Power generation device capable of converting potential energy into mechanical energy
By introducing a telescopic adjustment mechanism, a lubrication mechanism, and a starting mechanism into the potential energy to mechanical energy power generation device, the problems of lack of energy feedback and large transmission losses in the existing technology are solved, realizing continuous rotation output and self-sustaining capability, and meeting the needs of long-term unattended distributed power generation.
Patent Information
- Application Number
- CN202511381084.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-25
- Publication Date
- 2025-11-18
AI Technical Summary
Existing potential energy power generation devices suffer from a lack of energy feedback, high transmission losses, and an inability to achieve continuous and stable rotational output. They require manual or external power source reset and cannot meet the needs of long-term, unattended, and low-maintenance distributed power generation.
The telescopic adjustment mechanism employs a cylinder, counterweight ball, and short rod working in tandem to achieve dynamic adjustment of mass distribution during rotation. It utilizes gravity to generate eccentric torque, which, combined with the high-pressure spray gun, provides auxiliary thrust, forming an energy feedback closed loop. The lubrication mechanism continuously lubricates the drive shaft through a sealed bushing and a storage box. The starting mechanism controls the engagement and disengagement of the power motor and the drive shaft via an electric push rod, achieving reliable starting and automatic disengagement.
This enables continuous rotational output of the device, enhances the system's self-sufficiency, reduces energy loss, improves the continuity and self-driving capability of energy conversion, and meets the needs of long-term, low-maintenance distributed power generation.
Smart Images

Figure CN120969103A_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of mechanical energy power generation, specifically a potential energy to mechanical energy power generation device. Background Technology
[0002] Potential energy conversion mechanical energy power generation devices occupy an important position in new energy and sustainable energy technologies. As a core component that converts physical potential energy into usable mechanical energy and further realizes electrical energy output, its energy conversion efficiency, operational stability and self-sufficiency have a decisive impact on the feasibility and practicality of the overall power generation system. In particular, in the core link of potential energy storage and release to drive rotational motion, existing energy conversion devices or power generation systems have gradually revealed their limitations when dealing with continuous power output, energy closed-loop control and low input and high output ratio operation requirements.
[0003] Specifically, existing potential energy power generation devices, such as gravity-driven drop-type or pendulum-type structures, generally suffer from a lack of energy feedback mechanisms and significant energy loss during transmission. Most traditional designs simply convert potential energy into one-time mechanical motion, failing to generate continuous and stable rotational output. This results in intermittent power generation and low efficiency. More seriously, these devices require manual resetting or external power supply to re-establish potential energy reserves after energy release. This not only significantly increases the system's dependence on external energy but also weakens its independent operation capability and energy self-sufficiency, making it difficult to meet the needs of long-term, unattended, and low-maintenance distributed power generation scenarios.
[0004] To address the problems raised in the background art, those skilled in the art have proposed a potential energy to mechanical energy power generation device. Summary of the Invention
[0005] To address the aforementioned technical problems, this invention provides a potential energy to mechanical energy power generation device. This addresses the issues of existing potential energy power generation devices, such as gravity-driven drop-type or pendulum-type structures, which generally suffer from a lack of energy feedback and high transmission losses. Traditional designs often convert potential energy into one-time mechanical motion, making it difficult to achieve continuous and stable rotational output. This results in intermittent power generation and low efficiency. After energy release, the device requires manual or external power reset to rebuild potential energy reserves, heavily relying on external energy input. This weakens the system's self-sufficiency and independent operation capabilities, failing to meet the needs of long-term, unattended, and low-maintenance distributed power generation, thus hindering its practical application and promotion in the field of green energy.
[0006] A potential energy to mechanical energy power generation device includes two fixed bases, each with a fixed plate on one side. A plurality of telescopic adjustment mechanisms are arranged between the two fixed plates. Each telescopic adjustment mechanism includes a cylinder. Limiting rods are fixedly connected to both sides of the outer walls of the cylinder. One end of each limiting rod is fixedly connected to one side of an adjacent fixed plate. A connecting rod is fixedly connected to the output end of the cylinder, and a counterweight ball is fixedly connected to one end of the connecting rod. A fan-shaped scoop is provided on one side of the counterweight ball. A drive shaft is horizontally arranged between the two fixed plates.
[0007] The inner cavity of the fixed base is provided with a lubrication mechanism, the lubrication mechanism includes a storage box, the top of the storage box is fixedly connected with an addition tube, and sealing bushings are respectively provided on both sides of the inner cavity of the storage box. One end of the sealing bushing extends through the adjacent side wall of the storage box to one side of the storage box.
