TWI817882B - Magnetic energy power generation system - Google Patents

Magnetic energy power generation system Download PDF

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TWI817882B
TWI817882B TW111150902A TW111150902A TWI817882B TW I817882 B TWI817882 B TW I817882B TW 111150902 A TW111150902 A TW 111150902A TW 111150902 A TW111150902 A TW 111150902A TW I817882 B TWI817882 B TW I817882B
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coil
power generation
phase
generation system
stator
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TW111150902A
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TW202427927A (en
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陳豐田
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陳鵬任
林彥辰
陳順寶
林玄振
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Priority to TW111150902A priority Critical patent/TWI817882B/en
Priority to US18/097,733 priority patent/US20230268784A1/en
Priority to JP2023023191A priority patent/JP2023123386A/en
Priority to CA3190647A priority patent/CA3190647A1/en
Priority to KR1020230023571A priority patent/KR20230127162A/en
Priority to EP23157890.7A priority patent/EP4236039A1/en
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Publication of TW202427927A publication Critical patent/TW202427927A/en

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Abstract

一種磁能發電系統,包含有一電機單元以及一飛輪單元。該電機單元包含至少一第一電機裝置,第一電機裝置包含有一第一及第二運轉模式,該第一運轉模式係該第一電機裝置完全以馬達模式運轉,該第二運轉模式係該第一電機裝置同時以馬達模式及發電機模式運轉。該飛輪單元包含有一該第一電機裝置耦接的第一飛輪本體,該第一飛輪本體可先藉由該第一電機裝置之第一運轉模式來驅動,當該該第一飛輪本體達到一預定轉速時,該第一電機裝置則改以該第二運轉模式操作,用以維持該第一飛輪本體之運轉,並同時輸出外界電能。A magnetic energy power generation system includes a motor unit and a flywheel unit. The motor unit includes at least a first electric machine device. The first electric machine device includes a first and a second operating mode. The first operating mode is that the first electric machine device operates entirely in a motor mode. The second operating mode is that the third operating mode is operated entirely in a motor mode. A motor device operates in both motor mode and generator mode. The flywheel unit includes a first flywheel body coupled to the first motor device. The first flywheel body can be driven by the first operating mode of the first motor device. When the first flywheel body reaches a predetermined When the rotation speed is high, the first motor device changes to the second operation mode to maintain the operation of the first flywheel body and output external electric energy at the same time.

Description

磁能發電系統Magnetic energy power generation system

本發明係與發電設備有關,特別是關於一種磁能發電系統。The present invention relates to power generation equipment, and in particular to a magnetic energy power generation system.

按,美國第10,122,240發明專利案揭露了一種低耗能發電裝置。該裝置包含了一操作模組、一第一馬達以及一第二馬達。在操作時,係在短時間內輸入電流驅動該第一馬達,使該第一馬達帶動該操作模組的一傳動組轉動,並使該傳動組帶動該操作模組的一飛輪轉動。該飛輪的外環周面設有一發電轉子,該操作模組的一本體內周面設有一與該發電轉子相對應的發電定子。另外,則使該操作模組的傳動組帶動該第二馬達轉動,待該飛輪達到一定轉速後,該第二馬達僅需輸入低電流,即能使該第二馬達持續運轉,並且讓該飛輪上的發電轉子產生電能,進而達到低耗能發電的效果。此種裝置有如下之缺失:1.須備具二個馬達;2.須配合一組傳動機構才能運作;3.該發電轉子係佈設在該飛輪上,會增加該第二馬達所耗用的電能;4. 該發電定子或該發電轉子之一需使用永久磁鐵,其磁力會隨時間而降低;5. 該發電裝置並無倍乘之發電效果。Press, the US invention patent case No. 10,122,240 discloses a low energy consumption power generation device. The device includes an operating module, a first motor and a second motor. During operation, current is input to drive the first motor in a short period of time, so that the first motor drives a transmission group of the operation module to rotate, and the transmission group drives a flywheel of the operation module to rotate. A power generation rotor is disposed on the outer circumference of the flywheel, and a power generation stator corresponding to the power generation rotor is disposed on the inner circumference of the operation module. In addition, the transmission group of the operation module drives the second motor to rotate. After the flywheel reaches a certain rotation speed, the second motor only needs to input a low current to make the second motor continue to run and allow the flywheel to rotate. The power generation rotor on the machine generates electric energy, thereby achieving the effect of low energy consumption power generation. This kind of device has the following shortcomings: 1. It must be equipped with two motors; 2. It must cooperate with a set of transmission mechanisms to operate; 3. The power generation rotor is arranged on the flywheel, which will increase the power consumption of the second motor. Electric energy; 4. One of the power generation stator or the power generation rotor needs to use a permanent magnet, and its magnetic force will decrease over time; 5. The power generation device does not have a multiplied power generation effect.

本發明係在揭露一種可節省能源之磁能發電系統,其在技術思想上與該美國專利案完全不同,而且並無該美國專利案之前述各項缺失。The present invention discloses an energy-saving magnetic energy power generation system, which is completely different from the US patent in terms of technical ideas, and does not have the above-mentioned deficiencies of the US patent.

本發明磁能發電系統最主要的概念是該系統包含有一電機單元,該電機單元包含有至少一第一電機裝置,該第一電機裝置包含有一第一及第二運轉模式,該第一運轉模式係該第一電機裝置完全以馬達模式運轉,該第二運轉模式係該第一電機裝置同時以馬達模式及發電機模式運轉。本發明之磁能發電系統亦包含一飛輪單元,該飛輪單元包含有至少一與該第一電機裝置耦接的第一飛輪本體,該第一飛輪本體可先藉由該第一電機裝置之第一運轉模式來驅動,當該第一飛輪本體達到一預定轉速時,該第一電機裝置係改以該第二運轉模式操作,用以維持該第一飛輪本體之運轉,並同時輸出外界電能。The main concept of the magnetic energy power generation system of the present invention is that the system includes a motor unit. The motor unit includes at least a first motor device. The first motor device includes a first and a second operating mode. The first operating mode is The first electric machine device operates entirely in motor mode, and the second operating mode is that the first electric machine device operates in motor mode and generator mode simultaneously. The magnetic energy power generation system of the present invention also includes a flywheel unit. The flywheel unit includes at least one first flywheel body coupled with the first motor device. The first flywheel body can first be passed through the first motor device. When the first flywheel body reaches a predetermined rotation speed, the first motor device changes to the second operating mode to maintain the operation of the first flywheel body and output external electric energy at the same time.

本發明磁能發電系統之又一概念是該電機單元更包含有一第二電機裝置,該第二電機裝置同樣包含有該第一運轉模式以及該第二運轉模式;該第一飛輪本體係同時與該第一及第二電機裝置耦接。Another concept of the magnetic energy power generation system of the present invention is that the motor unit further includes a second motor device, and the second motor device also includes the first operation mode and the second operation mode; the first flywheel system simultaneously operates with the The first and second motor devices are coupled.

本發明磁能發電系統之再一概念是該飛輪單元更包含有一第二飛輪本體,該第一電機裝置係同時與該第一及第二飛輪本體耦接。Another concept of the magnetic energy power generation system of the present invention is that the flywheel unit further includes a second flywheel body, and the first motor device is coupled to the first and second flywheel bodies at the same time.

本發明磁能發電系統之另一概念是該第一電機裝置包含有一定子,一容置於該定子內之轉子。該定子包含有一三相定子繞組,該各相定子繞組包含有一第一線圈及一第二線圈。該第一線圈與該第二線圈具有相同的磁極數,該第一線圈具有一第一額定輸出功率,該第二線圈具有一第二額定輸出功率,該第一額定輸出功率大於或等於該第二額定輸出功率。該第一飛輪本體係與該轉子耦接。當該第一線圈與該第二線圈同時與外部電源連通時,該第一電機裝置係以該第一運轉模式運轉,用以驅動該第一飛輪本體;當該第一飛輪本體轉動至預定轉速後,係僅使該第二線圈與外部電源連通,一方面用以維持該第一飛輪本體之運轉,另一方面則藉該第一線圈以及該第一飛輪本體得飛輪效應輸出外界電能,即,使,該第一電機裝置以該第二運轉模式運轉。Another concept of the magnetic power generation system of the present invention is that the first motor device includes a stator and a rotor accommodated in the stator. The stator includes a three-phase stator winding, and each phase stator winding includes a first coil and a second coil. The first coil and the second coil have the same number of magnetic poles, the first coil has a first rated output power, the second coil has a second rated output power, and the first rated output power is greater than or equal to the third 2. Rated output power. The first flywheel system is coupled with the rotor. When the first coil and the second coil are connected to the external power supply at the same time, the first motor device operates in the first operating mode to drive the first flywheel body; when the first flywheel body rotates to a predetermined speed Finally, only the second coil is connected to the external power supply, which is used to maintain the operation of the first flywheel body on the one hand, and on the other hand to output external electric energy through the flywheel effect of the first coil and the first flywheel body, that is, , causing the first motor device to operate in the second operating mode.

