New energy power generation system coupled with gravity energy storage

By setting up swing and magnetic modules in the gravity energy storage system, the utilization of gravity potential energy is optimized, and the problem of large power consumption in the energy storage system is solved, and the power generation efficiency and energy conversion efficiency are improved.

CN120402316APending Publication Date: 2025-08-01BEIJING FENGYE ELECTRIC POWER ENVIRONMENTAL PROTECTION ENG
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202510649492.5
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-20
Publication Date
2025-08-01

AI Technical Summary

Technical Problem

When the existing gravity energy storage system is in operation, the stored power consumes a large amount, resulting in low power generation efficiency. How to reduce this part of the loss to improve system efficiency.

Method used

By setting up a swing module to drive the transmission module to move with gravity reciprocating swing, change the direction of movement and transmit the gravity potential energy to the power generation module for power generation, and store the electric energy in the energy storage module. The swing process is optimized by using the magnetic module and the conversion module to reduce reset power consumption.

Benefits of technology

It reduces the power consumption of the system during the reset process, improves the power generation efficiency, and achieves more efficient energy conversion and storage.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120402316A_ABST
    Figure CN120402316A_ABST
Patent Text Reader

Abstract

The invention discloses a new energy power generation system coupled with gravity energy storage, and relates to the technical field of gravity energy storage, the new energy power generation system comprises a bottom plate, the bottom plate is provided with a power generation module and an energy storage module, the bottom plate is also provided with a swingable swing module, and the swing module is provided with a transmission module; when the swing module swings in a reciprocating mode through gravity, the transmission module is driven to move, so that the movement direction of the transmission module is changed, gravitational potential energy generated by the swing module is transmitted to the power generation module, the power generation module is driven to generate power, and electric energy is stored in the energy storage module. According to the new energy power generation system coupled with gravity energy storage, the swing module is arranged, the power generation module is driven to generate power and store the power through gravity reciprocating swing, so that the power generation module does not need to provide excessive power to drive the swing module to reset to the highest point, the loss generated by the system is reduced, and the power generation efficiency is improved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to the technical field of gravity energy storage, and particularly to a new energy power generation system coupled with gravity energy storage. Background Art

[0002] Gravity energy storage realizes energy storage and release through the vertical lifting of heavy objects. During charging, surplus electric energy is used to lift the heavy object to a high position to store potential energy; during discharging, the heavy object descends to drive the generator to generate electricity.

[0003] Wind energy and photovoltaic power generation in new energy power generation are intermittent. Gravity energy storage absorbs surplus electric energy through rapid response and releases it during the low power generation period, significantly reducing the phenomenon of "abandoned wind and light". Gravity energy storage stores potential energy by lifting gravity blocks, charges during the surplus of new energy power generation, and releases potential energy to generate electricity during the peak power consumption period, realizing the cross-time and space transfer of energy, and then intelligently scheduling the urban power system.

[0004] Under the existing technology, there are different types of gravity energy storage, such as tower crane type, mountain railway type, mine type, etc. Each type has its own problems. Tower crane type energy storage requires the position error of the gravity block to be controlled within millimeters; mine type energy storage faces geological condition limitations; mountain railway type requires a track with a suitable slope; and in these types, it is necessary to rely on the stored electricity to continue generating electricity and transport the heavy object back to a high position to fall for power generation. Especially for the tower crane type and mine type, the heavy object is lifted vertically, which consumes a lot of electricity. Even for the mountain railway type with a certain slope, although it can save some force during the lifting process, the electricity consumption is still very large. Therefore, when the current gravity energy storage operates, a part of the stored electricity has to be consumed by itself first. How to reduce this part of the loss and then improve the efficiency of the system during power generation has become a problem to be solved. Summary of the Invention

[0005] The purpose of the present invention is to provide a new energy power generation system coupled with gravity energy storage to solve the above deficiencies in the prior art.

