WO2004055364A1 - Machine motrice a propriete de flottabilite - Google Patents

Machine motrice a propriete de flottabilite Download PDF

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Publication number
WO2004055364A1
WO2004055364A1 PCT/CN2002/000888 CN0200888W WO2004055364A1 WO 2004055364 A1 WO2004055364 A1 WO 2004055364A1 CN 0200888 W CN0200888 W CN 0200888W WO 2004055364 A1 WO2004055364 A1 WO 2004055364A1
Authority
WO
WIPO (PCT)
Prior art keywords
buoy
slide
telescopic
slide rail
rail group
Prior art date
Application number
PCT/CN2002/000888
Other languages
English (en)
Chinese (zh)
Inventor
Jian-Hua Huang
Original Assignee
Lin, Ji-Ching
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Lin, Ji-Ching filed Critical Lin, Ji-Ching
Priority to PCT/CN2002/000888 priority Critical patent/WO2004055364A1/fr
Priority to AU2002354148A priority patent/AU2002354148A1/en
Publication of WO2004055364A1 publication Critical patent/WO2004055364A1/fr

Links

Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F03MACHINES OR ENGINES FOR LIQUIDS; WIND, SPRING, OR WEIGHT MOTORS; PRODUCING MECHANICAL POWER OR A REACTIVE PROPULSIVE THRUST, NOT OTHERWISE PROVIDED FOR
    • F03BMACHINES OR ENGINES FOR LIQUIDS
    • F03B17/00Other machines or engines
    • F03B17/02Other machines or engines using hydrostatic thrust
    • F03B17/04Alleged perpetua mobilia