本發明磁能發電系統之更一概念是該第一電機裝置更包含一機體。該定子係佈置於該機體內,包含有一定子本體以及一定子繞組,該定子本體包含有一外周面,一通孔,一由該通孔所界定的內周面,多數沿著該內周面往該外周面延伸並且間隔分佈的第一定子槽,該第一線圈與該第二線圈係分別容置於各該第一定子槽內。該轉子包含有一具有預定磁極數之轉子本體,以及一沿該轉子本體軸心延伸之轉軸,該轉子本體係容置於該定子本體內,相對於該定子旋轉,該第一飛輪本體係與該轉軸耦接,用以隨該轉子旋轉。A further concept of the magnetic energy power generation system of the present invention is that the first motor device further includes a body. The stator is arranged in the body and includes a stator body and a stator winding. The stator body includes an outer peripheral surface, a through hole, and an inner peripheral surface defined by the through hole. Most of the stator body is along the inner peripheral surface. The outer peripheral surface extends and is spaced apart from the first stator slots, and the first coil and the second coil are respectively accommodated in each of the first stator slots. The rotor includes a rotor body with a predetermined number of magnetic poles and a rotating shaft extending along the axis of the rotor body. The rotor body system is accommodated in the stator body and rotates relative to the stator. The first flywheel body system is connected to the stator body. The rotating shaft is coupled to rotate with the rotor.

本發明磁能發電系統之又再一概念其中該定子本體更包含有多數間隔分佈之第二定子槽,各該第一定子槽之深度大於各該第二定子槽,各該第一線圈係分別佈設於各該第一定子槽內,各該第二線圈係分別佈設於各該第二定子槽內。In yet another concept of the magnetic power generation system of the present invention, the stator body further includes a plurality of second stator slots distributed at intervals, the depth of each first stator slot is greater than that of each second stator slot, and each first coil is separately They are arranged in each of the first stator slots, and each of the second coils are arranged in each of the second stator slots.

本發明磁能發電系統之又另一概念是更包含有一控制單元,該控制單元用來控制該第一線圈與該第二線圈同時與外部電源連通,或者僅使該第二線圈與外部電源連通。該控制單元用來與外部電源連通或斷開之功能可藉由多種技術或設備來達成,例如伺服驅動器以及分配器,但不以此為限。Another concept of the magnetic power generation system of the present invention is to further include a control unit, which is used to control the first coil and the second coil to be connected to an external power source at the same time, or to only connect the second coil to an external power source. The function of the control unit to connect or disconnect from the external power supply can be achieved by a variety of technologies or equipment, such as servo drives and distributors, but is not limited thereto.

本發明磁能發電系統之另再一概念是該第一線圈具有一第一輸入端以及一第一輸出端,該第二線圈具有一第二輸入端以及一第二輸出端;該控制單元包含有一電路控制裝置以及一三相第一切換開關;該各相第一切換開關包含有一第一接點,一第二接點以及一第三接點;該第一線圈之該第一輸入端係與該第一切換開關之該第一接點電性連接,該第二輸出端係連接至一中性點;該第二線圈之該第二輸入端係藉由該電路控制裝置電性連接至該外部電源,該第二輸出端係連接至該中性點;該各相第一切換開關之該第二接點係藉由該電路控制裝置連接至外部電源,該各相第一切換開關之該第三接點與係與一外部設備電性連接;藉此,當該第一電機裝置於開始運轉時,該各相第一切換開關之第一接點與第二接點連通,使外部電源同時對該第一線圈與該第二線圈供電,令該第一電機裝置處於該第一運轉模式驅動該第一飛輪本體;當該第一飛輪本體到達產生飛輪效應之轉速後,係使該各相第一切換開關之第一接點離開該第二接點,用以切斷各該第一線圈之供電,並使該第一電機裝置以該第二運轉模式運轉。Another concept of the magnetic energy power generation system of the present invention is that the first coil has a first input terminal and a first output terminal, the second coil has a second input terminal and a second output terminal; the control unit includes a A circuit control device and a three-phase first switch; each phase first switch includes a first contact, a second contact and a third contact; the first input end of the first coil is connected to The first contact point of the first switch is electrically connected, the second output end is connected to a neutral point; the second input end of the second coil is electrically connected to the circuit control device External power supply, the second output terminal is connected to the neutral point; the second contact point of the first switch of each phase is connected to the external power supply through the circuit control device, and the first switch of each phase The third contact point is electrically connected to an external device; thereby, when the first motor device starts to operate, the first contact point and the second contact point of the first switching switch of each phase are connected, so that the external power supply Power is supplied to the first coil and the second coil at the same time, so that the first motor device is in the first operating mode to drive the first flywheel body; when the first flywheel body reaches the rotation speed that produces the flywheel effect, each of the first flywheel body is driven The first contact point of the first switching switch is separated from the second contact point to cut off the power supply to each first coil and make the first motor device operate in the second operation mode.

本發明磁能發電系統之更再一概念是該第一線圈具有一第一輸入端以及一第一輸出端,該第二線圈具有一第二輸入端以及一第二輸出端;該第一線圈與該第二線圈係分別以三角形連接;該控制單元包含有一電路控制裝置以及一三相第一切換開關;該各相第一切換開關包含有一第一接點,一第二接點以及一第三接點,該第一接點係與該第一線圈之第一輸入端電性連接,該第二接點係藉由該電路控制裝置連接至外部電源,該第三接點與係與外界設備連接;該第二線圈之該第二輸入端係藉由該電路控制裝置連接至該外部電源;藉此,當該第一電機裝置開始運轉時,係使該各相第一切換開關之第一接點與第二接點連通,外部電源將同時對該第一線圈與該第二線圈供電,使該第一電機裝置處於該第一運轉模式驅動該第一飛輪本體;當該第一飛輪本體到達產生飛輪效應之轉速後,係使該各相第一切換開關之第一接點離開該第二接點,用以切斷各該第一線圈之供電,並使該第一電機裝置以該第二運轉模式運轉。A further concept of the magnetic energy power generation system of the present invention is that the first coil has a first input terminal and a first output terminal, the second coil has a second input terminal and a second output terminal; the first coil and The second coils are respectively connected in triangles; the control unit includes a circuit control device and a three-phase first switch; each phase first switch includes a first contact, a second contact and a third Contact, the first contact is electrically connected to the first input end of the first coil, the second contact is connected to an external power supply through the circuit control device, and the third contact is connected to an external device connection; the second input end of the second coil is connected to the external power supply through the circuit control device; thereby, when the first motor device starts to operate, the first switch of each phase of the first switch is The contact is connected to the second contact, and the external power supply will supply power to the first coil and the second coil at the same time, so that the first motor device is in the first operating mode to drive the first flywheel body; when the first flywheel body After reaching the rotational speed that produces the flywheel effect, the first contact point of the first switch of each phase is separated from the second contact point to cut off the power supply of each first coil and make the first motor device operate with the The second operation mode operates.

