal below 500 degrees, shock energy Is a combination of various energy storage cycles and a coalescence method that uses a resin coating to extend the action storage and use the gravity energy ascending. 空気を1〜複数段熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力タービン(8H)と電気+冷熱+温熱供給設備より受給して圧力エンジン+蓄電池駆動全盛にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Cold (28a) + hot air (50) driven by a single-stage multi-stage heat pump (1G), and a vertical full blade ratio material gravity turbine (8H) driven by heat (50) and electricity + cold + heat supply equipment Received from the pressure engine + storage battery drive prime, various heat energy as air temperature is divided into heat and pressure compressed cold high pressure + heat using a heat pump ・ Use less heat when using liquid metal below 500 degrees ・ Impact energy is resin Various energy conservation cycle coalescing engines and coalescence methods that use coating to extend the action preservation and gravity energy is preserved. 空気を1〜複数段熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力タービン(8H)と電気+冷熱+温熱供給設備より受給して圧力エンジン+蓄電池駆動移動手段にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Cold (28a) + hot air (50) driven by a single-stage multi-stage heat pump (1G), and a vertical full blade ratio material gravity turbine (8H) driven by heat (50) and electricity + cold + heat supply equipment Receiving more from pressure engine + storage battery drive moving means, various heat energy is air temperature divided by heat pump compressed high pressure cold heat + heat, use heat storage when using liquid metal below 500 degrees, impact energy is Various energy conservation cycle coalescence engines and coalescence methods that use resin coating to extend the action conservation and use gravity energy ascending conservation. 空気を1〜複数段熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力タービン(8H)と電気+冷熱+温熱供給設備より受給して冷熱温熱蓄電池駆動船舶類全盛にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Cold (28a) + hot air (50) driven by a single-stage multi-stage heat pump (1G), and a vertical full blade ratio material gravity turbine (8H) driven by heat (50) and electricity + cold + heat supply equipment The heat energy received from the cold-heated storage battery-powered ships is plentiful. Various heat energy is stored as air temperature using a heat pump, divided into compressed high-pressure cold heat and heat. Various energy conservation cycle coalescence engines and coalescence methods that use resin coating to extend the action conservation and use gravity energy ascending conservation. 空気を1〜複数段熱ポンプ(1G)で吸入圧縮熱回収した冷熱(28a)+温熱(50)で駆動の竪型全動翼比重大物質重力タービン(8H)と電気+冷熱+温熱供給設備全盛にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Cold (28a) + hot air (50) driven by a single-stage multi-stage heat pump (1G), and a vertical full blade ratio material gravity turbine (8H) driven by heat (50) and electricity + cold + heat supply equipment Use various heat energy as air temperature by using a heat pump to divide and store in cold + warm heat. Use heat storage when using liquid metal below 500 degrees. Use impact resin to extend the action storage by applying a resin coating. Gravity Various energy conservation cycle coalescence engines and coalescence methods used for energy conservation. 空気を1〜複数段熱ポンプ(1G)で吸入圧縮熱回収した電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、水を吸引噴射するウォータージェット79Uにする竪型全動翼タービン(8H)と合体した、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   The air is heated from the inner circumference, outer circumference, and inner circumference outer circumference by injecting and burning multiple times to the cold heat received from the electricity + cold heat + heat supply equipment collected by the suction and compression heat collected by 1 to multiple-stage heat pump (1G) Combined with a vertical all-blade turbine (8H) that makes water jet 79U that injects and sucks and injects water, various heat energy is stored as air temperature by dividing it into cold high pressure + hot heat compressed with a heat pump When using a liquid metal below a certain degree, use a heat preservation storage, impact energy is provided with a resin coating to extend the action storage, and gravity energy is increased storage use. 空気を1〜複数段熱ポンプ(1G)で吸入圧縮熱回収した電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、水を吸引噴射するウォータージェット79Xにする竪型全動翼タービン(8H)と合体した、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   The air is heated and heated several times from the inner and outer peripheries by fuel injection and combustion multiple times to the cold heat received from the electricity + cold heat + hot heat supply equipment that has been sucked and compressed with 1 to multiple heat pumps (1G) Combined with a vertical all-blade turbine (8H) that injects water into a water jet 79X that sucks and injects water. Various heat energy is stored as air temperature using a heat pump and divided into compressed high-pressure cold / hot heat. When using liquid metal, use of heat preservation storage ・ Impact energy is provided with a resin coating to extend the action storage ・ Gravity energy is stored and used in various energy storage cycles. 空気を1〜複数段熱ポンプ(1G)で吸入圧縮熱回収した電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、空気吸引噴射して水を吸引噴射するウォータージェット79Sにする竪型全動翼タービン(8H)と合体した、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   The air is heated from the inner circumference, outer circumference, and inner circumference outer circumference by injecting and burning multiple times to the cold heat received from the electricity + cold heat + heat supply equipment collected by the suction and compression heat collected by 1 to multiple-stage heat pump (1G) The various thermal energy combined with the vertical type moving blade turbine (8H) which is jetted and then sucked and sucked into the water jet 79S for sucking and jetting the water is compressed into high pressure cold / hot by the heat pump as the air temperature. Divided storage use ・ Use of heat storage when using liquid metal below 500 degrees ・ Various energy storage cycle coalescence engine and coalescence method that uses impact storage to extend the action preservation by providing resin coating and impact energy. 空気を1〜複数段熱ポンプ(1G)で吸入圧縮熱回収した電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射して水を吸引噴射するウォータージェット79Tにする竪型全動翼タービン(8H)と合体した、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   The air is heated from the inner circumference, outer circumference, and inner circumference outer circumference by injecting and burning multiple times to the cold heat received from the electricity + cold heat + heat supply equipment collected by the suction and compression heat collected by 1 to multiple-stage heat pump (1G) Various heat combined with a vertical all-blade turbine (8H) which is a water jet 79T which injects and injects fuel into a plurality of locations of air suction flow, and injects and injects fuel into air jets to suck and inject water. Energy is stored by dividing into high pressure cold / hot heat with air pump as air temperature. Use heat preservation when using liquid metal under 500 degrees. Use impact resin to extend the action preservation by using resin coating. Gravity energy is used for preservation. Various energy storage cycle coalescence engines and coalescence methods. 