[0006] To achieve the above purpose, the present invention provides the following technical solutions: A new energy power generation system coupled with gravity energy storage includes a bottom plate, on which a power generation module and an energy storage module are provided. A swing module that can swing is also provided on the bottom plate, and a transmission module is provided on the swing module; When the swing module swings reciprocally by gravity, it drives the transmission module to move, thereby changing its movement direction and transferring the gravitational potential energy generated by the swing module to the power generation module to drive the power generation module to generate electricity, and storing the electric energy in the energy storage module.

[0007] As a further preferred solution in the embodiments of the present invention, a second upright post is fixedly connected to the upper surface of the bottom plate. The top end of the second upright post is connected to a connecting plate. A through hole is provided on the connecting plate. The swinging module includes a swinging shaft rotatably connected in the through hole. A swing arm is connected to the side surface of the swinging shaft. One end of the swing arm is connected to a pendulum bob, and one end of the pendulum bob is connected to a magnetic head.

[0008] As a further preferred solution in the embodiments of the present invention, the transmission module includes a transmission gear connected to one end of the swinging shaft. One end of the transmission gear is rotatably connected to a transmission seat. A mating groove is provided at one end of the transmission seat. A transmission rack is slidably connected in the mating groove. The transmission rack meshes with the transmission gear. One end of the transmission rack is hinged to a transmission rod.

[0009] As a further preferred solution in the embodiments of the present invention, the power generation module includes a generator and a converter provided on the upper surface of the bottom plate. A power generation wire is connected between the generator and the converter.

[0010] As a further preferred solution in the embodiments of the present invention, the energy storage module includes a storage battery provided on the upper surface of the bottom plate. A storage wire is connected between the storage battery and the converter.

[0011] As a further preferred solution in the embodiments of the present invention, a magnetic force module is further included. A third upright post is fixedly connected to the upper surface of the bottom plate. A connecting rod is fixedly connected between the third upright post and the second upright post. The magnetic force module includes a top plate connected to the upper end of the third upright post. A first electromagnet and a second electromagnet are provided on the lower surface of the top plate. A first power transmission wire is connected between the first electromagnet and the converter. A second power transmission wire is connected between the second electromagnet and the converter. A power transmission groove is provided on the third upright post. A third power transmission wire is slidably arranged in the power transmission groove. One end of the third power transmission wire is connected to the converter.

[0012] As a further preferred solution in the embodiments of the present invention, a conversion module is further included. When the swinging module swings to the conversion module, the first electromagnet adsorbs the swinging module, so that after the swinging module swings to the initial height, it is synchronously and passively triggered to the conversion module, causing the first electromagnet to stop working and the second electromagnet to work, thereby enabling the swinging module to be repelled by magnetic force to obtain a thrust and continue to swing reciprocally.

[0013] As a further preferred solution in the embodiments of the present invention, the conversion module includes a power transmission block connected to the other end of the third power transmission wire. A sliding groove is provided on one side surface of the third upright post. A sliding plate is slidably connected in the sliding groove. A conversion rack is connected to one side surface of the sliding plate. The lower surface of the power transmission block is connected to the upper surface of the conversion rack.

[0014] As a further preferred solution in the embodiments of the present invention, the conversion module further includes a connecting seat fixedly connected to the same side surface of the third column, and one end of the connecting seat is provided with a mounting hole, and a conversion rod is rotatably connected in the mounting hole, and the top end of the conversion rod is connected with a conversion gear, and a conversion groove is provided on the side wall of the conversion rod, and a conversion member is slidably arranged in the conversion groove, and an inner rod is slidably sleeved inside the conversion rod, and one end of the conversion member is fixedly connected to the side surface of the inner rod, and a limiting tube is connected to the top end of the inner rod.

[0015] As a further preferred solution in the embodiments of the present invention, it further includes a speed increasing module, and the speed increasing module includes a first column fixedly connected to the upper surface of the bottom plate, and a driving large gear is rotatably connected to one side surface of the first column, and the driving large gear is engaged with a speed increasing small gear, and one end of the speed increasing small gear is connected to the power generation module.

[0016] In the above technical solution, the beneficial effects of a new energy power generation system coupled with gravity energy storage provided by the present invention are as follows: The present invention drives the power generation module to generate electricity and store it by using the reciprocating swing of gravity through the setting of the swing module, so that it is not necessary for the power generation module to provide too much power to drive the swing module to reset to the highest point, thereby reducing the loss generated by the system and improving the power generation efficiency.