本發明磁能發電系統之更另一概念係可將多組的磁能發電系統串接使用,其中後一組之磁能發電系統之輸入電源係使用前一組磁能發電系統之輸出電源,用以達到倍乘之發電效果。更詳細的說,假設一第一磁能發電系統A維持在飛輪效應狀態所耗用的電能為X,其所輸出的電能為1.2X。當有一第二磁能發電系統B與該第一磁能發電系統A之結構相同,並且與該第一磁能發電系統A串接,即,以該第一磁能發電系統A所輸出的電能1.2X為維持在飛輪效應狀態所耗用的電能,此時,該第二磁能發電系統B所輸出的電能約為1.44X。當有一第三磁能發電系統C與該第一磁能發電系統A之結構相同,並且與該第二磁能發電系統B串接,即,以該第二磁能發電系統B所輸出的電能1.44X為維持在飛輪效應狀態所耗用的電能,此時,該第三磁能發電系統C所輸出的電能可達1.73X。當有一第四磁能發電系統D與該第一磁能發電系統A之結構相同,並且與該第三磁能發電系統C串接,即,以該第三磁能發電系統C所輸出的電能1.73X為維持在飛輪效應狀態所耗用的電能,此時,該第四磁能發電系統D所輸出的電能將達2.08X。當有一第五磁能發電系統E與該第一磁能發電系統A之結構相同,並且與該第四磁能發電系統D串接,即,以該第四磁能發電系統D所輸出的電能2.08X為維持在飛輪效應狀態所耗用的電能,此時,該第五磁能發電系統E所輸出的電能則可達2.5X。換言之,如有五組本發明之磁能發電系統串接,其所輸出的電能可為原始耗用電能的2.5倍。Another concept of the magnetic energy power generation system of the present invention is that multiple sets of magnetic energy power generation systems can be connected in series, in which the input power supply of the latter group of magnetic energy power generation systems uses the output power supply of the previous group of magnetic energy power generation systems to achieve doubled power generation. Take advantage of the power generation effect. In more detail, assume that the power consumed by the first magnetic energy power generation system A to maintain the flywheel effect state is X, and the power it outputs is 1.2X. When there is a second magnetic energy power generation system B that has the same structure as the first magnetic energy power generation system A and is connected in series with the first magnetic energy power generation system A, that is, the electric energy output by the first magnetic energy power generation system A is 1.2X as the maintenance The electrical energy consumed in the flywheel effect state, at this time, the electrical energy output by the second magnetic energy power generation system B is approximately 1.44X. When a third magnetic energy power generation system C has the same structure as the first magnetic energy power generation system A and is connected in series with the second magnetic energy power generation system B, that is, the electric energy output by the second magnetic energy power generation system B is 1.44X as the maintenance The electric energy consumed in the flywheel effect state. At this time, the electric energy output by the third magnetic energy power generation system C can reach 1.73X. When a fourth magnetic power generation system D has the same structure as the first magnetic power generation system A and is connected in series with the third magnetic power generation system C, that is, the electric energy output by the third magnetic power generation system C is 1.73X as the maintenance The electric energy consumed in the flywheel effect state, at this time, the electric energy output by the fourth magnetic energy power generation system D will reach 2.08X. When there is a fifth magnetic energy power generation system E that has the same structure as the first magnetic energy power generation system A and is connected in series with the fourth magnetic energy power generation system D, that is, the electric energy output by the fourth magnetic energy power generation system D is 2.08X as the maintenance The electric energy consumed in the flywheel effect state, at this time, the electric energy output by the fifth magnetic energy power generation system E can reach 2.5X. In other words, if there are five sets of magnetic energy power generation systems of the present invention connected in series, the electric energy output can be 2.5 times the original consumed electric energy.

首先,請參閱圖1至圖8,本發明磁能發電系統之第一實施例,如指示號碼10所示,該磁能發電系統10包含有一第一電機裝置20,一分別與該第一電機裝置20以及一三相外部電源12電性連接之控制單元40,以及一與該第一電機裝置20耦接之第一飛輪本體60。First, please refer to FIGS. 1 to 8 , a first embodiment of the magnetic energy power generation system of the present invention. As shown in the instruction number 10, the magnetic energy power generation system 10 includes a first motor device 20, and a first motor device 20 and a first motor device 20 respectively. and a control unit 40 electrically connected to the three-phase external power supply 12, and a first flywheel body 60 coupled to the first motor device 20.

該第一電機裝置20,如圖2所示,包含有一機體22,一定子24,一轉子26以及一冷卻機構30。該機體22具有一殼體220,一端蓋222固接在該殼體220之一側。該定子24係佈置於該殼體220內,該轉子26係容置於該定子24內,並且相對於該定子24轉動。The first motor device 20 , as shown in FIG. 2 , includes a body 22 , a stator 24 , a rotor 26 and a cooling mechanism 30 . The body 22 has a shell 220, and an end cover 222 is fixed on one side of the shell 220. The stator 24 is arranged in the housing 220 , and the rotor 26 is accommodated in the stator 24 and rotates relative to the stator 24 .

於本實施例,如圖4所示,該定子24包含有一定子本體240以及一定子繞組242。該定子本體240係由多數環形矽鋼片疊置而成,包含有一外周面2400,一通孔2402,一由該通孔2402所界定的內周面2404,多數沿著該內周面2404往該外周面2400延伸並且間隔分佈的第一定子槽2406。各該第一定子槽2406分別具有一面向通孔2402之開口端2408,一靠近該外周面220之底部2410,該開口端2408與該底部2410界定出該定子槽2406之深度 d 0。另外,各該第一定子槽2406分別具有一與該開口端2408相鄰之第一部分2412以及一與該底部2410相鄰之第二部分2414。該第一部分2412之深度為d 1,該第二部分2414之深度為d 2,其中d 1+d 2=d 0In this embodiment, as shown in FIG. 4 , the stator 24 includes a stator body 240 and a stator winding 242 . The stator body 240 is made of a plurality of stacked annular silicon steel sheets, including an outer peripheral surface 2400, a through hole 2402, and an inner peripheral surface 2404 defined by the through hole 2402. Face 2400 extends and is spaced apart from first stator slots 2406 . Each first stator slot 2406 has an open end 2408 facing the through hole 2402 and a bottom 2410 close to the outer peripheral surface 220. The open end 2408 and the bottom 2410 define the depth d0 of the stator slot 2406. In addition, each first stator slot 2406 has a first portion 2412 adjacent to the open end 2408 and a second portion 2414 adjacent to the bottom 2410. The depth of the first part 2412 is d 1 and the depth of the second part 2414 is d 2 , where d 1 +d 2 =d 0 .

該定子繞組242為一三相繞組,如圖7所示,包含有一R相線圈244,一S相線圈246以及一T相線圈248。該各相線圈係可以Y形連接。該R相線圈244包含有一R相第一線圈2440以及一R相第二線圈2442,該S相線圈246包含有一S相第一線圈2460以及一S相第二線圈2462,該T相線圈248包含有一T相第一線圈2480以及一T相第二線圈2482。由於各該相線圈在結構上均相同,因此,以下茲僅以R相線圈244做更詳細的說明。於本實施例,該R相第一線圈2440之匝數為48,線徑為1.0mm,額定輸出功率為75HP。該R相第二線圈2442之匝數為28,線徑為0.8mm,額定輸出功率為25HP。該R相第一線圈2440及該R相第二線圈2442具有相同的磁極數,例如四個磁極。該R相第一線圈2440係佈設於各該第一定子槽2406之第一部分2412內,該R相第二線圈2442係佈設於各該第一定子槽2406之第二部分2414,藉此,將可有效地減少該R相第一線圈2440所磁路的磁阻。The stator winding 242 is a three-phase winding, as shown in FIG. 7 , including an R-phase coil 244 , an S-phase coil 246 and a T-phase coil 248 . The coil systems of each phase can be connected in a Y shape. The R-phase coil 244 includes an R-phase first coil 2440 and an R-phase second coil 2442. The S-phase coil 246 includes an S-phase first coil 2460 and an S-phase second coil 2462. The T-phase coil 248 includes There is a T-phase first coil 2480 and a T-phase second coil 2482. Since each phase coil has the same structure, only the R-phase coil 244 will be described in more detail below. In this embodiment, the number of turns of the R-phase first coil 2440 is 48, the wire diameter is 1.0mm, and the rated output power is 75 HP. The number of turns of the R-phase second coil 2442 is 28, the wire diameter is 0.8mm, and the rated output power is 25HP. The R-phase first coil 2440 and the R-phase second coil 2442 have the same number of magnetic poles, such as four magnetic poles. The R-phase first coil 2440 is arranged in the first part 2412 of each first stator slot 2406, and the R-phase second coil 2442 is arranged in the second part 2414 of each first stator slot 2406, whereby , will effectively reduce the magnetic resistance of the magnetic circuit of the R-phase first coil 2440.

該控制單元40,如圖5,圖6及圖7所示,包含有一電路控制裝置42,一三相第一切換開關44,一三相第二切換開關46以及一感測器48。該控制單元40當然亦可由採用其他技術手段,例如伺服驅動器以及分配器。該三相第一切換開關44包含有一R相第一切換開關440,一S相第一切換開關442,以及一T相第一切換開關444。該R相第一切換開關440包含有一R相第一接點4400,一R相第二接點4402以及一R相第三接點4404。該S相第一切換開關442包含有一S相第一接點4420,一S相第二接點4422以及一S相第三接點4424。該T相第一切換開關444包含有一T相第一接點4440,一T相第二接點4442以及一T相第三接點4444。The control unit 40 , as shown in FIG. 5 , FIG. 6 and FIG. 7 , includes a circuit control device 42 , a three-phase first switch 44 , a three-phase second switch 46 and a sensor 48 . Of course, the control unit 40 can also use other technical means, such as servo drives and distributors. The three-phase first switch 44 includes an R-phase first switch 440 , an S-phase first switch 442 , and a T-phase first switch 444 . The R-phase first switch 440 includes an R-phase first contact 4400, an R-phase second contact 4402, and an R-phase third contact 4404. The S-phase first switch 442 includes an S-phase first contact 4420, an S-phase second contact 4422, and an S-phase third contact 4424. The T-phase first switch 444 includes a T-phase first contact 4440, a T-phase second contact 4442 and a T-phase third contact 4444.