Definitions

  • the present invention relates to a buoyant kinetic machine, in particular to a buoyant kinetic machine that, through the principle of buoyancy, enables the entire machine to run without any external force, and generates kinetic energy.
  • the object of the present invention is to provide a buoyancy kinetic machine, which utilizes the principle of buoyancy and can generate a power source without using any external force to provide a generator or a power plant to generate electricity.
  • a secondary object of the present invention is to provide a buoyant kinetic machine that can provide an inexhaustible and inexhaustible power source for industrial use through lower production costs.
  • a buoyant kinetic energy machine capable of achieving the above-mentioned object of the invention is a buoyant kinetic energy device, which is characterized in that several telescopic buoys are fixed on a transmission chain outside the slide rail group and positioned in a circular track.
  • the pipe connects the air inlets and outlets of each telescopic buoy in series to make them communicate with each other.
  • the slide rail group is composed of two annular slide rails and is narrow in width and wide in width. When the slide rail group is positioned in the water tank, the hose connected to the air inlet / outlet of the telescopic pontoon is exposed out of the water surface, so that the buoy placed on the wider part of the commerce slide can be charged when stretched.
  • the gas in turn, generates buoyancy and floats upward along the track of the slide group, and further drives the transmission chain to make the transmission chain synchronously drive the power output shaft to rotate; when the buoy gradually slides to a narrower place between the two slides, i.e., the float and gradually compressed in: gas discharge; resulting in loss of buoyancy buoy under load and movable to shift the transmission chain of the sink; is, with the telescopic pontoon are each track set will continue to Repeated detours on the track make the transmission chain continue to drive the power output shaft to rotate, so that the power output shaft will continuously output power.
  • the buoyancy kinetic machine of the present invention is characterized in that the structure includes at least several telescopic buoys, each side of which is provided with an air inlet / outlet, and each of the front and rear sides is consolidated with one A slide bar, and a left and right end portions are respectively combined with a buckle ring, an end face of the buckle ring is combined with a positioning frame, the positioning frame has two corresponding sliding arms, and each of the sliding arms is provided with a corresponding first A pulley and a second pulley, and frames are provided at both ends of the buckle ring.
  • Each periphery of the frame is provided with pulleys, and the two ends of the slide rods that are knotted on the front and rear sides of the buoy are penetrated.
  • the frame enables the pontoon body to be compressed and stretched on two slide bars, and a first combination plate is connected to both ends of one slide bar, and two slide bars are connected to both ends of the other slide bar.
  • Piece
  • a slide rail group is composed of two circular slide rails and has a narrow inner and outer shape
  • An air guide pipe body is provided with an air inlet / outlet opening at an appropriate position.
  • the air guide pipe body is penetrated and combined with the top part of the slide rail group, so that it is exposed outside the two sides of the slide rail group, and guides the wind.
  • a first gear is tightly fitted to each of the two ends of the pipe body, and the first gear is placed outside both sides of the slide rail group;
  • a power take-off shaft with a second gear tightly fitted thereon, is provided with the second gear on both sides of the bottom end of the slide rail group, and corresponds to the first gear;
  • a transmission chain is provided with a plurality of connecting plates, the first transmission chain is sleeved on the first and second gears; a circular track is fixed on both sides of the slide rail group;
  • the first joint plates on both sides of the buoy are consolidated with the connecting plates on the conveyor chain, and the sliders on both sides of the buoy are accommodated in a circular track, so that the buoy is arranged between the two slide rails, and each hose is connected by a hose.
  • the air inlets and outlets with buoys are connected in series, and then the output 3 ⁇ 4 of the hose is connected to the air inlets and outlets of the air duct body for gas inflation and discharge;
  • the tracks of the slide rail group will be positioned at The first pulley and the second pulley of the frame on both sides of the buoy can slide around the slide rail group; when the slide rail group is positioned in the water tank, the top air guide pipe body protrudes out of the water surface, so that The buoy at the wide part of the slide rail group will be stretched and filled with gas, causing its buoyancy to be greater than its own gravity, which will cause it to float upward, and drive the transmission chain to rotate, which in turn drives the first and second gears and the power output shaft to rotate.
  • the main body of the telescopic buoy is composed of a wire spring and a waterproof canvas, and the entire copper wire spring is covered by the waterproof canvas to achieve the effect of waterproofing and make the buoy body # shrinkable.