[0008] The two ends of the drive shaft pass through the inner cavity of the adjacent fixed plate and the inner cavity of the corresponding storage box in sequence, extending to one side of the storage box. A high-pressure spray gun is provided between the two fixed seats.
[0009] Preferably, a stable base is fixedly connected to the bottom of the fixed base, and both ends of the high-pressure spray gun are fixedly connected to one side of the adjacent fixed base, and the output end of the high-pressure spray gun is adapted to one side of the adjacent fan blade spoon.
[0010] Preferably, a valve is fixedly connected to the outer ring of the adding tube, and the outer wall of the storage box is fixedly connected to the inner wall of the adjacent fixing seat.
[0011] Preferably, both of the fixed discs are fitted onto the outer ring of the drive shaft, and both of the sealing bushings are fitted onto the outer ring of the drive shaft.
[0012] Preferably, one side of one of the fixed bases is provided with a starting mechanism, the starting mechanism includes a power motor, the output shaft of the power motor is fixedly connected to a drive gear, and the outer ring of the drive gear is connected to a driven gear through a snap-gear meshing, one end of the driven gear is fixedly connected to the extension end of the adjacent transmission shaft.
[0013] Preferably, an electric push rod is provided below the power motor, and the output end of the electric push rod is fixedly connected to the bottom of the power motor.
[0014] Preferably, one of the fixed seats is fixedly connected to a mounting seat on one side, and the top of the mounting seat is fixedly connected to the bottom of the electric push rod by bolts.
[0015] Preferably, a short rod is fixedly connected to one side of the fan blade spoon, and one end of the short rod is fixedly connected to one side of an adjacent counterweight ball.
[0016] Compared with the prior art, the present invention has the following beneficial effects:
[0017] 1. This invention achieves dynamic adjustment of mass distribution during rotation through the coordinated operation of the cylinder, counterweight ball, and short rod in the telescopic adjustment mechanism. It utilizes gravity to generate eccentric torque at the nine o'clock position, driving the device to rotate continuously. This solves the problem of traditional potential energy devices releasing energy only once and not continuously outputting it, thus improving the continuity of energy conversion. The cylinder retracts the counterweight at the six o'clock position, reducing return resistance and ineffective energy consumption. The high-pressure spray gun receives part of the electrical energy output from the generator and provides auxiliary thrust to the airflow sprayed onto the fan blades, compensating for friction and wind resistance losses, forming an energy feedback closed loop, and enhancing the system's self-sufficiency. The lubrication mechanism continuously lubricates the drive shaft through structures such as a storage box and sealed bushings, reducing wear and energy loss. The starting mechanism uses an electric push rod to control the engagement and disengagement of the power motor and drive shaft, achieving reliable starting and automatic shutdown. The stable base improves overall stability. After meeting its self-consumption requirements, the system can still output surplus electrical energy, making it suitable for long-term, low-maintenance distributed power generation scenarios.
[0018] 2. This invention achieves continuous lubrication of the drive shaft during operation by setting up a lubrication mechanism. The storage tank is fixed in the fixed base to store lubricating fluid. Through the tight fit between the sealing bushing and the outer ring of the drive shaft, a dynamic oil film is formed when the shaft rotates, effectively reducing the frictional resistance between the drive shaft and the supporting structure, reducing mechanical energy loss, and improving transmission efficiency. The addition pipe connects to the outside of the storage tank, and the valve controls the timing and flow of lubricating fluid replenishment, facilitating maintenance and quantitative management, and preventing insufficient lubrication or overflow. The sealing bushing also plays a role in dust and dirt prevention, preventing external impurities from entering the lubrication system, ensuring internal cleanliness, and extending the service life of components. This lubrication mechanism maintains a stable lubrication state during long-term continuous operation of the device, reducing the risk of temperature rise, wear, and jamming caused by dry friction or lubrication failure, and improving the stability and reliability of system operation. Especially under working conditions of eccentric rotation and large vibration, it effectively supports the durability of the transmission system and provides a basic guarantee for continuous power generation.