在電氣連接上,該R相第一線圈2440,該S相第一線圈2460以及該T相第一線圈2480之各第一輸入端 2443,2463,2483係分別與該R相第一切換開關440之R相第一接點4400,該S相第一切換開關442之 S相第一接點4420,以及該T相第一切換開關444之 T相第一接點4440連接。該R相第一切換開關440之R相第二接點4402,該S相第一切換開關442 之S相第二接點4422,該T相第一切換開關444 之T相第二接點4442係分別藉由A、B、C線路與該電路控制裝置42連接。該R相第一線圈2440,該S相第一線圈2460以及該T相第一線圈2480之各該第一輸出端2444,2464,2484至一中性點(接地)。該R相第二線圈2442,該S相第二線圈2462以及該T相第二線圈2482之各第二輸入端2445,2465,2485係分別藉由D、E、F線路與該電路控制裝置42連接。該R相第二線圈2442,該S相第二線圈2462以及該T相第二線圈2482之各該第二輸出端2446,2466,2486至另一中性點(接地)。該電路控制裝置42則電性連接至該三相外部電源12之R相輸出端,S相輸出端以及T相輸出端。於本實施例,如圖5所示,該三相第二切換開關46包含有一R相第二切換開關460,一S相第二切換開關462,以及一T相第二切換開關464。該R相第二切換開關460包含有一R相第四接點4600,一R相第五接點4602以及一R相第六接點4604。該S相第二切換開關462包含有一S相第四接點4620,一S相第五接點4622以及一S相第六接點4624。該T相第二切換開關464包含有一T相第四接點4640,一T相第五接點4642以及一T相第六接點4644。該R相第二切換開關460 之R相第四接點4600,該S相第二切換開關462之 S相第四接點4620,以及一T相第二切換開關464 之T相第四接點4640係分別與該R相第一切換開關440之R相第三接點4404,該S相第一切換開關442 之S相第三接點4424,以及該T相第一切換開關444 之T相第三接點4444連接。該R相第二切換開關460 之R相第五接點4602,該S相第二切換開關462之 S相第五接點4622,以及一T相第二切換開關464 之T相第五接點4642係分別與一外部馬達70之電源輸入端連接。該R相第二切換開關460 之R相第六接點4604,該S相第二切換開關462之 S相第六接點4624,以及該T相第二切換開關464 之T相第六接點4644係分別與一外部儲能單元80之輸入端連接。In terms of electrical connection, the first input terminals 2443, 2463, and 2483 of the R-phase first coil 2440, the S-phase first coil 2460, and the T-phase first coil 2480 are respectively connected to the R-phase first switch 440. The R-phase first contact 4400, the S-phase first contact 4420 of the S-phase first switch 442, and the T-phase first contact 4440 of the T-phase first switch 444 are connected. The R-phase second contact 4402 of the R-phase first switch 440, the S-phase second contact 4422 of the S-phase first switch 442, and the T-phase second contact 4442 of the T-phase first switch 444. They are connected to the circuit control device 42 through lines A, B, and C respectively. The first output terminals 2444, 2464, and 2484 of the R-phase first coil 2440, the S-phase first coil 2460, and the T-phase first coil 2480 are connected to a neutral point (ground). The second input terminals 2445, 2465, and 2485 of the R-phase second coil 2442, the S-phase second coil 2462, and the T-phase second coil 2482 are connected to the circuit control device 42 through D, E, and F lines respectively. connection. The second output terminals 2446, 2466, and 2486 of the R-phase second coil 2442, the S-phase second coil 2462, and the T-phase second coil 2482 are connected to another neutral point (ground). The circuit control device 42 is electrically connected to the R-phase output terminal, the S-phase output terminal and the T-phase output terminal of the three-phase external power supply 12 . In this embodiment, as shown in FIG. 5 , the three-phase second switch 46 includes an R-phase second switch 460 , an S-phase second switch 462 , and a T-phase second switch 464 . The R-phase second switch 460 includes an R-phase fourth contact 4600, an R-phase fifth contact 4602, and an R-phase sixth contact 4604. The S-phase second switch 462 includes an S-phase fourth contact 4620, an S-phase fifth contact 4622, and an S-phase sixth contact 4624. The T-phase second switch 464 includes a T-phase fourth contact 4640, a T-phase fifth contact 4642 and a T-phase sixth contact 4644. The R-phase fourth contact 4600 of the R-phase second switch 460, the S-phase fourth contact 4620 of the S-phase second switch 462, and the T-phase fourth contact of the T-phase second switch 464 4640 is respectively connected to the R-phase third contact 4404 of the R-phase first switch 440, the S-phase third contact 4424 of the S-phase first switch 442, and the T-phase of the T-phase first switch 444. The third contact point 4444 is connected. The R-phase fifth contact 4602 of the R-phase second switch 460, the S-phase fifth contact 4622 of the S-phase second switch 462, and the T-phase fifth contact of the T-phase second switch 464 4642 are connected to the power input end of an external motor 70 respectively. The R-phase sixth contact 4604 of the R-phase second switch 460, the S-phase sixth contact 4624 of the S-phase second switch 462, and the T-phase sixth contact of the T-phase second switch 464 4644 are respectively connected to the input end of an external energy storage unit 80.

該轉子26,如圖2所示,包含有一轉子本體260,一軸孔262以及一轉軸264。該轉軸264係佈置於該軸孔262內,該轉子本體260係容置於該定子本體240之通孔2402內且係隨著該轉軸264相對於該定子24旋轉。於本實施例,該轉子本體260之磁極數與該定子繞組242之磁極數相同。另外,該轉軸264係自該端蓋222之中心貫孔2220往外延伸,該轉軸264與該中心貫孔2220之間佈置有一對軸承280,282,一壓板284以及一套塞286。The rotor 26, as shown in FIG. 2, includes a rotor body 260, a shaft hole 262 and a rotating shaft 264. The rotating shaft 264 is arranged in the shaft hole 262 . The rotor body 260 is received in the through hole 2402 of the stator body 240 and rotates with the rotating shaft 264 relative to the stator 24 . In this embodiment, the number of magnetic poles of the rotor body 260 is the same as the number of magnetic poles of the stator winding 242 . In addition, the rotating shaft 264 extends outward from the central through hole 2220 of the end cap 222. A pair of bearings 280, 282, a pressure plate 284 and a set of plugs 286 are arranged between the rotating shaft 264 and the central through hole 2220.

該冷卻機構30,如圖2所示,係佈置於該殼體220與該定子本體240之間,用以使該第一電機裝置20之工作溫度維持在一定的範圍。於本實施例,該冷卻機構30包含有一圓管體300,多數流道302佈置於該圓管體300表面,用以供冷卻液的流通,該冷卻液可是如油或水或其他類似物,以及二橡膠墊圈304, 306分別佈置於該圓管體300的二端,用以防止該冷卻液之滲出。The cooling mechanism 30 , as shown in FIG. 2 , is arranged between the housing 220 and the stator body 240 to maintain the operating temperature of the first motor device 20 within a certain range. In this embodiment, the cooling mechanism 30 includes a circular tube body 300, and a plurality of flow channels 302 are arranged on the surface of the circular tube body 300 for the circulation of cooling liquid. The cooling liquid can be oil, water or other similar substances. And two rubber gaskets 304 and 306 are respectively arranged at two ends of the circular tube body 300 to prevent the coolant from leaking.

該第一飛輪本體60,如圖2及圖3所示,為一具預定重量之圓型盤體,其面向該機體22之一側設有一凹室600供收容該端蓋222,一位於軸心處的通孔602,用以供該轉軸264穿伸至該第一飛輪本體60之遠離該機體22之另一側,然後再以一螺帽62將二者固接在一起,藉此,該第一飛輪本體60將隨著該轉軸264轉動。The first flywheel body 60, as shown in Figures 2 and 3, is a circular disk with a predetermined weight. An alcove 600 is provided on the side facing the body 22 for receiving the end cap 222. One is located on the shaft. The through hole 602 in the center is used for the rotating shaft 264 to penetrate to the other side of the first flywheel body 60 away from the body 22, and then a nut 62 is used to fix the two together, thereby, The first flywheel body 60 will rotate along with the rotating shaft 264 .