  • the main body of the telescopic pontoon is fastened with first, second and third retaining rings, which are respectively fastened to the center and left and right ends of the pontoon body to increase the telescopic buoy's telescopic strength.
  • the slide bar fixed to the front and rear sides of the telescopic pontoon is hollow, and a thread is drilled therein, so that the central part of the slide bar and the two sides of the buckle that are fastened to the center of the telescopic pontoon.
  • the side phase is consolidated, so that the slide bar is firmly coupled to the front and rear sides of the pontoon body, and the first coupling plate and the slider can be screw-locked to the two ends of the slide bar.
  • a fixed plate is extended on the slide rail group, so that it can be fixed in the water tank, and is used for welding the circular rail.
  • One of the telescopic buoys is connected with a four-pipe at the air inlet / outlet port, and the other buoys are connected with the air inlet / outlet port.
  • a tee is connected so that each buoy can be connected by a hose. They are connected in series with each other.
  • the output end of the hose is connected to the air guide pipe body through the four-way pipe.
  • the buckle has a positioning piece extending at one end, and a buckle is pivotally connected to the other end, and a buckle is pivotally connected to the buckle, and a hole is provided on the buckle to sleeve the hole of the buckle
  • the pressing piece is pressed down, so that the fastening piece and the positioning piece are firmly engaged, so that the retaining ring is stably engaged on the telescopic tube.
  • Figure 1A is an exploded schematic diagram of a telescopic buoy of a buoyant kinetic machine according to the present invention
  • the chimney 1B is a three-dimensional schematic diagram of the telescopic buoy of the buoyancy mechanism of the present invention.
  • FIG. 2 is a schematic diagram of a buoy transmission mechanism of a buoyant kinetic machine according to the present invention
  • FIG. 3 is a schematic front perspective view of a buoyant kinetic machine according to the present invention.
  • FIG. 4 is a schematic perspective view of the back of the buoyant kinetic machine according to the present invention.
  • FIG. 5 is a side view of a buoyant kinetic machine according to the present invention.
  • Figures 6A and B are schematic diagrams of implementation of the buoyant kinetic machine. detailed description.
  • FIG. 1A and FIG. 1B ′ are telescopic buoy views of the buoyant kinetic machine provided by the present invention.
  • the telescopic buoy 1 mainly includes a buoy body 11, and the buoy body 11 is Wire spring (not shown) and waterproof canvas 1 1
  • One end portion of the first, second, and third buckle 1 2, 1 3, 1 4 extends with a positioning piece 1 2 1, 1 3'1, 1 4 1, the other end is pivotally connected with a fastener 1 2 2, 1 3 2, 1 2, the fastener 1 2 2, 1 3 2, 1 42 and pivotally connected with a fastener 1 2'3, 1 3 3, 1 4 3, the fastener 1 2 3, 1 3 3, 1 43 is provided with a hole 1 24, 1 34, 1 4, is the fastener hole 1 24, 1 34 , 1 44 sets are placed on the positioning piece 1 2 1,
  • a positioning frame 15 ′ includes a base plate 1 51, and two ends of the base plate 15 are extended with corresponding sliding arms 1 5 2, 1 5 3, and the sliding arm 1 5 2
  • the first pulleys 1 5 2 1, 1 5 3 1, and the second pulleys 1 5 2 2, 1 5 3 2 are respectively extended on the inner wall surfaces of, 1 5 3 and corresponding to each other;
  • the base plate 15 of the frame 15 is consolidated with the positioning plates 1 3 5 and 1 4 of the second and third retaining rings 1 3 and 1 4, so that the positioning frame 15 is firmly combined with the second and third retaining plates. Ring 1 3, 1 4;
  • a first slide bar 16 and a second slide bar 17 are provided.
  • the first and second slide bars 16 and 17 are hollow and drilled with threads 1 6 1 and 1 7 1.
  • the central parts of the first and second slide bars 16 and 17 are consolidated with the two sides of the first retaining ring 12 respectively, so that the first and second slide bars 16 and 17 are combined with the buoy.
  • the front and back sides of the main body 1 1, and the two ends of the main body 11 will pass through the frames 1 3 6 on both sides of the second and third retaining rings 1 3, 1, 4
  • the two first coupling plates 18 are provided with two holes 1 8 1 and 1 8 2; the two first coupling plates 18 are divided into two. Do not combine the two ends of the first sliding pestle 16 to make the first A hole 1 8 1 on a coupling plate 16 corresponds to the end of the first slide bar 16 and is locked by a screw 10, so that the two food-combination plates 18 are respectively locked on the first slide bar 16 Both ends of
  • a slider 19 is provided with a hole 19 '1.
  • the slider 19 is respectively connected to the two ends of the second slider 17 to make the hole 1 on the slider 19 9 1 corresponds to the end of the second slide bar 17, and through the locking of the screw 10, the sliders 19 are respectively fixed to the two ends of the second slide bar 17.
  • FIG. 2 is a schematic diagram of a buoy transmission mechanism of a buoyant kinetic machine provided by the present invention, which mainly includes-a slide rail group 2, which is composed of two annular slide rails 2 1 ′, 2 2 Composed of the two slide rails. 2 1, 2