[0017] It should be understood that the foregoing general description and the following detailed description are exemplary and explanatory only and are not intended to limit the present disclosure. This application document provides an overview of various implementations or examples of the technology described in the present disclosure, and is not a full disclosure of the entire scope or all features of the disclosed technology. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] In order to more clearly illustrate the technical solutions in the embodiments of the present application or the prior art, the following will briefly introduce the drawings required for use in the embodiments. Obviously, the drawings described below are only some embodiments recorded in the present invention, and those of ordinary skill in the art can also obtain other drawings based on these drawings.

[0019] Figure 1 It is a schematic diagram of the overall structure in the first state provided by the embodiments of the present invention; Figure 2 Provided by the embodiments of the present invention Figure 1 The enlarged structural schematic diagram at A in Figure 3 It is a schematic diagram of the structure in the first state from another perspective provided by the embodiments of the present invention; Figure 4 Provided by the embodiments of the present invention Figure 3 The enlarged structural schematic diagram at B in Figure 5 The enlarged structural schematic diagram at position C in Figure 3 the embodiment provided by the present invention; Figure 6 The overall structural schematic diagram of the second state provided by the embodiment of the present invention; Figure 7 The Figure 6 enlarged structural schematic diagram at position D in the embodiment provided by the present invention; Figure 8 The Figure 6 enlarged structural schematic diagram at position E in the embodiment provided by the present invention; Figure 9 The front view of the third state provided by the embodiment of the present invention; Figure 10 The front view of the fourth state provided by the embodiment of the present invention; Figure 11 The flowchart provided by the embodiment of the present invention.

[0020] Explanation of reference numerals: 1. Base plate; 101. First upright post; 102. Second upright post; 103. Third upright post; 104. Power transmission groove; 105. Sliding groove; 2. Generator; 201. Power generation wire; 202. Converter; 203. Power storage wire; 204. Storage battery; 3. Top plate; 301. First electromagnet; 302. Second electromagnet; 303. First power transmission wire; 304. Second power transmission wire; 305. Third power transmission wire; 306. Power transmission block; 4. Sliding plate; 401. Conversion rack; 402. Conversion gear; 403. Conversion rod; 404. Conversion groove; 405. Conversion part; 406. Inner rod; 407. Limiting tube; 408. Connecting seat; 5. Pendulum; 501. Magnetic head; 502. Pendulum arm; 503. Swing shaft; 6. Connecting plate; 601. Connecting rod; 602. Driving gear; 603. Driving seat; 604. Driving rack; 605. Driving rod; 7. Driving large gear; 701. Speed increasing small gear. Detailed implementation manners

[0021] To make the objectives, technical solutions and advantages of the embodiments of the present disclosure clearer, the technical solutions of the embodiments of the present disclosure will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present disclosure. Obviously, the described embodiments are some but not all of the embodiments of the present disclosure. All other embodiments obtained by those of ordinary skill in the art based on the described embodiments of the present disclosure without creative efforts shall fall within the scope of protection of the present disclosure.

[0022] Please refer to Figure 1 - Figure 11, a new energy power generation system coupled with gravitational energy storage, including a bottom plate 1, on which a power generation module and an energy storage module are provided. A swing module that can swing is also provided on the bottom plate 1, and a transmission module is provided on the swing module; When the swing module swings reciprocally using gravity, it drives the transmission module to move, thereby changing its movement direction and transferring the gravitational potential energy generated by the swing module to the power generation module to drive the power generation module to generate electricity, and storing the electric energy in the energy storage module.

[0023] In the present invention, by setting the swing module to swing reciprocally using gravity to drive the power generation module to generate electricity and store it, it is not necessary for the power generation module to provide too much power to drive the swing module to reset to the highest point, thereby reducing the loss generated by the system and improving the power generation efficiency.