該磁能供電系統10之操作方式,茲說明如下:首先使該第一電機裝置20之定子繞組242以及該轉子26之電樞繞組均與該外部電源連通,此時該外部電源將同時對該定子繞組242之該各相線圈之第一線圈與第二線圈供電,因此,該第一電機裝置20將以第一運轉模式運轉,換言之,即,該第一電機裝置20係完全以馬達模式運轉,用以驅動該第一飛輪本體60。在此狀態下,該第一電機裝置20之輸出功率為該第一線圈之額定輸出功率75HP加上該第二線圈之額定輸出功率25HP。當該第一飛輪本體60旋轉至預定轉速,即到達產生飛輪效應之臨界點後,該感測器48將通知該電路控制裝置42切斷各該相線圈之第一線圈之供電,此時,該第一電機裝置20將以第二運轉模式運轉,即,該第一電機裝置20一方面藉由該各相線圈之第二線圈以馬達模式運轉,用以輸出該第一飛輪本體60維持在飛輪效應之動能,另一方面,該各相線圈之第一線圈則藉由該第一飛輪本體60之飛輪效應輸出外界電能,換言之,該第一電機裝置20係藉由該第一線圈以及該第一飛輪本體60之飛輪效應而以發電機模式運轉。例如,當該第一電機裝置20之磁極數為四極,各該相第一線圈之匝數為48,每極之磁通量為0.025韋伯(Weber),該第一飛輪本體60之轉速為1800rpm,在此條件下,每相感應電動勢之頻率f=4x1800/120=60Hz,每相感應電動勢之大小為E=4.44×48×60×0.025=320伏特。The operation mode of the magnetic energy power supply system 10 is described as follows: first, the stator winding 242 of the first motor device 20 and the armature winding of the rotor 26 are connected to the external power supply. At this time, the external power supply will simultaneously supply power to the stator. The first coil and the second coil of each phase coil of the winding 242 are powered. Therefore, the first motor device 20 will operate in the first operating mode. In other words, the first motor device 20 is completely operated in the motor mode. Used to drive the first flywheel body 60 . In this state, the output power of the first motor device 20 is the rated output power of the first coil 75 HP plus the rated output power of the second coil 25 HP. When the first flywheel body 60 rotates to a predetermined speed, that is, after reaching the critical point for generating the flywheel effect, the sensor 48 will notify the circuit control device 42 to cut off the power supply to the first coil of each phase coil. At this time, The first motor device 20 will operate in the second operating mode, that is, the first motor device 20 operates in the motor mode through the second coil of each phase coil to output the first flywheel body 60 to maintain the The kinetic energy of the flywheel effect. On the other hand, the first coil of each phase coil outputs external electric energy through the flywheel effect of the first flywheel body 60. In other words, the first motor device 20 uses the first coil and the The first flywheel body 60 operates in the generator mode due to the flywheel effect. For example, when the number of magnetic poles of the first motor device 20 is four poles, the number of turns of the first coil of each phase is 48, the magnetic flux of each pole is 0.025 Weber, and the rotation speed of the first flywheel body 60 is 1800 rpm. Under this condition, the frequency of the induced electromotive force of each phase is f=4x1800/120=60Hz, and the magnitude of the induced electromotive force of each phase is E=4.44×48×60×0.025=320 volts.

再請參閱圖8,該圖為本發明磁能發電系統之第二實施例之定子繞組之各相線圈與控制單元之電氣連接示意圖,該第二實施例與該第一實施例之不同處在於其中各相線圈係以三角形連接(為說明方便,以下第二實施例之指示號碼與第一實施例相同)。該R相第一線圈2440,該S相第一線圈2460以及該T相第一線圈2480之各第一輸入端 2443,2463,2483係分別與該R相第一切換開關440之R相第一接點4400,該S相第一切換開關442之 S相第一接點4420,以及該T相第一切換開關444之 T相第一接點4440連接。該R相第一線圈2440之第一輸出端2444係與該S相第一線圈2460之該第一輸入端2463連接;該S相第一線圈2460之該第一輸出端2464係與該T相第一線圈2480之第一輸入端2483連接;該T相第一線圈2480之第一輸出端2484係與該R相第一線圈2440之第一輸入端2443連接。該R相第二線圈2442,該S相第二線圈2462以及該T相第二線圈2482之各第二輸入端2445,2465,2485係分別藉由D、E、F線路與該電路控制裝置42連接。該R相第二線圈2442之第二輸出端2446係與該S相第二線圈2462之第二輸入端2465連接;該S相第二線圈2462之第二輸出端2466係與該T相第二線圈2482之第二輸入端2485連接;該T相第二線圈2482之第二輸出端2486係與該R相第二線圈2442之第二輸入端2445連接。Please refer to Figure 8 again, which is a schematic diagram of the electrical connection between each phase coil of the stator winding and the control unit of the magnetic energy power generation system according to the second embodiment of the present invention. The difference between the second embodiment and the first embodiment lies in Each phase coil is connected in a triangle (for convenience of explanation, the designation numbers of the second embodiment below are the same as those of the first embodiment). The first input terminals 2443, 2463, and 2483 of the R-phase first coil 2440, the S-phase first coil 2460, and the T-phase first coil 2480 are respectively connected to the R-phase first switch 440. The contact 4400, the S-phase first contact 4420 of the S-phase first switch 442, and the T-phase first contact 4440 of the T-phase first switch 444 are connected. The first output terminal 2444 of the R-phase first coil 2440 is connected to the first input terminal 2463 of the S-phase first coil 2460; the first output terminal 2464 of the S-phase first coil 2460 is connected to the T-phase The first input terminal 2483 of the first coil 2480 is connected; the first output terminal 2484 of the T-phase first coil 2480 is connected to the first input terminal 2443 of the R-phase first coil 2440. The second input terminals 2445, 2465, and 2485 of the R-phase second coil 2442, the S-phase second coil 2462, and the T-phase second coil 2482 are connected to the circuit control device 42 through D, E, and F lines respectively. connection. The second output terminal 2446 of the R-phase second coil 2442 is connected to the second input terminal 2465 of the S-phase second coil 2462; the second output terminal 2466 of the S-phase second coil 2462 is connected to the second T-phase second coil. The second input terminal 2485 of the coil 2482 is connected; the second output terminal 2486 of the T-phase second coil 2482 is connected to the second input terminal 2445 of the R-phase second coil 2442.

再請參閱圖9,本實施例係將五組磁能發電系統10串接使用,即,後一組之磁能發電系統之電源輸入端係與前一組磁能發電系統之電源輸出端電性連接。更詳細的說,假設一第一磁能發電系統A維持在飛輪效應狀態所耗用的電能為X,其所輸出的電能為1.2X。當有一第二磁能發電系統B與該第一磁能發電系統A之結構相同,並且與該第一磁能發電系統A串接,即,以該第一磁能發電系統A所輸出的電能1.2X為維持在飛輪效應狀態所耗用的電能,此時,該第二磁能發電系統B所輸出的電能可約為1.44X。當有一第三磁能發電系統C與該第一磁能發電系統A之結構相同,並且與該第二磁能發電系統B串接,即,以該第二磁能發電系統B所輸出的電能1.44X為維持在飛輪效應狀態所耗用的電能,此時,該第三磁能發電系統C所輸出的電能可達1.73X。當有一第四磁能發電系統D與該第一磁能發電系統A之結構相同,並且與該第三磁能發電系統C串接,即,以該第三磁能發電系統C所輸出的電能1.73X為維持在飛輪效應狀態所耗用的電能,此時,該第四磁能發電系統D所輸出的電能則將可達2.08X。當有一第五磁能發電系統E與該第一磁能發電系統A之結構相同,並且與該第四磁能發電系統D串接,即,以該第四磁能發電系統D所輸出的電能2.08X為維持在飛輪效應狀態所耗用的電能,此時,該第五磁能發電系統E所輸出的電能則將可達2.5X。換言之,如有五組本發明之磁能發電系統串接,其輸出的電能可約為原始耗用電能的2.5倍。Please refer to Figure 9 again. In this embodiment, five sets of magnetic energy power generation systems 10 are connected in series, that is, the power input end of the latter group of magnetic energy power generation systems is electrically connected to the power output end of the previous group of magnetic energy power generation systems. In more detail, assume that the power consumed by the first magnetic energy power generation system A to maintain the flywheel effect state is X, and the power it outputs is 1.2X. When there is a second magnetic energy power generation system B that has the same structure as the first magnetic energy power generation system A and is connected in series with the first magnetic energy power generation system A, that is, the electric energy output by the first magnetic energy power generation system A is 1.2X as the maintenance The electric energy consumed in the flywheel effect state, at this time, the electric energy output by the second magnetic energy power generation system B can be approximately 1.44X. When a third magnetic energy power generation system C has the same structure as the first magnetic energy power generation system A and is connected in series with the second magnetic energy power generation system B, that is, the electric energy output by the second magnetic energy power generation system B is 1.44X as the maintenance The electric energy consumed in the flywheel effect state. At this time, the electric energy output by the third magnetic energy power generation system C can reach 1.73X. When a fourth magnetic power generation system D has the same structure as the first magnetic power generation system A and is connected in series with the third magnetic power generation system C, that is, the electric energy output by the third magnetic power generation system C is 1.73X as the maintenance The electric energy consumed in the flywheel effect state, at this time, the electric energy output by the fourth magnetic energy power generation system D will reach 2.08X. When there is a fifth magnetic energy power generation system E that has the same structure as the first magnetic energy power generation system A and is connected in series with the fourth magnetic energy power generation system D, that is, the electric energy output by the fourth magnetic energy power generation system D is 2.08X as the maintenance The electric energy consumed in the flywheel effect state, at this time, the electric energy output by the fifth magnetic energy power generation system E will reach 2.5X. In other words, if there are five sets of magnetic energy power generation systems of the present invention connected in series, the electrical energy output can be approximately 2.5 times the original power consumption.