  • an air guide pipe body 3 has an air inlet / outlet opening 3 extending at an appropriate position thereof 1;
  • the air guide pipe body 3 penetrates the top part of the slide rail group 2 so that both ends of the air guide pipe body 3 protrude from the outer part of the slide rail group 2 and first gears are respectively sleeved on the two ends of the air guide pipe body 3 41.
  • the first gear 41 is tightly fitted to both ends of the air duct body 3, so that the first gear 41 is disposed outside both sides of the slide rail group 2;
  • Two power output shafts 5 1 and 5 2 are tightly fitted with a second gear 4 2 on each of the two power output shafts 5 1 and 5 2.
  • the two power output shafts 5 1 and 5 2 respectively penetrate the two slide rails 2 1.
  • the bottom end of 2 2 makes the first gear 4 1 correspond to the second gear 4 2 and causes a gap 5 3 between the two power output shafts 5 1 and 5 2;
  • a transmission chain 6 1 the transmission chain 6 1 is provided with at least one or more connecting plates 6 1 1, the connecting plate 6 1 1 is provided with a screw hole 6 1 1 1;
  • the transmission chain 6 1 is set on the first gear 4 1 and the second gear 4 2 so that a transmission chain 61 is provided on both sides of the slide rail group 2;
  • An endless track 6 2 is welded to the fixed plates 2 3 on both sides of the slide rail group 2, so that the endless rail 6 2 is fixed between the slide rail group 2 and the transmission chain 61.
  • the first coupling plates 18 at both ends of the buoy body ⁇ 1 are respectively combined with the connecting plates 6 1 1 on the transmission chain 6 1 outside the two sides of the slide rail group 2,
  • the other hole 1 8 2 of the first coupling plate 1.8 is corresponding to the connecting plate 6 1 1 screw hole 6 1 1 1 of the conveying chain 6 1 so that it can be screwed through or locked by welding or the welding body is used to connect the buoy body 1 1 1
  • the first joint plates 18 at both ends are stable and convey the chain 6 1, and the sliders 19 at both ends of the pontoon body 1 1 are respectively accommodated in the ring rails 6 2 on both sides of the slide rail group 2,
  • the buoy body 11 is caused to be positioned between the two slide rails 2 1, 2 ′ 2 of the slide rail group 2, and the tracks of the two slide rails 2 1, 2 2 are placed in the first slide of the positioning frame 15 1 5 2 1, 1 5 3 1 and second pulley 1 '5 2 2, 1 5 3 2 rooms, so that the buoy body 11 can
  • FIG. 5 in which a plurality of telescopic floats 1 can be fixed on a transmission chain 61 on both sides of the slide rail group 2.
  • the telescopic floats 1 can be connected therein.
  • a four-way pipe body 8 1 is installed on the air inlet 1 1 2 of the telescopic buoy 1 ′, and a three-way pipe body 8 2 is installed on the air inlet I of the other telescopic buoy 1.
  • 9 Connect the inlet / outlet openings 1 12 of each telescopic buoy 1 in series so that each buoy is connected to each other.
  • the output end of the hose 9 is connected to the inlet / outlet 3 of the air guide pipe 3.
  • FIG. 6 is a schematic diagram of the implementation of the present invention.
  • the fixing plate 23 of the slide rail group 2 is fixed in the water tank 6 so that the slide rail group 2 is positioned and the air duct at the top of the slide rail group 2 is positioned.
  • the body 3 protrudes out of the water surface 7 to facilitate the entry and discharge of air.
  • the telescopic pontoon 1 sinks under the water surface 7, as shown in FIG. 6A, the telescopic pontoon placed in the wider part of the slide group 2 1 will be stretched, and air is input into the buoy 1 by the air guide pipe body 3, so that the buoyancy of the telescopic buoy 1 is greater than its own gravity and floats upward.
  • the transmission chain 6 1 will be subject to the buoy 1 Driven by the movement, it starts to rotate, and then drives other buoys 1, the first gear 41, together with the air duct body 3, and the second gear 4 2 together with the power output shaft; because of the two slide rails 1, 2 2
  • the track is located between the first pulleys 1 5 2 1, 1 5 3 1 and the second pulleys 1 5 2 '2, 1 5 3 2 located at the positioning frames 1 5 2 at both ends of the telescopic buoy 1, so that the telescopic buoy 1 will Slide around the two circular slides 1 2 1, 2 2 and cause the simplification of the '1 quotient block 1 9 to follow the circular orbit 6 2 slides, and the hose 4 connected to the air inlet 1 1 2 on the side of the telescopic buoy 1 is wound on the air guide pipe 3 due to the rotation of the air guide pipe 3 (as shown in FIG.
  • each telescopic buoy 1 Will continue to loop around the slide rail group 2 so that the transmission chain 6'1 on both sides of the slide rail group 2 continuously drives the power output shaft '5 1, 5 2 turns, resulting in the power output shaft 5 1, 5 2 can output endless power.
  • the buoyant kinetic machine Compared with other existing technologies, the buoyant kinetic machine provided by the present invention has the following advantages: 1.
  • the present invention utilizes the principle of buoyancy in water in nature, and can generate a power source without any external force, To provide a generator or power plant to generate electricity. 2.
  • the present invention can provide an inexhaustible and inexhaustible power source for industrial use through lower production costs.