[0024] In a further embodiment provided by the present invention, a second upright post 102 is fixedly connected to the upper surface of the bottom plate 1. A connecting plate 6 is connected to the top of the second upright post 102. A through hole is provided on the connecting plate 6. The swing module includes a swing shaft 503 rotatably connected in the through hole. A swing arm 502 is connected to the side surface of the swing shaft 503. One end of the swing arm 502 is connected to a pendulum weight 5, and one end of the pendulum weight 5 is connected to a magnetic head 501.

[0025] Further, the initial position of the swing arm 502 is on the right side perpendicular to the second upright post 102, that is, the Figure 1 mirror position in the attachment

[0026] Specifically, after releasing the pendulum weight 5 to freely fall under the action of gravity, the swing arm 502 swings around the swing shaft 503 as the axis.

[0027] In a further embodiment provided by the present invention, the transmission module includes a transmission gear 602 connected to one end of the swing shaft 503. One end of the transmission gear 602 is rotatably connected to a transmission seat 603. A mating groove is provided at one end of the transmission seat 603. A transmission rack 604 is slidably connected in the mating groove. The transmission rack 604 meshes with the transmission gear 602. One end of the transmission rack 604 is hinged to a transmission rod 605.

[0028] Further, when the transmission rack 604 moves, the transmission seat 603 rotates cooperatively to cooperate with the movement of the transmission rack 604.

[0029] Furthermore, in the first stroke: when the pendulum weight 5 swings from the initial position to the Figure 1 position, the transmission gear 602 rotates forward, driving the transmission rod 605 to rotate half a circle; in the second stroke: then when the pendulum weight 5 swings reciprocally back to the initial position, the transmission gear 602 rotates reversely, driving the transmission rod 605 to rotate the remaining half circle to complete one cycle.

[0030] Specifically, when the first-stroke lower swing arm 502 swings, it drives the transmission gear 602 to rotate forward, so as to drive the transmission rack 604 to slide within the transmission seat 603, and then pull the transmission rod 605 to rotate half a turn; when the second-stroke lower swing arm 502 falls back, the transmission gear 602 rotates in the reverse direction, driving the transmission rack 604 to slide in the reverse direction. At this time, the transmission rod 605 is pulled to rotate, causing the transmission rod 605 to rotate the remaining half turn.

[0031] Furthermore, the length ratio between the transmission rack 604 and the transmission rod 605 can be adjusted according to actual requirements.

[0032] In an embodiment further provided by the present invention, the power generation module includes a generator 2 and a converter 202 disposed on the upper surface of the bottom plate 1, and a power generation wire 201 is connected between the generator 2 and the converter 202.

[0033] Furthermore, the converter 202 converts the alternating current generated by the generator 2 into direct current.

[0034] In an embodiment further provided by the present invention, the energy storage module includes a storage battery 204 disposed on the upper surface of the bottom plate 1, and a storage wire 203 is connected between the storage battery 204 and the converter 202.

[0035] Specifically, the storage battery 204 stores the converted direct current.

[0036] In an embodiment further provided by the present invention, a magnetic force module is further included. A third column 103 is fixedly connected to the upper surface of the bottom plate 1. A connecting rod 601 is fixedly connected between the third column 103 and the second column 102. The magnetic force module includes a top plate 3 connected to the upper end of the third column 103. A first electromagnet 301 and a second electromagnet 302 are provided on the lower surface of the top plate 3. A first power transmission wire 303 is connected between the first electromagnet 301 and the converter 202. A second power transmission wire 304 is connected between the second electromagnet 302 and the converter 202. A power transmission groove 104 is provided on the third column 103. A third power transmission wire 305 is slidably disposed within the power transmission groove 104, and one end of the third power transmission wire 305 is connected to the converter 202.

[0037] Furthermore, the spiral directions within the first electromagnet 301 and the second electromagnet 302 are arranged in the reverse direction, so that the magnetic field directions between the two are opposite. The magnetic field direction of the first electromagnet 301 is to attract the magnetic head 501, and the magnetic field direction of the second electromagnet 302 is to repel the magnetic head 501.

[0038] Even further, in the initial state as Figure 7 shown, the position of the third power transmission wire 305 is below the first electromagnet 301, forming a circuit with the first power transmission wire 303 to supply power to the first electromagnet 301, causing the first electromagnet 301 to generate a magnetic field.