再請參閱圖10,其為本發明磁能發電系統之第三實施例100與圖4相同方向之剖視圖。該磁能發電系統100與該磁能發電系統10不同之處在於其定子本體102包含有多數之第一定子槽104以及多數之第二定子槽106,各該第二定子槽106係佈設二相鄰之第一定子槽104之間。各該第一定子槽104之深度d 3大於各該第二定子槽106之深度d 4。各相定子線圈之第一線圈108係容置於各該第一定子槽104內,各相定子線圈之第二線圈110係容置於各該第二定子槽106內,藉此,將可有效地減少各該第一線圈108以及各該第二線圈110所經磁路的磁阻。 Please refer to FIG. 10 again, which is a cross-sectional view in the same direction as FIG. 4 of the third embodiment of the magnetic energy power generation system 100 of the present invention. The magnetic energy power generation system 100 is different from the magnetic energy power generation system 10 in that its stator body 102 includes a plurality of first stator slots 104 and a plurality of second stator slots 106. Each of the second stator slots 106 is arranged with two adjacent stator slots 104. between the first stator slots 104. The depth d 3 of each first stator slot 104 is greater than the depth d 4 of each second stator slot 106 . The first coil 108 of each phase stator coil is accommodated in each first stator slot 104, and the second coil 110 of each phase stator coil is accommodated in each second stator slot 106, whereby it is possible to The magnetic resistance of the magnetic paths passed by each of the first coils 108 and each of the second coils 110 is effectively reduced.

再請參閱圖11,其為本發明磁能發電系統之第四實施例200之組合立體圖。該磁能發電系統200與該磁能發電系統10不同之處在於包含有一第二電機裝置202,一第二飛輪本體204耦接於該第二電機裝置202之一側,以及一第三飛輪本體206耦接於該第二電機裝置202之另一側。Please refer to FIG. 11 again, which is an assembled perspective view of the fourth embodiment 200 of the magnetic energy power generation system of the present invention. The magnetic energy power generation system 200 is different from the magnetic energy power generation system 10 in that it includes a second motor device 202, a second flywheel body 204 coupled to one side of the second motor device 202, and a third flywheel body 206 coupled to Connected to the other side of the second motor device 202 .

再請參閱圖12,其為本發明磁能發電系統之第五實施例500之組合立體圖。該磁能發電系統500與該磁能發電系統10不同之處在於包含有一第三電機裝置502,一第四電機裝置504,以及一第四飛輪本體506。該第四飛輪本體506係同時與各該電機裝置502,504之轉軸耦接。Please refer to FIG. 12 again, which is an assembled perspective view of the fifth embodiment 500 of the magnetic energy power generation system of the present invention. The magnetic energy power generation system 500 is different from the magnetic energy power generation system 10 in that it includes a third motor device 502, a fourth motor device 504, and a fourth flywheel body 506. The fourth flywheel body 506 is simultaneously coupled with the rotating shafts of each of the motor devices 502, 504.

以上所述者,僅為本發明所提供的技術思想的若干實施例而已,因此並不能以該等內容來限制本發明之申請專利範圍。也就是說,凡依據本發明所提供技術思想之簡單變化或等效改變以及修飾,均應為本發明之申請專利範圍所涵蓋。The above are only some examples of the technical ideas provided by the present invention, and therefore the patent scope of the present invention cannot be limited by these contents. That is to say, all simple changes or equivalent changes and modifications based on the technical ideas provided by the present invention should be covered by the patentable scope of the present invention.