空気を1〜複数段熱ポンプ(1G)で吸入圧縮熱回収した電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引噴射して水を吸引噴射するウォータージェット79Yにする竪型全動翼タービン(8H)と合体した、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   The air is heated and heated several times from the inner and outer peripheries by fuel injection and combustion multiple times to the cold heat received from the electricity + cold heat + hot heat supply equipment that has been sucked and compressed with 1 to multiple heat pumps (1G) Combined with a vertical all-blade turbine (8H) that injects and sucks and injects water into a water jet 79Y. Various heat energy is divided and stored as air temperature by compressing and compressing high pressure and heat with a heat pump. Use ・ When using liquid metal below 500 degrees C 空気を1〜複数段熱ポンプ(1G)で吸入圧縮熱回収した電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射して水を吸引噴射するウォータージェット79Zにする竪型全動翼タービン(8H)と合体した、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   The air is heated and heated several times from the inner and outer peripheries by fuel injection and combustion multiple times to the cold heat received from the electricity + cold heat + hot heat supply equipment that has been sucked and compressed with 1 to multiple heat pumps (1G) The various thermal energies combined with the vertical rotor blade turbine (8H), which is injected and fuel-injected / combusted / injected into a plurality of locations of air suction flow, into a water jet 79Z that sucks and injects water by air suction, Air temperature is compressed using a heat pump and divided into high-pressure cold / heated heat. Uses heat-preserving when using liquid metal below 500 degrees. Uses a resin coating to extend impact storage. Gravity energy increases and uses various energy. Storage cycle coalescence engine and coalescence method. 空気を1〜複数段熱ポンプ(1G)で吸入圧縮熱回収した電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引噴射する合体機関噴射部78Aにする竪型全動翼タービン(8H)と合体した、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   The air is heated and heated several times from the inner and outer peripheries by fuel injection and combustion multiple times to the cold heat received from the electricity + cold heat + hot heat supply equipment that has been sucked and compressed with 1 to multiple heat pumps (1G) Combined with a vertical all-blade turbine (8H) to be a combined engine injection unit 78A that injects and sucks and injects air, various heat energy is stored as air temperature, divided into compressed high pressure cold heat + heat using a heat pump, 500 degrees Below, when using liquid metal, use of heat preservation, impact energy is provided with a resin coating, action preservation is extended, and gravitational energy is raised and used. 空気を1〜複数段熱ポンプ(1G)で吸入圧縮熱回収した電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射する合体機関噴射部78Bにする竪型全動翼タービン(8H)と合体した、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   The air is heated and heated several times from the inner and outer peripheries by fuel injection and combustion multiple times to the cold heat received from the electricity + cold heat + hot heat supply equipment that has been sucked and compressed with 1 to multiple heat pumps (1G) The various heat energy combined with the vertical all-blade turbine (8H) is injected into the combined engine injection section 78B for injecting and injecting the fuel into the air suction flow at a plurality of locations, and injecting the air into the air suction injection. Uses divided storage for compression and high pressure cold heat + heat with a pump. Uses heat preservation when using liquid metal below 500 degrees. Uses a resin coating for impact energy to extend the action preservation. Gravity energy increases and uses. And coalescing method. 空気を1〜複数段熱ポンプ(1G)で吸入圧縮熱回収した電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射する合体機関噴射部78Vにする竪型全動翼タービン(8H)と合体した、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   The air is heated from the inner circumference, outer circumference, and inner circumference outer circumference by injecting and burning multiple times to the cold heat received from the electricity + cold heat + heat supply equipment collected by the suction and compression heat collected by 1 to multiple-stage heat pump (1G) The various thermal energies are combined with a vertical all-blade turbine (8H) that is a combined engine injection unit 78V that injects and injects fuel into a plurality of locations of air suction flow, and injects and sucks air. Compressed high pressure cold heat + heat using a heat pump as part of the storage use. When using liquid metal below 500 degrees, use heat storage. Impact energy is provided with a resin coating, and action storage is extended. Gravity energy is increased and used. Merger engine and merger method. 空気を1〜複数段熱ポンプ(1G)で吸入圧縮熱回収した電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、空気吸引噴射する合体機関噴射部78Wにする竪型全動翼タービン(8H)と合体した、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   The air is heated from the inner circumference, outer circumference, and inner circumference outer circumference by injecting and burning multiple times to the cold heat received from the electricity + cold heat + heat supply equipment collected by the suction and compression heat collected by 1 to multiple-stage heat pump (1G) Combined with the vertical all-blade turbine (8H), which is a combined engine injection unit 78W that injects and injects air by suction, various heat energy is stored as air temperature, divided into compressed high pressure cold heat + heat with a heat pump Various energy storage cycle coalescing engines and coalescing methods that use heat insulation when using liquid metal below 500 degrees, use impact resin to extend the action preservation by providing a resin coating, and use gravity energy for preservation. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水(3E)圧力で比重大物質(2E)を噴射重力加速度加速して駆動の竪型全動翼比重大物質重力タービン(8H)電気+冷熱+温熱供給設備より受給して冷熱利用温熱利用電気利用発電手段にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen material gravity (2E) is stored and saved, and the Specimen material accelerator (6W) Water (3E) pressure is sprayed with the Gravity material (2E) to accelerate the gravity acceleration. Receiving from the turbine (8H) electricity + cold + heat supply equipment and using it as a cold-use / heat-use electricity-use power generation means, use various heat energy as air temperature by using a heat pump and store it in a compressed high-pressure cold / heat. When using liquid metal, keep warm and use ・ Impact energy is provided with resin coating to extend the action storage ・ Gravity energy is increased and used, and various energy storage cycle coalescing engine and coalescence method. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水(3E)圧力で比重大物質(2E)を噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)電気+冷熱+温熱供給設備より受給して冷熱利用温熱利用電気利用発電手段にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen material gravity (2E) is stored and saved, and the Specimen material accelerator (6W) Water (3E) pressure is sprayed with the Gravity material (2E) to accelerate the gravity acceleration. Receiving solar power turbine (8H) electricity + cold heat + heat supply equipment and using it as a cold-use heat-use electricity-use power generation means, use various heat energy as air temperature by heat pump to compress and store high-pressure cold heat + heat-500 degrees Below, when using liquid metal, use of heat preservation, impact energy is provided with a resin coating, action preservation is extended, and gravitational energy is raised and used. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水(3E)圧力で比重大物質(2E)を噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)と電気+冷熱+温熱供給設備より受給して冷熱利用温熱利用電気利用移動手段にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen material gravity (2E) is stored and stored in a specific material substance accelerator (6W). Receiving from the solar heat turbine (8H) and electricity + cold + heat supply equipment and using it as a cold-use / heat-use electricity transfer means, various heat energy is stored as air temperature by using a heat pump and compressed into high-pressure cold / heat. When using a liquid metal below a certain degree, use a heat preservation storage, impact energy is provided with a resin coating to extend the action storage, and gravity energy is increased storage use. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水(3E)圧力で比重大物質(2E)を噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)と電気+冷熱+温熱供給設備より受給して船舶類駆動手段にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen material gravity (2E) is stored and saved, and the Specimen material accelerator (6W) Water (3E) pressure is sprayed with the Gravity material (2E) to accelerate the gravity acceleration. Receiving from solar heat turbine (8H) and electricity + cold + heat supply equipment and using it as a ship drive means, various heat energy is stored as air temperature by heat pump compressed high-pressure cold heat + heat divided into liquid metal under 500 degrees Various energy storage cycle coalescing engines and coalescing methods that use heat preservation during use, impact energy is provided with a resin coating, action preservation is extended, and gravitational energy is preserved. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水(3E)圧力で被覆タングステン合金粉末焼結球(2E)を混合噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)と電気+冷熱+温熱供給設備より受給して飛行機類駆動手段にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen substance riser (2F) is stored ascended, and the specific substance accelerator (6W) Water (3E) pressure is applied to the coated tungsten alloy powder sintered sphere (2E) to accelerate the mixed jet gravity acceleration to drive the vertical blade Receiving from specific gravity material gravity solar turbine (8H) and electricity + cold + heat supply equipment to make airplane driving means, various heat energy is stored as air temperature by heat pump compressed high pressure cold heat + heat When using a liquid metal below a certain degree, use a heat preservation storage. Impact energy is provided with a resin coating to extend the action storage. Gravity energy is increased and used. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水銀(3E)圧力で被覆タングステン合金粉末焼結球(2E)を混合噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)発電と電気+冷熱+温熱供給設備より受給して電気駆動熱ポンプで圧縮空気冷熱+温熱に分割保存使用する、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen substance riser (2F) is stored ascended, and the specific substance accelerator (6W) mercury (3E) pressure is applied to the coated tungsten alloy powder sintered sphere (2E) to accelerate the mixed jet gravity acceleration to drive the vertical blade Specific gravity material Gravity solar turbine (8H) power generation and electricity + cold heat + heat supply equipment received by electric drive heat pump and compressed air cold heat + heat storage, various heat energy is compressed by high pressure with heat pump as air temperature Various energy storage cycle coalescing engines and coalescence methods that use divided storage for cold heat + warm heat, use heat preservation when using liquid metal of 500 degrees or less, use impact coating to extend the action preservation by applying a resin coating, and use gravitational energy as an elevated preservation. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水銀(3E)圧力で被覆タングステン合金粉末焼結球(2E)を混合噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)と電気+冷熱+温熱供給設備より受給して移動手段にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen substance riser (2F) is stored ascended, and the specific substance accelerator (6W) mercury (3E) pressure is applied to the coated tungsten alloy powder sintered sphere (2E) to accelerate the mixed jet gravity acceleration to drive the vertical blade Receiving from specific gravity material gravity solar turbine (8H) and electricity + cold heat + heat supply equipment and using it as a moving means, various heat energy is stored as air temperature by heat pump compressed high pressure cold heat + heat and used-500 degrees or less When using liquid metal, keep warm and use ・ Impact energy is provided with resin coating to extend the action storage ・ Gravity energy is increased and used, and various energy storage cycle coalescing engine and coalescence method. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水銀(3E)圧力で被覆タングステン合金粉末焼結球(2E)を混合噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)と電気+冷熱+温熱供給設備より受給して船舶類駆動手段にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen substance riser (2F) is stored ascended, and the specific substance accelerator (6W) mercury (3E) pressure is applied to the coated tungsten alloy powder sintered sphere (2E) to accelerate the mixed jet gravity acceleration to drive the vertical blade Receiving from specific gravity material gravity solar heat turbine (8H) and electricity + cold + heat supply equipment and using it as a ship drive means, various heat energy is stored as divided into air-temperature compressed high pressure cold heat + heat with a heat pump. When using a liquid metal below a certain degree, use a heat preservation storage, impact energy is provided with a resin coating to extend the action storage, and gravity energy is increased storage use. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水銀(3E)圧力で被覆タングステン合金粉末焼結球(2E)を混合噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)と電気+冷熱+温熱供給設備より受給して飛行機類駆動手段にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen substance riser (2F) is stored ascended, and the specific substance accelerator (6W) mercury (3E) pressure is applied to the coated tungsten alloy powder sintered sphere (2E) to accelerate the mixed jet gravity acceleration to drive the vertical blade Receiving from specific gravity material gravity solar turbine (8H) and electricity + cold + heat supply equipment to make airplane driving means, various heat energy is stored as air temperature by heat pump compressed high pressure cold heat + heat When using a liquid metal below a certain degree, use a heat preservation storage, impact energy is provided with a resin coating to extend the action storage, and gravity energy is increased storage use. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)低融点合金(3E)圧力で比重大物質(2E)を混合噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)電気+冷熱+温熱供給設備より受給して冷熱利用温熱利用電気利用発電手段にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specific critical substance accelerator (6F) Low melting point alloy (3E) Specific critical substance (2E) is mixed and accelerated by gravity acceleration and driven by a specific critical substance riser (2F). Large-mass gravity solar turbine (8H) received from electricity + cold + heat supply equipment and used as cold-heated / heated electricity-generating power generation means, various heat energy is stored as divided into air-temperature compressed high-pressure cold / heat by a heat pump・ When using liquid metal of 500 degrees or less, use thermal insulation storage. ・ Impact energy is provided with a resin coating to extend the action storage. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)低融点合金(3E)圧力で比重大物質(2E)を混合噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)と電気+冷熱+温熱供給設備より受給して冷熱利用温熱利用電気利用移動手段にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specific critical substance accelerator (6F) Low melting point alloy (3E) Specific critical substance (2E) is mixed and accelerated by gravity acceleration and driven by a specific critical substance riser (2F). Receiving from a large-mass gravity solar turbine (8H) and electricity + cold + heat supply equipment and using it as a cold-use / heat-use electricity transfer means, various heat energy is stored as air temperature in a compressed high-pressure cold / heat using a heat pump. Use ・ When using liquid metal below 500 degrees C 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)低融点合金(3E)圧力で比重大物質(2E)を混合噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)と電気+冷熱+温熱供給設備より受給して船舶類駆動手段にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specific critical substance accelerator (6F) Low melting point alloy (3E) Specific critical substance (2E) is mixed and accelerated by gravity acceleration and driven by a specific critical substance riser (2F). Receiving from large-mass gravity solar turbine (8H) and electricity + cold + heat supply equipment and using it as a ship drive means, various heat energy is stored as air temperature using a heat pump and compressed into high pressure cold heat + heat and stored at 500 degrees Below, when using liquid metal, use of heat preservation storage, impact energy is provided with a resin coating to extend the action storage, and gravity energy is increased storage use. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)低融点合金(3E)圧力で比重大物質(2E)を混合噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)と電気+冷熱+温熱供給設備より受給して飛行機類駆動手段にする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specific critical substance accelerator (6F) Low melting point alloy (3E) Specific critical substance (2E) is mixed and accelerated by gravity acceleration and driven by a specific critical substance riser (2F). Received from large-mass gravity solar turbine (8H) and electricity + cold + heat supply equipment and used as airplane driving means, various heat energy is stored as air temperature by heat pump compressed high pressure cold heat + heat and stored at 500 degrees Below, when using liquid metal, use of heat preservation, impact energy is provided with a resin coating, action preservation is extended, and gravitational energy is raised and used. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水(3E)圧力で比重大物質(2E)を噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、水を吸引噴射するウォータージェット79Uにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen material gravity (2E) is stored and saved, and the Specimen material accelerator (6W) Water (3E) pressure is sprayed with the Gravity material (2E) to accelerate the gravity acceleration. Solar heat turbine (8H) 1-Multiple stage compression heat recovery unit (2C) manufactured by electricity + cold heat + cold heat received from the heat supply equipment multiple times by fuel injection combustion and multiple heat from the inner circumference, outer circumference and inner circumference outer circumference Water jet 79U, which is heated once and sprayed, and water is sucked and jetted, and various heat energy is stored as air temperature using a heat pump divided into compressed high-pressure cold / hot heat.・ Impact energy is provided with a resin coating to extend the action storage. ・ Gravity energy is stored and used in various energy storage cycles. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水(3E)圧力で比重大物質(2E)を噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、水を吸引噴射するウォータージェット79Xにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen material gravity (2E) is stored and saved, and the Specimen material accelerator (6W) Water (3E) pressure is sprayed with the Gravity material (2E) to accelerate the gravity acceleration. Solar heat turbine (8H) 1-Multiple stage compression heat recovery unit (2C) manufactured by electricity + cold heat + cold heat received from the heat supply equipment multiple times fuel injection combustion to heat the heat multiple times from the inner periphery and inner periphery outer periphery Water jet 79X that injects and sucks and injects water. Various heat energy is stored as air temperature using a heat pump divided into compressed high-pressure cold / hot heat. Various energy conservation cycle coalescing engines and coalescence methods that use resin coating to extend the action preservation and gravity energy to save and use. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水(3E)圧力で比重大物質(2E)を噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、空気吸引噴射して水を吸引噴射するウォータージェット79Sにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen material gravity (2E) is stored and saved, and the Specimen material accelerator (6W) Water (3E) pressure is sprayed with the Gravity material (2E) to accelerate the gravity acceleration. Solar heat turbine (8H) 1-Multiple stage compression heat recovery unit (2C) manufactured by electricity + cold heat + cold heat received from the heat supply equipment multiple times by fuel injection combustion and multiple heat from the inner circumference, outer circumference and inner circumference outer circumference Water jet 79S, which is heated and sprayed, and sucked and sprayed by air suction, and various heat energies are stored as air temperature by a heat pump and divided into high pressure cold heat + hot heat. Use less than 500 degrees liquid metal Use energy storage cycle coalescence engine and coalescence method that use heat preservation storage, impact energy is provided with resin coating to extend action preservation, and gravity energy rises and uses. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水(3E)圧力で比重大物質(2E)を噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射して水を吸引噴射するウォータージェット79Tにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen material gravity (2E) is stored and saved, and the Specimen material accelerator (6W) Water (3E) pressure is sprayed with the Gravity material (2E) to accelerate the gravity acceleration. Solar heat turbine (8H) 1-Multiple stage compression heat recovery unit (2C) manufactured by electricity + cold heat + cold heat received from the heat supply equipment multiple times by fuel injection combustion and multiple heat from the inner circumference, outer circumference and inner circumference outer circumference Injected by multiple heating and injection, fuel injection combustion injection at multiple locations of air suction flow, water jet 79T for air suction injection and water suction injection, various heat energy is compressed by high pressure with heat pump as air temperature Uses divided storage for cold heat + warm heat ・ Uses heat storage when using liquid metal below 500 degrees ・ Impact energy is extended by providing a resin coating ・ Gravity energy is stored and combined with various energy storage cycle engines Body method. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水(3E)圧力で比重大物質(2E)を噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引噴射して水を吸引噴射するウォータージェット79Yにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen material gravity (2E) is stored and saved, and the Specimen material accelerator (6W) Water (3E) pressure is sprayed with the Gravity material (2E) to accelerate the gravity acceleration. Solar heat turbine (8H) 1-Multiple stage compression heat recovery unit (2C) manufactured by electricity + cold heat + cold heat received from the heat supply equipment multiple times fuel injection combustion to heat the heat multiple times from the inner periphery and inner periphery outer periphery Water jet 79Y that injects and injects air and sucks and injects water. Various heat energy is stored as air temperature in a heat pump divided into compressed high pressure cold heat + heat. Use of heat preservation storage / impact energy is provided with resin coating to extend the action storage, and gravitational energy is increased storage use. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水(3E)圧力で比重大物質(2E)を噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射して水を吸引噴射するウォータージェット79Zにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen material gravity (2E) is stored and saved, and the Specimen material accelerator (6W) Water (3E) pressure is sprayed with the Gravity material (2E) to accelerate the gravity acceleration. Solar heat turbine (8H) 1-Multiple stage compression heat recovery unit (2C) manufactured by electricity + cold heat + cold heat received from the heat supply equipment multiple times fuel injection combustion to heat the heat multiple times from the inner periphery and inner periphery outer periphery Injecting and injecting fuel into multiple places of air suction flow, fuel injection combustion injection, air suction injection and water jet 79Z that sucks and injects water into the water jet, various heat energy is compressed by the heat pump as the air temperature + Divided storage use for heat ・ Use of heat preservation when using liquid metal below 500 degrees ・ Impact energy is extended by providing a resin coating ・ Energy storage cycle coalescence engine and coalescence method used to save and use gravity energy . 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水(3E)圧力で比重大物質(2E)を噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引噴射する合体機関噴射部78Aにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen material gravity (2E) is stored and saved, and the Specimen material accelerator (6W) Water (3E) pressure is sprayed with the Gravity material (2E) to accelerate the gravity acceleration. Solar heat turbine (8H) 1-Multiple stage compression heat recovery unit (2C) manufactured by electricity + cold heat + cold heat received from the heat supply equipment multiple times fuel injection combustion to heat the heat multiple times from the inner periphery and inner periphery outer periphery The combined engine injection part 78A that injects and injects air by suction is used to store various heat energy as air temperature with heat pump compressed high pressure cold heat + warm heat. Various energy conservation cycle coalescence engines and coalescence methods that use impact energy to extend the action preservation by providing a resin coating, and gravity energy rises and preserves. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水(3E)圧力で比重大物質(2E)を噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射する合体機関噴射部78Bにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen material gravity (2E) is stored and saved, and the Specimen material accelerator (6W) Water (3E) pressure is sprayed with the Gravity material (2E) to accelerate the gravity acceleration. Solar heat turbine (8H) 1-Multiple stage compression heat recovery unit (2C) manufactured by electricity + cold heat + cold heat received from the heat supply equipment multiple times fuel injection combustion to heat the heat multiple times from the inner periphery and inner periphery outer periphery Injecting and injecting into multiple locations, the fuel is injected and burned into multiple locations to produce a combined engine injection section 78B for inhaling and injecting air. Preservation use ・ Use of heat preservation when using liquid metal of less than 500 degrees ・ Impact energy is provided with resin coating to extend the action preservation ・ Gravity energy is used for the preservation and combination of various energy preservation cycle coalescence engines and coalescence methods. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水(3E)圧力で比重大物質(2E)を噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射する合体機関噴射部78Vにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen material gravity (2E) is stored and saved, and the Specimen material accelerator (6W) Water (3E) pressure is sprayed with the Gravity material (2E) to accelerate the gravity acceleration. Solar heat turbine (8H) 1-Multiple stage compression heat recovery unit (2C) manufactured by electricity + cold heat + cold heat received from the heat supply equipment multiple times by fuel injection combustion and multiple heat from the inner circumference, outer circumference and inner circumference outer circumference Compressed high-pressure cold / heated heat with a heat pump as the air temperature. Divided storage use ・ In the case of using liquid metal under 500 degrees C 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水(3E)圧力で比重大物質(2E)を噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、空気吸引噴射する合体機関噴射部78Wにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen material gravity (2E) is stored and saved, and the Specimen material accelerator (6W) Water (3E) pressure is sprayed with the Gravity material (2E) to accelerate the gravity acceleration. Solar heat turbine (8H) 1-Multiple stage compression heat recovery unit (2C) manufactured by electricity + cold heat + cold heat received from the heat supply equipment multiple times by fuel injection combustion and multiple heat from the inner circumference, outer circumference and inner circumference outer circumference Combined engine injection unit 78W that injects and heats and injects and sucks and injects air. Various heat energy is stored as air temperature in a heat pump, divided into compressed high pressure cold heat + warm heat. Use / impact energy is provided with a resin coating to extend the action storage. Gravity energy is stored in an energy storage cycle. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水銀(3E)圧力で被覆タングステン合金粉末焼結球(2E)を混合噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、水を吸引噴射するウォータージェット79Uにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen substance riser (2F) is stored ascended, and the specific substance accelerator (6W) mercury (3E) pressure is applied to the coated tungsten alloy powder sintered sphere (2E) to accelerate the mixed jet gravity acceleration to drive the vertical blade Specific gravity gravity solar thermal turbine (8H) 1-multistage compression heat recovery unit (2C) manufactured by electricity + cold heat + cold heat received from the heat supply facility multiple times fuel injection combustion to heat the inner circumference, outer circumference and inner Water jet 79U that heats and injects multiple times from the outer circumference and sucks and injects water. Various heat energy is stored as air temperature by a heat pump compressed into high-pressure cold heat + heat. Use heat preservation storage, impact energy is provided with resin coating to extend the action storage, and gravity energy is stored by using various energy storage cycle coalescence engine and coalescence method. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水銀(3E)圧力で被覆タングステン合金粉末焼結球(2E)を混合噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、水を吸引噴射するウォータージェット79Xにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen substance riser (2F) is stored ascended, and the specific substance accelerator (6W) mercury (3E) pressure is applied to the coated tungsten alloy powder sintered sphere (2E) to accelerate the mixed jet gravity acceleration to drive the vertical blade Specific gravity gravity solar turbine (8H) 1-Multistage compression heat recovery unit (2C) manufactured by electricity + cold heat + cold energy received from the hot heat supply facility multiple times fuel injection combustion to heat the inner circumference and inner circumference outer circumference The water heat is sprayed multiple times to make a water jet 79X that sucks and jets water. Various heat energy is stored as air temperature in a heat pump divided into compressed high pressure cold heat + heat. Keeping heat when using liquid metal below 500 degrees Preservation use / impact energy is provided with a resin coating to extend the action preservation. Gravity energy is used for ascending preservation. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水銀(3E)圧力で被覆タングステン合金粉末焼結球(2E)を混合噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、 空気吸引噴射して水を吸引噴射するウォータージェット79Sにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen substance riser (2F) is stored ascended, and the specific substance accelerator (6W) mercury (3E) pressure is applied to the coated tungsten alloy powder sintered sphere (2E) to accelerate the mixed jet gravity acceleration to drive the vertical blade Specific gravity gravity solar thermal turbine (8H) 1-multistage compression heat recovery unit (2C) manufactured by electricity + cold heat + cold heat received from the heat supply facility multiple times fuel injection combustion to heat the inner circumference, outer circumference and inner Water jet 79S that heats and injects multiple times from the outer periphery, and sucks and injects air into a water jet 79S. Various heat energy is stored as air temperature by a heat pump and compressed into high-pressure cold / hot heat. Below, when using liquid metal, use of heat preservation, impact energy is provided with a resin coating, action preservation is extended, and gravitational energy is raised and used. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水銀(3E)圧力で被覆タングステン合金粉末焼結球(2E)を混合噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射して水を吸引噴射するウォータージェット79Tにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen substance riser (2F) is stored ascended, and the specific substance accelerator (6W) mercury (3E) pressure is applied to the coated tungsten alloy powder sintered sphere (2E) to accelerate the mixed jet gravity acceleration to drive the vertical blade Specific gravity gravity solar thermal turbine (8H) 1-multistage compression heat recovery unit (2C) manufactured by electricity + cold heat + cold heat received from the heat supply facility multiple times fuel injection combustion to heat the inner circumference, outer circumference and inner Heated and injected multiple times from the circumference and periphery, fuel injection combustion injection to multiple locations of air suction flow, and water jet 79T that sucks and injects water by air suction injection, and various thermal energy is heated as air temperature Compressed high-pressure cold / hot heat with a pump divided and used for storage ・ When using liquid metal of less than 500 degrees centigrade, use for heat storage ・ Impact energy is extended by providing a resin coating ・ Gravity energy is used for increased storage Save cycle combined institutions and coalescence method. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水銀(3E)圧力で被覆タングステン合金粉末焼結球(2E)を混合噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引噴射して水を吸引噴射するウォータージェット79Yにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen substance riser (2F) is stored ascended, and the specific substance accelerator (6W) mercury (3E) pressure is applied to the coated tungsten alloy powder sintered sphere (2E) to accelerate the mixed jet gravity acceleration to drive the vertical blade Specific gravity gravity solar turbine (8H) 1-Multistage compression heat recovery unit (2C) manufactured by electricity + cold heat + cold energy received from the hot heat supply facility multiple times fuel injection combustion to heat the inner circumference and inner circumference outer circumference The water jet 79Y, which is heated and sprayed multiple times from the air, and is sucked and jetted by air suction and used to suck and jet water. Various heat energy is stored in a heat pump as a compressed air by using a heat pump. When using metal, use heat preservation, impact energy is provided with a resin coating, action preservation is extended, and gravitational energy is raised and used. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水銀(3E)圧力で被覆タングステン合金粉末焼結球(2E)を混合噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射して水を吸引噴射するウォータージェット79Zにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen substance riser (2F) is stored ascended, and the specific substance accelerator (6W) mercury (3E) pressure is applied to the coated tungsten alloy powder sintered sphere (2E) to accelerate the mixed jet gravity acceleration to drive the vertical blade Specific gravity gravity solar turbine (8H) 1-Multistage compression heat recovery unit (2C) manufactured by electricity + cold heat + cold energy received from the hot heat supply facility multiple times fuel injection combustion to heat the inner circumference and inner circumference outer circumference The air is heated and injected several times, and the air suction flow is also injected into the fuel injection / combustion at several places to produce water jet 79Z that sucks and injects water into the water jet 79Z. Compressed and high-pressure cold / hot heat divided storage use. When using liquid metal below 500 degrees C, use heat storage. Impact resin is provided with a resin coating to extend the action storage. Gravity energy is increased. Cycle combined institutions and coalescence method. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水銀(3E)圧力で被覆タングステン合金粉末焼結球(2E)を混合噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引噴射する合体機関噴射部78Aにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen substance riser (2F) is stored ascended, and the specific substance accelerator (6W) mercury (3E) pressure is applied to the coated tungsten alloy powder sintered sphere (2E) to accelerate the mixed jet gravity acceleration to drive the vertical blade Specific gravity gravity solar turbine (8H) 1-Multistage compression heat recovery unit (2C) manufactured by electricity + cold heat + cold energy received from the hot heat supply facility multiple times fuel injection combustion to heat the inner circumference and inner circumference outer circumference The combined heat is injected multiple times to make a combined engine injection unit 78A that injects and sucks air. Various heat energies are divided into air pressure and compressed high pressure cold heat + heat with a heat pump. Use of heat preservation storage / impact energy is provided with resin coating to extend the action storage, and gravitational energy is increased storage use. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水銀(3E)圧力で被覆タングステン合金粉末焼結球(2E)を混合噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射する合体機関噴射部78Bにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen substance riser (2F) is stored ascended, and the specific substance accelerator (6W) mercury (3E) pressure is applied to the coated tungsten alloy powder sintered sphere (2E) to accelerate the mixed jet gravity acceleration to drive the vertical blade Specific gravity gravity solar turbine (8H) 1-Multistage compression heat recovery unit (2C) manufactured by electricity + cold heat + cold energy received from the hot heat supply facility multiple times fuel injection combustion to heat the inner circumference and inner circumference outer circumference And then injecting into a combined engine injection unit 78B that injects and injects fuel into a plurality of locations of the air suction flow to produce air suction and injection. + Divided storage use for heat ・ Use of heat storage when using liquid metal below 500 degrees ・ Impact energy is extended by providing a resin coating ・ Energy storage cycle coalescing engine that uses and saves gravity energy Body method. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水銀(3E)圧力で被覆タングステン合金粉末焼結球(2E)を混合噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射する合体機関噴射部78Vにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen substance riser (2F) is stored ascended, and the specific substance accelerator (6W) mercury (3E) pressure is applied to the coated tungsten alloy powder sintered sphere (2E) to accelerate the mixed jet gravity acceleration to drive the vertical blade Specific gravity gravity solar thermal turbine (8H) 1-multistage compression heat recovery unit (2C) manufactured by electricity + cold heat + cold heat received from the heat supply facility multiple times fuel injection combustion to heat the inner circumference, outer circumference and inner It is heated and injected several times from the outer circumference, and it is made into a combined engine injection unit 78V that injects and injects fuel into a plurality of locations of air suction flow to make air suction injection. Uses split storage for cold heat + warm heat ・ Uses heat preservation when using liquid metal below 500 degrees ・ Impact energy is extended by providing a resin coating ・ Gravity energy rises and uses various energy storage cycle coalescing machines And coalescence method. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)水銀(3E)圧力で被覆タングステン合金粉末焼結球(2E)を混合噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、空気吸引噴射する合体機関噴射部78Wにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specimen substance riser (2F) is stored ascended, and the specific substance accelerator (6W) mercury (3E) pressure is applied to the coated tungsten alloy powder sintered sphere (2E) to accelerate the mixed jet gravity acceleration to drive the vertical blade Specific gravity gravity solar thermal turbine (8H) 1-multistage compression heat recovery unit (2C) manufactured by electricity + cold heat + cold heat received from the heat supply facility multiple times fuel injection combustion to heat the inner circumference, outer circumference and inner Uses a combined engine injection unit 78W that injects and heats multiple injections from the outer circumference and uses air suction and injection. Various heat energy is stored in a heat pump as a compressed air by using a heat pump. Use energy storage cycle coalescence engine and coalescence method that use heat preservation storage, impact energy is provided with resin coating to extend action preservation, and gravity energy rises and uses. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)低融点合金(3E)圧力で比重大物質(2E)を混合噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、水を吸引噴射するウォータージェット79Uにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specific critical substance accelerator (6F) Low melting point alloy (3E) Specific critical substance (2E) is mixed and accelerated by gravity acceleration and driven by a specific critical substance riser (2F). Large-mass gravity solar turbine (8H) 1 to multi-stage compression heat recovery unit (2C) manufactured by electricity + cold heat + cold heat received from the hot heat supply facility multiple times by fuel injection combustion to heat the inner circumference, outer circumference and inner circumference Water jet 79U, which is heated and sprayed from the outer periphery several times and sucked and jetted into water. Various heat energy is stored as air temperature by heat pump compressed high pressure cold heat + hot heat. Use of heat preservation storage / impact energy is provided with resin coating to extend the action storage, and gravitational energy is increased storage use. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)低融点合金(3E)圧力で比重大物質(2E)を混合噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、水を吸引噴射するウォータージェット79Xにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specific critical substance accelerator (6F) Low melting point alloy (3E) Specific critical substance (2E) is mixed and accelerated by gravity acceleration and driven by a specific critical substance riser (2F). Large-mass gravity solar turbine (8H) 1 to multi-stage compression heat recovery unit (2C) manufactured by electricity + cold heat + cold heat received from the heat supply facility, fuel injection and combustion multiple times to heat from the inner circumference and inner circumference outer circumference Water jet 79X that heats and injects multiple times to produce water suction and injects water. Various heat energy is stored as air temperature using a heat pump divided into compressed high pressure cold / hot heat. Use / impact energy is provided with a resin coating to extend the action storage. Gravity energy is stored in an energy storage cycle. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)低融点合金(3E)圧力で比重大物質(2E)を混合噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、空気吸引噴射して水を吸引噴射するウォータージェット79Sにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specific critical substance accelerator (6F) Low melting point alloy (3E) Specific critical substance (2E) is mixed and accelerated by gravity acceleration and driven by a specific critical substance riser (2F). Large-mass gravity solar turbine (8H) 1 to multi-stage compression heat recovery unit (2C) manufactured by electricity + cold heat + cold heat received from the hot heat supply facility multiple times by fuel injection combustion to heat the inner circumference, outer circumference and inner circumference Water jet 79S that heats and injects multiple times from the outer periphery, and sucks and injects air to suck and injects water. Various heat energy is stored as air temperature using a heat pump divided into high-pressure cold and hot heat. When using liquid metal, use of heat preservation storage ・ Impact energy is provided with a resin coating to extend the action storage ・ Gravity energy is stored and used in various energy storage cycles. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)低融点合金(3E)圧力で比重大物質(2E)を混合噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射して水を吸引噴射するウォータージェット79Tにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specific critical substance accelerator (6F) Low melting point alloy (3E) Specific critical substance (2E) is mixed and accelerated by gravity acceleration and driven by a specific critical substance riser (2F). Large-mass gravity solar turbine (8H) 1 to multi-stage compression heat recovery unit (2C) manufactured by electricity + cold heat + cold heat received from the hot heat supply facility multiple times by fuel injection combustion to heat the inner circumference, outer circumference and inner circumference Heat is injected several times from the outer periphery, fuel is injected into the air suction flow at several locations, and fuel injection is injected into the water jet 79T, which sucks and injects water into the water jet 79T. Compressed and high-pressure cold / heated and divided storage use. When using liquid metal below 500 degrees, use heat storage. Impact resin is provided with a resin coating to extend the action storage. Gravity energy is increased. Body institutions and coalescence method. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)低融点合金(3E)圧力で比重大物質(2E)を混合噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引噴射して水を吸引噴射するウォータージェット79Yにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specific critical substance accelerator (6F) Low melting point alloy (3E) Specific critical substance (2E) is mixed and accelerated by gravity acceleration and driven by a specific critical substance riser (2F). Large-mass gravity solar turbine (8H) 1 to multi-stage compression heat recovery unit (2C) manufactured by electricity + cold heat + cold heat received from the heat supply facility, fuel injection and combustion multiple times to heat from the inner circumference and inner circumference outer circumference Water jet 79Y that heats and injects multiple times, and inhales and injects air to suck and injects water. Various heat energy is stored as air temperature in a heat pump, compressed into high pressure cold heat + heat and stored. Various energy storage cycle coalescing engines and coalescing methods that use heat preservation during use, impact energy is provided with resin coating to extend the action preservation, and gravitational energy rises. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)低融点合金(3E)圧力で比重大物質(2E)を混合噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射して水を吸引噴射するウォータージェット79Zにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specific critical substance accelerator (6F) Low melting point alloy (3E) Specific critical substance (2E) is mixed and accelerated by gravity acceleration and driven by a specific critical substance riser (2F). Large-mass gravity solar turbine (8H) 1 to multi-stage compression heat recovery unit (2C) manufactured by electricity + cold heat + cold heat received from the heat supply facility, fuel injection and combustion multiple times to heat from the inner circumference and inner circumference outer circumference Injected by heating multiple times, injected into multiple air suction flows, injected into fuel, burned and injected into water jet 79Z that injects air and sucks and injects water. Various thermal energy is compressed by a heat pump as air temperature Divided storage use for high-pressure cold heat + heat ・ Insulation storage use when using liquid metal below 500 ° C ・ Impact energy is extended by a resin coating, and energy storage cycle coalescing machine is used to save and use gravity energy And coalescence method. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)低融点合金(3E)圧力で比重大物質(2E)を混合噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引噴射する合体機関噴射部78Aにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specific critical substance accelerator (6F) Low melting point alloy (3E) Specific critical substance (2E) is mixed and accelerated by gravity acceleration and driven by a specific critical substance riser (2F). Large-mass gravity solar turbine (8H) 1 to multi-stage compression heat recovery unit (2C) manufactured by electricity + cold heat + cold heat received from the heat supply facility, fuel injection and combustion multiple times to heat from the inner circumference and inner circumference outer circumference Combined engine injection unit 78A that heats and injects multiple times to inject and sucks and injects air. Various heat energy is stored as air temperature by heat pump, compressed high-pressure cold heat + heat divided and kept below 500 degrees Celsius when using liquid metal Preservation use / impact energy is provided with a resin coating to extend the action preservation. Gravity energy is used for ascending preservation. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)低融点合金(3E)圧力で比重大物質(2E)を混合噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射する合体機関噴射部78Bにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specific critical substance accelerator (6F) Low melting point alloy (3E) Specific critical substance (2E) is mixed and accelerated by gravity acceleration and driven by a specific critical substance riser (2F). Large-mass gravity solar turbine (8H) 1 to multi-stage compression heat recovery unit (2C) manufactured by electricity + cold heat + cold heat received from the heat supply facility, fuel injection and combustion multiple times to heat from the inner circumference and inner circumference outer circumference Injected by heating multiple times, injected into a plurality of locations of air suction flow, fuel injection combustion injection into a combined engine injection unit 78B for air suction injection, various heat energy is compressed as high-temperature cold air with a heat pump as air temperature + Various energy storage cycle coalescence engines and coalescence methods that use divided heat storage, use heat preservation when using liquid metal below 500 degrees, use impact energy to extend the action preservation by providing a resin coating, and use gravitational energy rise. 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)低融点合金(3E)圧力で比重大物質(2E)を混合噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、空気吸引流複数か所にも燃料噴射燃焼噴射して、空気吸引噴射する合体機関噴射部78Vにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specific critical substance accelerator (6F) Low melting point alloy (3E) Specific critical substance (2E) is mixed and accelerated by gravity acceleration and driven by a specific critical substance riser (2F). Large-mass gravity solar turbine (8H) 1 to multi-stage compression heat recovery unit (2C) manufactured by electricity + cold heat + cold heat received from the hot heat supply facility multiple times by fuel injection combustion to heat the inner circumference, outer circumference and inner circumference It is heated and injected several times from the outer periphery, fuel injection combustion injection is also carried out at several places of air suction flow, and it is made into a combined engine injection part 78V for air suction injection, and various heat energy is compressed with a heat pump as air temperature Divided storage use for cold heat + warm heat ・ Use of heat preservation when using liquid metal below 500 degrees ・ Impact energy is extended by providing resin coating ・ Gravity energy is raised and used Various energy storage cycle coalescence engine and coalescence method 比重大物質上昇装置(2F)で上昇保存して比重大物質加速器(6W)低融点合金(3E)圧力で比重大物質(2E)を混合噴射重力加速度加速して駆動の竪型全動翼比重大物質重力太陽熱タービン(8H)1〜複数段圧縮熱回収器(2C)で製造の電気+冷熱+温熱供給設備より受給した冷熱に複数回燃料噴射燃焼して温熱を内周と外周と内周外周から複数回加熱して噴射し、空気吸引噴射する合体機関噴射部78Wにする、各種熱エネルギは空気温度として熱ポンプで圧縮高圧の冷熱+温熱に分割保存使用・500度以下液体金属使用時は保温保存使用・衝撃エネルギは樹脂被覆を設け作用保存延長にし・重力エネルギは上昇保存使用する各種エネルギ保存サイクル合体機関及び合体方法。   Specific critical substance accelerator (6F) Low melting point alloy (3E) Specific critical substance (2E) is mixed and accelerated by gravity acceleration and driven by a specific critical substance riser (2F). Large-mass gravity solar turbine (8H) 1 to multi-stage compression heat recovery unit (2C) manufactured by electricity + cold heat + cold heat received from the hot heat supply facility multiple times by fuel injection combustion to heat the inner circumference, outer circumference and inner circumference Combined engine injection unit 78W that heats and injects multiple times from the outer periphery, and inhales and injects air. Various heat energy is stored as air temperature by heat pump compressed high pressure cold heat + heat use. Use heat preservation storage, impact energy is provided with resin coating to extend the action storage, and gravity energy is stored by using various energy storage cycle coalescence engine and coalescence method.
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* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN105416583A (en) * 2015-12-15 2016-03-23 陆明友 Water and air solar powered airship

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