[0039] In an embodiment further provided by the present invention, it further includes a conversion module. When the swinging module swings to the conversion module, the first electromagnet 301 adsorbs the swinging module, so that after the swinging module swings to the initial height, it is synchronously and passively triggered to the conversion module, causing the first electromagnet 301 to stop working and the second electromagnet 302 to work. Furthermore, the swinging module is repelled by magnetic force to obtain a thrust and continue to swing reciprocally.

[0040] Furthermore, when the pendulum 5 swings, due to air resistance, the meshing consumption between the transmission rack 604 and the transmission gear 602, and other power losses, it will surely lose a certain amount of initial potential energy and cannot directly reach the height Figure 1 as shown in

[0041] Even further, when the pendulum 5 swings in the first stroke to a position close to Figure 1 as shown in Figure 1 at this time, the first electromagnet 301 adsorbs the magnetic head 501 to offset the potential energy lost when the pendulum 5 swings, enabling the pendulum 5 to swing to the position

[0042] In an embodiment further provided by the present invention, the conversion module includes a power transmission block 306 connected to the other end of the third power transmission line 305. A sliding groove 105 is provided on one side surface of the third upright column 103. A sliding plate 4 is slidably connected in the sliding groove 105. A conversion rack 401 is connected to one side surface of the sliding plate 4. The lower surface of the power transmission block 306 is connected to the upper surface of the conversion rack 401.

[0043] Furthermore, in the initial state, the upper surface of the power transmission block 306 is connected to the lower end of the first electromagnet 301. The third power transmission line 305 transmits power to the power transmission block 306, and the power transmission block 306 transmits the current into the first electromagnet 301.

[0044] In an embodiment further provided by the present invention, the conversion module further includes a connection seat 408 fixedly connected to the same side surface of the third upright column 103. An installation hole is provided at one end of the connection seat 408. A conversion rod 403 is rotatably connected in the installation hole. A conversion gear 402 is connected to the top end of the conversion rod 403. A conversion groove 404 is provided on the side wall of the conversion rod 403. A conversion member 405 is slidably arranged in the conversion groove 404. An inner rod 406 is slidably sleeved inside the conversion rod 403. One end of the conversion member 405 is fixedly connected to the side surface of the inner rod 406. A limiting tube 407 is connected to the top end of the inner rod 406.

[0045] Furthermore, after the magnetic force of the first electromagnet 301 offsets the losses, there is still a force left to drive the pendulum 5 to lift the inner rod 406.

[0046] Furthermore, the diameter of the tube 407 is limited to be larger than that of the inner rod 406 so that the inner rod 406 will not fall off.

[0047] Specifically, after the pendulum 5 is adsorbed, it touches and pushes up the inner rod 406, thereby driving the conversion member 405 to rise. Under the action of the conversion groove 404, the conversion member 405 slides in the conversion groove 404, so that the conversion rod 403 is driven to rotate, and then the conversion gear 402 rotates to drive the conversion rack 401 to slide, causing the power transmission block 306 to move away from below the first electromagnet 301 to below the second electromagnet 302, supplying power to the second electromagnet 302. As a result, the first electromagnet 301 no longer adsorbs the magnetic head 501 while the second electromagnet 302 repels the magnetic head 501, so that the pendulum 5 not only has the same gravitational potential energy as the initial height but also can obtain a part of the magnetic force thrust to offset the loss, and then can complete the subsequent second stroke and the second first stroke.

[0048] Furthermore, the inner rod 406 has a certain self-weight. After the pendulum 5 is repelled and pushed out and then falls back, the inner rod 406 also falls back under the action of its own weight, driving the conversion rod 403 to rotate back to its original position, so that the power transmission block 306 returns to below the first electromagnet 301 again.

[0049] In an embodiment further provided by the present invention, a speed increasing module is further included. The speed increasing module includes a first column 101 fixedly connected to the upper surface of the bottom plate 1. One side surface of the first column 101 is rotatably connected with a transmission large gear 7, and the transmission large gear 7 meshes with a speed increasing small gear 701, and one end of the speed increasing small gear 701 is connected to the power generation module.