10:第一實施例10: First embodiment

12:外部電源12:External power supply

20:第一電機裝置20:First motor device

22:機體22:Body

220:殼體220: Shell

222:端蓋222: End cap

24:定子24:Stator

240:定子本體240:Stator body

2400:外周面2400: Outer peripheral surface

2402:通孔2402:Through hole

2404:內周面2404:Inner surface

2406:第一定子槽2406: First stator slot

2408:開口端2408:Open end

2410:底部2410:bottom

2412:第一部分2412:Part One

2414:第二部分2414:Part 2

242:定子繞組242:Stator winding

244:R相線圈244:R phase coil

2440:R相第一線圈2440: R phase first coil

2442:R相第二線圈2442: R phase second coil

2443:R相第一線圈第一輸入端2443: R phase first coil first input terminal

2444:R相第一線圈第一輸出端2444: R phase first coil first output terminal

2445:R相第二線圈第二輸入端2445: R phase second coil second input terminal

2446:R相第二線圈第二輸出端2446: R phase second coil second output terminal

2460:S相第一線圈2460:S phase first coil

2462:S相第二線圈2462:S phase second coil

2463:S相第一線圈第一輸入端2463: S phase first coil first input terminal

2464:S相第一線圈第一輸出端2464: S phase first coil first output terminal

2465:S相第二線圈第二輸入端2465: S phase second coil second input terminal

2466:S相第二線圈第二輸出端2466: S phase second coil second output terminal

248:T相線圈248:T phase coil

2480:T相第一線圈2480:T phase first coil

2482:T相第二線圈2482:T phase second coil

2483:T相第一線圈第一輸入端2483: T phase first coil first input terminal

2484:T相第一線圈第一輸出端2484: T phase first coil first output terminal

2485:T相第二線圈第二輸入端2485:T phase second coil second input terminal

2486:T相第二線圈第二輸出端2486: T phase second coil second output terminal

26:轉子26:Rotor

260:轉子本體260:Rotor body

262:軸孔262:Shaft hole

264:轉軸264:Rotating axis

280:軸承280:Bearing

282:軸承282:Bearing

284:壓板284: Pressure plate

286:套塞286:Socket

30:冷卻機構30: Cooling mechanism

300:圓管體300: round tube body

302:流道302:Flow channel

304:橡膠墊圈304:Rubber gasket

306:橡膠墊圈306:Rubber gasket

40:控制單元40:Control unit

42:電路控制裝置42:Circuit control device

44:三相第一切換開關44: Three-phase first switch

440:R相第一切換開關440: R phase first switch

4400:R相第一接點4400: R phase first contact

4402:R相第二接點4402: R phase second contact

4404:R相第三接點4404: R phase third contact

442:S相第一切換開關442:S phase first switch

4420:S相第一接點4420:S phase first contact

4422:S相第二接點4422:S phase second contact

4424:S相第三接點4424:S phase third contact

444:T相第一切換開關444:T phase first switch

4440:T相第一接點4440:T phase first contact

4442:T相第二接點4442:T phase second contact

4444:T相第三接點4444: T phase third contact

46:三相第二切換開關46: Three-phase second switch

460:R相第二切換開關460: R phase second switch

4600:R相第四接點4600:R phase fourth contact

4602:R相第五接點4602: R phase fifth contact

4604:R相第六接點4604: R phase sixth contact

462:S相第二切換開關462:S phase second switch

4620:S相第四接點4620:S phase fourth contact

4622:S相第五接點4622:S phase fifth contact

4624:S相第六接點4624:S-phase sixth contact

464:T相第二切換開關464:T phase second switch

4640:T相第四接點4640: T phase fourth contact

4642:T相第五接點4642: T phase fifth contact

4644:T相第六接點4644:T phase sixth contact

48:感測器48: Sensor

60:第一飛輪本體60:The first flywheel body

600:凹室600:Alcove

602:通孔602:Through hole

62:螺帽62: Nut

70:外部馬達70:External motor

80:外部儲能單元80:External energy storage unit

A:第一磁能發電系統A:The first magnetic energy power generation system

B:第二磁能發電系統B: The second magnetic energy power generation system

C:第三磁能發電系統C: The third magnetic energy power generation system

D:第四磁能發電系統D: The fourth magnetic energy power generation system

E:第五磁能發電系統E: The fifth magnetic energy power generation system

100:第三實施例100: Third embodiment

102:定子本體102:Stator body

104:第一定子槽104: First stator slot

106:第二定子槽106:Second stator slot

108:第一線圈108:First coil

110:第二線圈110: Second coil

200:第四實施例200: Fourth embodiment

202:第二電機裝置202: Second motor device

204:第二飛輪本體204: The second flywheel body

206:第三飛輪本體206:Third flywheel body

500:第五實施例500: Fifth embodiment

502:第三電機裝置502:Third motor device

504:第四電機裝置504: Fourth motor device

506:第四飛輪本體506: The fourth flywheel body

以下茲以若干實施例並配合圖式,對本發明所提供的磁能發電系統做進一步的說明,其中: 圖1為本發明磁能發電系統之第一實施例之立體圖; 圖2為圖1所示實施例之立體分解圖; 圖3為沿圖1之3-3方向的剖視圖; 圖4為沿圖2之4-4方向的剖視圖; 圖5為圖1所示實施例之整體電氣連線示意圖; 圖6為圖1所示實施例之定子繞組與控制單元之連接方塊示意圖; 圖7為圖1所示實施例之定子繞組之各相線圈繞組與控制單元之電氣連接示意圖,其中該各相線圈繞組係以Y形連接; 圖8為本發明磁能發電系統之第二實施例之定子繞組之各相線圈繞組與控制單元之電氣連接示意圖,其中該各相線圈繞組係以三角形連接; 圖9為多組本發明磁能發電系統之第一實施例串接使用之效益示意圖; 圖10為本發明磁能發電系統之第三實施例與圖4相同方向之剖視圖; 圖11為本發明磁能發電系統之第四實施例之組合立體圖;以及 圖12為本發明磁能發電系統之第五實施例之組合立體圖。 The magnetic energy power generation system provided by the present invention is further described below with several embodiments and drawings, wherein: Figure 1 is a perspective view of the first embodiment of the magnetic energy power generation system of the present invention; Figure 2 is an exploded perspective view of the embodiment shown in Figure 1; Figure 3 is a cross-sectional view along the direction 3-3 of Figure 1; Figure 4 is a cross-sectional view along the direction 4-4 of Figure 2; Figure 5 is a schematic diagram of the overall electrical connection of the embodiment shown in Figure 1; Figure 6 is a schematic block diagram of the connection between the stator winding and the control unit of the embodiment shown in Figure 1; Figure 7 is a schematic diagram of the electrical connection between each phase coil winding of the stator winding and the control unit in the embodiment shown in Figure 1, in which the phase coil windings are connected in a Y shape; Figure 8 is a schematic diagram of the electrical connection between each phase coil winding of the stator winding and the control unit of the second embodiment of the magnetic energy power generation system of the present invention, in which the phase coil windings are connected in a triangle; Figure 9 is a schematic diagram showing the benefits of using multiple sets of magnetic energy power generation systems in series according to the first embodiment of the present invention; Figure 10 is a cross-sectional view in the same direction as Figure 4 of the third embodiment of the magnetic energy power generation system of the present invention; Figure 11 is an assembled perspective view of the fourth embodiment of the magnetic energy power generation system of the present invention; and Figure 12 is an assembled perspective view of the fifth embodiment of the magnetic energy power generation system of the present invention.

10:磁能發電系統 10: Magnetic energy power generation system

20:第一電機裝置 20:First motor device

60:第一飛輪本體 60:The first flywheel body

Claims (16)