[0019] 3. This invention, through the setting of a starting mechanism, achieves safe and controllable initial start-up and power disengagement of the device. During the start-up phase, the electric push rod pushes the power motor upward, causing the driving gear and driven gear to mesh precisely. After the power motor starts, it drives the transmission shaft to rotate through gear transmission, providing initial kinetic energy to the system and ensuring that the device smoothly enters the rotation state. When the speed reaches a stable state, the electric push rod retracts, driving the power motor downward, causing the driving gear and driven gear to disengage, cutting off the external power source, and avoiding energy waste and mechanical wear caused by continuous driving. This structure realizes automated control of the start-up process, ensures the reliability of power transmission, and reduces unnecessary energy consumption during operation. The mounting base provides stable support for the electric push rod, ensuring smooth operation. The entire starting mechanism is compact and easy to operate, effectively solving the problem of traditional devices relying on manual reset or continuous external power, and improving the self-sufficiency and operational safety of the system. Attached Figure Description
[0020] Figure 1 This is a schematic diagram of the overall structure of the present invention;
[0021] Figure 2 This is a schematic diagram of the fixing base structure of the present invention;
[0022] Figure 3 This is a schematic diagram of the high-pressure spray gun device of the present invention;
[0023] Figure 4 This is a schematic diagram of the internal structure of the telescopic adjustment mechanism of the present invention;
[0024] Figure 5 For the present invention Figure 1 Enlarged view of point A in the middle;
[0025] Figure 6 This is a schematic diagram of the storage box structure of the present invention;
[0026] Figure 7 For the present invention Figure 2 Enlarged view at point B in the middle;
[0027] Figure 8 For the present invention Figure 6 Enlarged view of point C in the middle.
[0028] In the diagram: 1. Fixed base; 2. Drive shaft; 3. Fixed disc; 4. Telescopic adjustment mechanism; 401. Cylinder; 402. Connecting rod; 403. Counterweight ball; 404. Fan blade scoop; 405. Short rod; 406. Limiting rod; 5. Lubrication mechanism; 501. Storage box; 502. Adding pipe; 503. Valve; 504. Sealing bushing; 6. Starting mechanism; 601. Mounting base; 602. Electric push rod; 603. Power motor; 604. Drive gear; 605. Driven gear; 7. High-pressure spray gun equipment; 8. Stabilizing base. Detailed Implementation
[0029] The embodiments of the present invention will be described in further detail below with reference to the accompanying drawings and examples. The following examples are for illustrative purposes only and should not be construed as limiting the scope of the invention.
[0030] As attached Figure 1 To be continued Figure 8 As shown:
[0031] Example 1: The present invention provides a potential energy to mechanical energy power generation device, including two fixed bases 1, a fixed plate 3 is respectively provided on one side of the two fixed bases 1, and a plurality of telescopic adjustment mechanisms 4 are provided between the two fixed plates 3. The telescopic adjustment mechanism 4 includes a cylinder 401. Limiting rods 406 are fixedly connected to both sides of the outer walls of the cylinder 401. One end of the limiting rod 406 is fixedly connected to one side of the adjacent fixed plate 3. A connecting rod 402 is fixedly connected to the output end of the cylinder 401, and a counterweight ball 403 is fixedly connected to one end of the connecting rod 402. A fan blade 404 is provided on one side of the counterweight ball 403. A transmission shaft 2 is horizontally arranged between the two fixed plates 3.
[0032] The inner cavity of the fixed base 1 is provided with a lubrication mechanism 5, which includes a storage box 501. An addition tube 502 is fixedly connected to the top of the storage box 501. Sealing bushings 504 are respectively provided on both sides of the inner cavity of the storage box 501. One end of the sealing bushing 504 extends through the side wall of the adjacent storage box 501 to one side of the storage box 501.
[0033] The two ends of the drive shaft 2 pass through the inner cavity of the adjacent fixed plate 3 and the inner cavity of the corresponding storage box 501 respectively, and extend to one side of the storage box 501. A high-pressure spray gun device 7 is provided between the two fixed seats 1.
[0034] A stable base 8 is fixedly connected to the bottom of the fixed base 1. The two ends of the high-pressure spray gun device 7 are fixedly connected to one side of the adjacent fixed base 1 respectively. The output end of the high-pressure spray gun device 7 is adapted to one side of the adjacent fan blade scoop 404.