[0050] Further, one end of the speed increasing small gear 701 is connected to the input end of the generator 2.

[0051] Specifically, when the transmission rod 605 rotates, it drives the transmission large gear 7 to rotate one week, thereby driving the speed increasing small gear 701 to rotate several weeks, so as to increase the rotation speed of the generator 2 and improve the power generation efficiency.

[0052] Furthermore, the first state: the state in which the pendulum 5 is adsorbed when it swings from the initial position to the same height at the other end; The second state: the state in which the pendulum 5 swings from the initial position to be perpendicular to the bottom plate 1 (in the first stroke); The third state: the state in which the pendulum 5 falls back to the initial position from the first state (in the second stroke); The fourth state: the state in which the pendulum 5 is at the initial position.

[0053] In the present invention, first, after the swing arm 502 is pulled to the initial position, the pendulum 5 is released and allowed to fall freely under the action of gravity, causing the swing arm 502 to swing about the swing axis 503. When the pendulum 5 swings from the initial position to Figure 1 the position, it drives the transmission gear 602 to rotate forward, driving the transmission rack 604 to slide within the transmission seat 603, and then pulling the transmission rod 605 to rotate half a turn. When the pendulum 5 swings to a position close to that shown in Figure 1 at this time, the first electromagnet 301 adsorbs the magnetic head 501 to counteract the potential energy loss during the swing of the pendulum 5, enabling the pendulum 5 to swing to the position shown in Figure 1 After the pendulum 5 is adsorbed, it touches the inner rod 406 and pushes it up, thereby driving the conversion member 405 to rise. Under the action of the conversion groove 404, the conversion member 405 slides within the conversion groove 404, causing the conversion rod 403 to be driven to rotate, and then the conversion gear 402 rotates, driving the conversion rack 401 to slide, causing the power transmission block 306 to move away from below the first electromagnet 301 to below the second electromagnet 302, supplying power to the second electromagnet 302. As a result, the first electromagnet 301 no longer adsorbs the magnetic head 501 while the second electromagnet 302 repels the magnetic head 501, enabling the pendulum 5 to not only have the same gravitational potential energy as the initial height but also receive a thrust from a part of the magnetic force, thereby pushing the swing arm 502 to fall back. When the swing arm 502 falls back, the transmission gear 602 rotates in the reverse direction, driving the transmission rack 604 to slide in the reverse direction. At this time, the transmission rod 605 is pulled to rotate. After the transmission rod 605 rotates the remaining half turn, the swing arm 502 falls again and repeats the above steps for reciprocating swing. When the transmission rod 605 rotates, it drives the large transmission gear 7 to rotate one week, thereby driving the speed-increasing small gear 701 to rotate several weeks to increase the rotational speed of the generator 2 for power generation, improving the power generation efficiency. The converter 202 converts the alternating current generated by the generator 2 into direct current and transports it into the storage battery 204 to store the converted direct current.

[0054] Only some exemplary embodiments of the present invention have been described by way of illustration above. Without doubt, for those of ordinary skill in the art, the described embodiments can be modified in various different ways without departing from the spirit and scope of the present invention. Therefore, the above drawings and description are illustrative in nature and should not be construed as limiting the scope of protection of the claims of the present invention.

Claims

1. A new energy power generation system coupled with gravitational energy storage, comprising a bottom plate (1), wherein a power generation module and an energy storage module are provided on the bottom plate (1), and it is characterized in that: A swing module is also provided on the bottom plate (1), and a transmission module is provided on the swing module; When the swing module swings reciprocally by gravity, it drives the transmission module to move, thereby changing its movement direction and transferring the gravitational potential energy generated by the swing module to the power generation module to drive the power generation module to generate electricity, and storing the electric energy in the energy storage module.