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  • Engineering & Computer Science (AREA)
  • Chemical & Material Sciences (AREA)
  • Combustion & Propulsion (AREA)
  • Mechanical Engineering (AREA)
  • General Engineering & Computer Science (AREA)
  • Other Liquid Machine Or Engine Such As Wave Power Use (AREA)

Abstract

L'invention concerne une machine motrice à propriété de flottabilité, possédant plusieurs chambres de flotteur à parois souples, fixées sur deux bandes souples à traction par chaînes de transporteur qui sont fixées respectivement à l'extérieur de deux rails de coulissement circulaires. Les deux rails de coulissement circulaires présentent une forme conçue pour que l'extérieur soit large et l'intérieur étroit. Lorsque les rails de coulissement sont placés dans un réservoir d'eau, les chambres de flotteur situées entre les deux rails sont étirées et remplies d'air. La flottabilité générée dans les chambres de flotteur augmente et dépasse leur poids, si bien que lesdites chambres montent le long des deux rails de coulissement et induisent la rotation de deux bandes souples à traction par chaînes. Lorsqu'une des chambres de flotteur monte jusqu'au sommet des deux rails de coulissement et se rapproche de l'intérieur plus étroit de ces derniers, ladite chambre est comprimée graduellement et de l'air est déchargé de celle-ci. La chambre de flotteur perd ensuite sa flottabilité et descend sous le poids des bandes souples, de sorte que ces dernières continuent à tourner et à générer de l'énergie. Ainsi, la machine peut servir de source d'énergie à un générateur ou à une installation d'énergie.
PCT/CN2002/000888 2002-12-13 2002-12-13 Machine motrice a propriete de flottabilite WO2004055364A1 (fr)

Priority Applications (2)

Application Number Priority Date Filing Date Title
PCT/CN2002/000888 WO2004055364A1 (fr) 2002-12-13 2002-12-13 Machine motrice a propriete de flottabilite
AU2002354148A AU2002354148A1 (en) 2002-12-13 2002-12-13 A buoyancy power machine

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
PCT/CN2002/000888 WO2004055364A1 (fr) 2002-12-13 2002-12-13 Machine motrice a propriete de flottabilite

Publications (1)

Publication Number Publication Date
WO2004055364A1 true WO2004055364A1 (fr) 2004-07-01

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ID=32514436

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/CN2002/000888 WO2004055364A1 (fr) 2002-12-13 2002-12-13 Machine motrice a propriete de flottabilite

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AU (1) AU2002354148A1 (fr)
WO (1) WO2004055364A1 (fr)

Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3857242A (en) * 1974-03-25 1974-12-31 R Gilmore Gravity-buoyancy motor
EP0006653A2 (fr) * 1978-06-23 1980-01-09 Alfred Blain Procédé de production d'énergie sans consommation de matière dans un champ de gravité et dispositif de mise en oeuvre
FR2502254A1 (fr) * 1980-12-09 1982-09-24 Philadelphe Gerard Hydraulienne
CN1063146A (zh) * 1991-01-07 1992-07-29 马忠义 浮力发电机
GB2326916A (en) * 1997-07-01 1999-01-06 Ghem Sheng Whan Buoyancy motor
EP0930433A1 (fr) * 1998-01-20 1999-07-21 Gerhard Thien Moteur à poussée d'Archimède

Patent Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3857242A (en) * 1974-03-25 1974-12-31 R Gilmore Gravity-buoyancy motor
EP0006653A2 (fr) * 1978-06-23 1980-01-09 Alfred Blain Procédé de production d'énergie sans consommation de matière dans un champ de gravité et dispositif de mise en oeuvre
FR2502254A1 (fr) * 1980-12-09 1982-09-24 Philadelphe Gerard Hydraulienne
CN1063146A (zh) * 1991-01-07 1992-07-29 马忠义 浮力发电机
GB2326916A (en) * 1997-07-01 1999-01-06 Ghem Sheng Whan Buoyancy motor
EP0930433A1 (fr) * 1998-01-20 1999-07-21 Gerhard Thien Moteur à poussée d'Archimède

Also Published As

Publication number Publication date
AU2002354148A1 (en) 2004-07-09

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