一種磁能發電系統,包含有:一電機單元,包含有一第一電機裝置,該第一電機裝置包含有一第一及第二運轉模式,該第一運轉模式係該第一電機裝置完全以馬達模式運轉,該第二運轉模式係該第一電機裝置同時以馬達模式及發電機模式運轉;以及一飛輪單元,包含有一與該第一電機裝置耦接的第一飛輪本體,第一飛輪本體係藉由該第一電機裝置之第一運轉模式來驅動,當該飛輪單元達到一預定轉速時,該第一電機裝置則改以該第二運轉模式操作,用以藉其馬達運轉模式維持該第一飛輪本體之運轉,並藉其發電機運轉模式向外界輸出電能;該第一電機裝置包含有一定子以及一轉子;該定子包含有一定子本體以及一容置於該定子本體內之三相定子繞組,該各相定子繞組包含有一第一線圈及一第二線圈;該第一線圈與該第二線圈具有相同的磁極數,該第一線圈具有一第一額定輸出功率,該第二線圈具有一第二額定輸出功率,該第一額定輸出功率大於或等於該第二額定輸出功率;該轉子包含有一具有預定磁極數之轉子本體以及一沿該轉子本體軸心延伸之轉軸,該轉子本體係容置於該定子本體內相對於該定子旋轉;該第一飛輪本體係與該轉軸耦接;當該第一線圈與該第二線圈同時與外部電源連通時,該第一電機裝置係以該第一運轉模式運轉,用以驅動該第一飛輪本體;當該第一飛輪本體轉動至預定轉速時,係僅使該第二線圈與外部電源連通,用以使該第一電機裝置以該第二運轉模式運轉,即,一方面藉由其馬達運轉模式維持該第一飛輪本體之運轉,另一方面藉由其發電機運轉模式向外界輸出電能。 A magnetic energy power generation system includes: a motor unit, including a first motor device, the first motor device includes a first and a second operation mode, the first operation mode is that the first motor device operates completely in a motor mode , the second operation mode is that the first electric machine device operates in the motor mode and the generator mode at the same time; and a flywheel unit includes a first flywheel body coupled with the first electric machine device, the first flywheel body system is The first motor device is driven in the first operating mode. When the flywheel unit reaches a predetermined rotation speed, the first motor device is switched to the second operating mode to maintain the first flywheel through its motor operating mode. The main body operates and outputs electric energy to the outside world through its generator operation mode; the first motor device includes a stator and a rotor; the stator includes a stator body and a three-phase stator winding accommodated in the stator body , each phase stator winding includes a first coil and a second coil; the first coil and the second coil have the same number of magnetic poles, the first coil has a first rated output power, and the second coil has a The second rated output power, the first rated output power is greater than or equal to the second rated output power; the rotor includes a rotor body with a predetermined number of magnetic poles and a rotating shaft extending along the axis of the rotor body, and the rotor body contains placed in the stator body to rotate relative to the stator; the first flywheel body system is coupled to the rotating shaft; when the first coil and the second coil are connected to an external power supply at the same time, the first motor device is connected to the third An operation mode is used to drive the first flywheel body; when the first flywheel body rotates to a predetermined speed, only the second coil is connected to the external power supply to make the first motor device operate with the second The operation mode operates, that is, on the one hand, it maintains the operation of the first flywheel body through its motor operation mode, and on the other hand, it outputs electric energy to the outside world through its generator operation mode. 如請求項1所述的磁能發電系統,其中該電機單元更包含有一第二電機裝置,該第二電機裝置包含有該第一運轉模式及該第二運轉模式,該第一飛輪本體係同時與該第一及第二電機裝置耦接。 The magnetic energy power generation system of claim 1, wherein the motor unit further includes a second motor device, the second motor device includes the first operation mode and the second operation mode, and the first flywheel system simultaneously The first and second motor devices are coupled. 如請求項1所述的磁能發電系統,其中該飛輪單元更包含有一與該第一電機裝置耦接之第二飛輪本體。 The magnetic energy power generation system of claim 1, wherein the flywheel unit further includes a second flywheel body coupled with the first motor device. 如請求項1所述的磁能發電系統,更包含有一控制單元用來控制該第一線圈與該第二線圈同時與外部電源連通,或者僅使該第二線圈與外部電源連通。 The magnetic energy power generation system of claim 1 further includes a control unit for controlling the first coil and the second coil to be connected to an external power supply at the same time, or only the second coil to be connected to the external power supply. 如請求項1所述的磁能發電系統,其中該定子本體包含有一外周面,一通孔,一由該通孔所界定的內周面,多數沿著該內周面往該外周面延伸並且間隔分佈的第一定子槽,各該第一線圈及各該第二線圈係分別容置於各該第一定子槽內;該轉子本體係容置於該定子本體之通孔內。 The magnetic power generation system of claim 1, wherein the stator body includes an outer peripheral surface, a through hole, and an inner peripheral surface defined by the through hole, most of which extend along the inner peripheral surface toward the outer peripheral surface and are spaced apart. The first stator slot, each first coil and each second coil are respectively accommodated in each first stator slot; the rotor body system is accommodated in a through hole of the stator body. 如請求項5所述的磁能發電系統,其中各該第一定子槽分別具有一面向該轉子本體之開口端,一靠近該外周面之底部,一與該開口端相鄰之第一部分以及一遠離該開口端第二部分,該第一線圈係佈設於該第一部分,該第二線圈係佈設於該第二部分。 The magnetic energy power generation system of claim 5, wherein each first stator slot has an open end facing the rotor body, a bottom close to the outer peripheral surface, a first part adjacent to the open end and a Away from the second part of the open end, the first coil is arranged on the first part, and the second coil is arranged on the second part. 如請求項1所述的磁能發電系統,其中該定子本體包含有一外周面,一通孔,一由該通孔所界定的內周面,多數沿著該內周面往該外周面延伸並且間隔分佈的第一定子槽以及第二定子槽,該第一定子槽之深度大於該第二定子槽,各該第一線圈係分別佈設於各該第一定子槽內,各該第二線圈係分別佈設於各該第二定子槽內;該轉子本體係容置於該定子本體之通孔內。 The magnetic power generation system of claim 1, wherein the stator body includes an outer peripheral surface, a through hole, and an inner peripheral surface defined by the through hole, most of which extend along the inner peripheral surface toward the outer peripheral surface and are spaced apart. The first stator slot and the second stator slot, the depth of the first stator slot is greater than the second stator slot, each of the first coils is arranged in each of the first stator slots, and each of the second coils They are respectively arranged in each second stator slot; the rotor body system is accommodated in the through hole of the stator body. 如請求項4所述的磁能發電系統,其中該第一線圈具有一第一輸入端以及一第一輸出端,該第二線圈具有一第二輸入端以及一第二輸出端;該控制單元包含有一電路控制裝置以及一三相第一切換開關;該第一切換開關包含有一第一接點,一第二接點以及一第三接點;該第一線圈之該第一輸入端係與該第一切換開關之該第一接點電性連接,該第二輸出端係連接至一中性點;該第二線圈之該第二輸入端係藉由該電路控制裝置電性連接至該外部電源,該第二輸出端係連接至該中性點;該第一切換開關之該第二接點係藉由該電路控制裝置連接至外部電源,該第三接點與係與一外界設備電性連接;藉此,當該第一電機裝置於開始運轉時,係使該第一切換開關之第一接點與第二接點連通,外部電源將同時對該第一線圈與該第二線圈供電,使該第一電機裝置處於該第一運轉模式驅動該第一飛輪本體;當該第一飛輪本體到達產生飛輪效應之轉速後,係該第一切換開關之第一接點離開該第二接點,切斷各該第一線圈之供電,用以使該第一電機裝置以該第二運轉模式運轉。 The magnetic energy power generation system of claim 4, wherein the first coil has a first input terminal and a first output terminal, and the second coil has a second input terminal and a second output terminal; the control unit includes There is a circuit control device and a three-phase first switch; the first switch includes a first contact, a second contact and a third contact; the first input end of the first coil is connected to the The first contact point of the first switch is electrically connected, the second output end is connected to a neutral point; the second input end of the second coil is electrically connected to the outside through the circuit control device power supply, the second output terminal is connected to the neutral point; the second contact point of the first switch is connected to an external power supply through the circuit control device, and the third contact point is electrically connected to an external device Thereby, when the first motor device starts to operate, the first contact point and the second contact point of the first switch are connected, and the external power supply will simultaneously connect the first coil and the second coil. Power is supplied to the first motor device to drive the first flywheel body in the first operating mode; when the first flywheel body reaches the rotation speed that produces the flywheel effect, the first contact point of the first switch leaves the second Contacts are used to cut off the power supply of each first coil to enable the first motor device to operate in the second operation mode. 如請求項4所述的磁能發電系統,其中該第一線圈具有一第一輸入端以及一第一輸出端,該第二線圈具有一第二輸入端以及一第二輸出端;該第一線圈與該第二線圈係分別以三角形連接;該控制單元包含有一電路控制裝置以及一三相第一切換開關;該第一切換開關包含有一第一接點,一第二接點以及一第三接點,該第一接點係與該第一線圈之第一輸入端電性連接,該第二接點係藉由該電路控制裝置連接至外部電源,該第三接點與係與外界設備連接;該第二線圈之該第二輸入端係藉由該電路控制裝置連接至該外部電源;藉此,當該第一電機裝置開始運轉時,係使該第一切換開關之第一接點與第二接點連通,外部電源將同時對該第一線圈與該第二線圈供電,使該第一電機裝置處於該第一運轉模式驅動該第一飛輪本體;當該第一飛輪本體到達產生飛輪效 應之轉速後,該電路控制裝置將切斷各該第一線圈之供電,用以使該第一電機裝置以該第二運轉模式運轉。 The magnetic energy power generation system of claim 4, wherein the first coil has a first input terminal and a first output terminal, and the second coil has a second input terminal and a second output terminal; the first coil The second coil is connected with a triangle respectively; the control unit includes a circuit control device and a three-phase first switch; the first switch includes a first contact, a second contact and a third contact. point, the first contact point is electrically connected to the first input end of the first coil, the second contact point is connected to an external power supply through the circuit control device, and the third contact point is connected to an external device. ; The second input end of the second coil is connected to the external power supply through the circuit control device; thereby, when the first motor device starts to operate, the first contact of the first switch is connected to When the second contact point is connected, the external power supply will supply power to the first coil and the second coil at the same time, so that the first motor device is in the first operating mode to drive the first flywheel body; when the first flywheel body reaches the effect After the corresponding rotation speed, the circuit control device will cut off the power supply to each first coil to make the first motor device operate in the second operating mode. 如請求項1所述的磁能發電系統,其中該第一電機裝置更包含有一機體,該機體包含有一殼體以及一端蓋,該殼體係用來容置該定子及該轉子,該端蓋係固接在該殼體之一側;該第一飛輪本體具有一凹室以及一通孔,該凹室係供收容該端蓋,該通孔係用以與該轉軸樞接。 The magnetic energy power generation system of claim 1, wherein the first motor device further includes a body, the body includes a casing and an end cover, the casing system is used to accommodate the stator and the rotor, and the end cover is fixed Connected to one side of the housing; the first flywheel body has an alcove and a through hole, the alcove is for receiving the end cover, and the through hole is for pivoting with the rotating shaft. 如請求項7或8所述的磁能發電系統,其中該控制單元更包含一感測器,用以在該第一飛輪本體到達產生飛輪效應之轉速後,輸出一信號給該電路控制裝置,使該第一切換開關切斷該第一線圈之供電。 The magnetic energy power generation system as claimed in claim 7 or 8, wherein the control unit further includes a sensor for outputting a signal to the circuit control device after the first flywheel body reaches a rotational speed that produces a flywheel effect. The first switch cuts off the power supply to the first coil. 如請求項7或8所述的磁能發電系統,其中該控制單元更包含有一三相第二切換開關,該各相第二切換開關包含有一第四接點以及一第五接點;該第四接點係與該第一切換開關之第三接點電性連接,該第五接點係與外部負載連接。 The magnetic energy power generation system of claim 7 or 8, wherein the control unit further includes a three-phase second switch, and each phase second switch includes a fourth contact and a fifth contact; the third The four contacts are electrically connected to the third contact of the first switch, and the fifth contact is connected to the external load. 如請求項1所述的磁能發電系統,其中該第一電機裝置更包含有一冷卻機構,係佈置於該定子本體之表面。 The magnetic power generation system of claim 1, wherein the first motor device further includes a cooling mechanism arranged on the surface of the stator body. 如請求項1所述的磁能發電系統,其中該第一線圈之匝數大於該第二線圈之匝數。 The magnetic energy power generation system of claim 1, wherein the number of turns of the first coil is greater than the number of turns of the second coil. 如請求項1所述的磁能發電系統,其中該第一線圈之線徑大於該第二線圈之線徑。 The magnetic power generation system of claim 1, wherein the wire diameter of the first coil is larger than the wire diameter of the second coil. 一種磁能發電系統,包含有多數如請求項1所述的磁能發電系統,各該磁能發電系統係串接使用,其中後一組之磁能發電系統之電源輸入端係與前一組磁能發電系統之電源輸出端電性連接。A magnetic energy power generation system, including a plurality of magnetic energy power generation systems as described in claim 1. Each magnetic energy power generation system is used in series, and the power input end of the latter group of magnetic energy power generation systems is connected to the previous group of magnetic energy power generation systems. The power output terminal is electrically connected.
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JP2023023191A JP2023123386A (en) 2022-02-24 2023-02-17 Magnetic force power generating system
CA3190647A CA3190647A1 (en) 2022-02-24 2023-02-22 Magnetic power electricity generating system
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