2. The new energy power generation system coupled with gravitational energy storage according to claim 1, wherein A second upright column (102) is fixedly connected to the upper surface of the bottom plate (1). The top end of the second upright column (102) is connected to a connecting plate (6). A through hole is provided on the connecting plate (6). The swing module includes a swing shaft (503) rotatably connected in the through hole. A swing arm (502) is connected to the side surface of the swing shaft (503). One end of the swing arm (502) is connected to a pendulum weight (5), and a magnetic head (501) is connected to one end of the pendulum weight (5).

3. The new energy power generation system with coupled gravity energy storage according to claim 2, characterized in that, The transmission module includes a transmission gear (602) connected to one end of the swing shaft (503). One end of the transmission gear (602) is rotatably connected to a transmission seat (603). A mating groove is provided at one end of the transmission seat (603). A transmission rack (604) is slidably connected in the mating groove. The transmission rack (604) meshes with the transmission gear (602). One end of the transmission rack (604) is hinged to a transmission rod (605).

4. A new energy power generation system coupled with gravitational energy storage according to claim 1, characterized in that, The power generation module includes a generator (2) and a converter (202) provided on the upper surface of the bottom plate (1). A power generation wire (201) is connected between the generator (2) and the converter (202).

5. The new energy power generation system with coupled gravitational energy storage according to claim 4, characterized in that, The energy storage module includes a storage battery (204) provided on the upper surface of the bottom plate (1). A storage wire (203) is connected between the storage battery (204) and the converter (202).

6. The new energy power generation system coupled with gravity energy storage according to claim 4, characterized in that, A magnetic force module is also included. A third upright column (103) is fixedly connected to the upper surface of the bottom plate (1). A connecting rod (601) is fixedly connected between the third upright column (103) and the second upright column (102). The magnetic force module includes a top plate (3) connected to the upper end of the third upright column (103). A first electromagnet (301) and a second electromagnet (302) are provided on the lower surface of the top plate (3). A first power transmission wire (303) is connected between the first electromagnet (301) and the converter (202). A second power transmission wire (304) is connected between the second electromagnet (302) and the converter (202). A power transmission groove (104) is provided on the third upright column (103). A third power transmission wire (305) is slidably arranged in the power transmission groove (104). One end of the third power transmission wire (305) is connected to the converter (202).

7. A new energy power generation system coupled with gravitational energy storage according to claim 6, characterized in that, A conversion module is also included. When the swing module swings to the conversion module, the first electromagnet (301) adsorbs the swing module, so that after the swing module swings to the initial height, it is synchronously and passively triggered to the conversion module, causing the first electromagnet (301) to stop working and the second electromagnet (302) to work, thereby enabling the swing module to obtain a thrust after being magnetically repelled and continue to swing reciprocally.

8. A new energy power generation system with coupled gravitational energy storage according to claim 7, characterized in that The conversion module includes a power transmission block (306) connected to the other end of the third power transmission line (305). A sliding groove (105) is provided on one side surface of the third column (103). A sliding plate (4) is slidably connected in the sliding groove (105). A conversion rack (401) is connected to one side surface of the sliding plate (4). The lower surface of the power transmission block (306) is connected to the upper surface of the conversion rack (401).

9. The new energy power generation system with coupled gravitational energy storage according to claim 8, characterized in that, The conversion module further includes a connection seat (408) fixedly connected to the same side surface of the third column (103). An installation hole is provided at one end of the connection seat (408). A conversion rod (403) is rotatably connected in the installation hole. A conversion gear (402) is connected to the top end of the conversion rod (403). A conversion groove (404) is provided on the side wall of the conversion rod (403). A conversion member (405) is slidably arranged in the conversion groove (404). An inner rod (406) is slidably sleeved inside the conversion rod (403). One end of the conversion member (405) is fixedly connected to the side surface of the inner rod (406). A limiting tube (407) is connected to the top end of the inner rod (406).

10. The new energy power generation system with coupled gravitational energy storage according to claim 2, wherein It further includes a speed increasing module. The speed increasing module includes a first column (101) fixedly connected to the upper surface of the bottom plate (1). A driving large gear (7) is rotatably connected to one side surface of the first column (101). The driving large gear (7) meshes with a speed increasing small gear (7)01). One end of the speed increasing small gear (701) is connected to the power generation module.