[0035] As described above, the operator first starts the system, controlling the electric push rod 602 to drive the power motor 603 to move vertically upwards, so that the teeth on the outer ring of the driving gear 604 and the teeth on the outer ring of the driven gear 605 are precisely meshed, thus establishing the power transmission path. Then, the end of the drive shaft 2 furthest from the driven gear 605 is mechanically connected to an external generator via a chain or coupling, completing the connection of the power output end. Next, one output end of the generator is connected to the high-pressure spray gun 7 via a wire, so that a portion of the electrical energy generated by the generator during operation can be directly supplied to the high-pressure spray gun 7, while the other portion is sent to the energy storage battery for later use. After the electrical connection is completed, the power motor 603 is started, and its output shaft drives the drive gear 604 to rotate. Through gear meshing, the driven gear 605 rotates synchronously, driving the transmission shaft 2 fixedly connected to it to start rotating. This, in turn, drives the two fixed disks 3 mounted on the transmission shaft 2 to enter a rotating operating state, forming the initial kinetic energy input. After the system reaches a stable speed, the electric push rod 602 is controlled to move in the opposite direction, causing its output end to retract and driving the power motor 603 to move downward. This disengages the drive gear 604 from the driven gear 605, cutting off the external power source and realizing the transition of the device from external drive to self-sustaining operation. During the continuous counterclockwise rotation of the transmission shaft 2, when a certain telescopic adjustment mechanism 4 is activated... When the device reaches the nine o'clock position in the side view, the cylinder 401 corresponding to that position is triggered, its piston rod extends outward, pushing the connecting rod 402 and the counterweight ball 403 fixedly connected to it to move radially outward, increasing the mass distribution on that side, thereby generating an eccentric torque under the action of gravity, causing the telescopic adjustment mechanism 4 to continue moving towards the six o'clock position with rotation; when the telescopic adjustment mechanism 4 reaches the lowest position in the six o'clock position, the cylinder 401 actuates again, retracting the connecting rod 402 and the counterweight ball 403 inward, reducing its rotation radius, thereby reducing the work required to overcome gravity during the mechanism's rotation from the six o'clock to the three o'clock position, effectively reducing energy consumption; at the same time, the high-pressure spray gun device 7 receives power from the generator After receiving electrical power, the machine starts working, spraying high-speed airflow into the fan blade 404 located near the six o'clock position. The airflow impacts the concave curved surface of the fan blade 404, generating thrust and providing additional rotational acceleration for the telescopic adjustment mechanism 4, which is passing through the lowest point, helping it to smoothly overcome the rotational resistance zone. Throughout the rotation process, the lubrication mechanism 5 continues to function. The lubricant stored inside the storage tank 501 is evenly coated on the shaft surface of the drive shaft 2 through the sealing bushing 504, effectively reducing the frictional resistance between the drive shaft 2 and the support structure, reducing mechanical losses, and ensuring the smoothness and durability of the rotational motion. This achieves continuous rotational output by combining the periodic release of potential energy with external energy assistance, maintaining the stable operation of the power generation system.
[0036] This solution, through the inclusion of components such as cylinder 401, counterweight ball 403, and short rod 405 in the telescopic adjustment mechanism 4, achieves dynamic adjustment of mass distribution during rotation. It utilizes gravitational potential energy to generate a continuous eccentric torque, solving the problem that traditional potential energy power generation devices can only achieve one-time energy release and cannot form a stable continuous rotational output, thus improving the continuity of energy conversion and the system's self-driving capability. Through the electrical connection design between the high-pressure spray gun device 7 and the generator output, a portion of the generated power is fed back to provide auxiliary thrust, achieving closed-loop energy utilization. This effectively alleviates the deficiency of existing technologies that suffer from severe dependence on external energy due to the lack of an energy feedback mechanism, enhancing the system's energy self-sufficiency. The design of the cylinder 401 retracting the counterweight in six directions reduces the gravitational potential energy required to overcome during the return phase, reducing ineffective energy consumption and improving net energy output efficiency. The high-pressure spray gun device... The system 7 applies airflow thrust to the fan blade scoop 404 at key locations to supplement rotational kinetic energy, compensate for friction and air resistance losses in mechanical transmission, and further ensure the system's continuous operation under low input conditions. The synergistic action of the storage box 501, adding pipe 502, valve 503, and sealing bushing 504 in the lubrication mechanism 5 ensures sufficient lubrication of the drive shaft 2 during long-term operation, reduces energy loss and component wear caused by friction, and extends the service life of the equipment. The electric push rod 602 in the starting mechanism 6 controls the engagement and disengagement of the power motor 603 and the drive shaft 2, realizing safe and reliable starting and disengagement, and avoiding energy waste caused by continuous drive. The stabilizing base 8 enhances the stability of the overall structure and reduces the impact of vibration. The entire device can still output surplus electrical energy after deducting the energy consumption required for its own operation, meeting the needs of long-term, unattended, and low-maintenance distributed power generation.
[0037] Example 2: This example is basically the same as the previous example, except that the outer ring of the adding pipe 502 is fixedly connected to the valve 503, and the outer wall of the storage box 501 is fixedly connected to the inner wall of the adjacent fixed seat 1.
[0038] Both fixed discs 3 are fitted onto the outer ring of the drive shaft 2, and both sealing bushings 504 are fitted onto the outer ring of the drive shaft 2.
[0039] One of the fixed bases 1 is provided with a starting mechanism 6. The starting mechanism 6 includes a power motor 603. The output shaft of the power motor 603 is fixedly connected to a drive gear 604. The outer ring of the drive gear 604 is connected to a driven gear 605 through a snap-tooth meshing. One end of the driven gear 605 is fixedly connected to the extension end of the adjacent transmission shaft 2.
[0040] An electric push rod 602 is provided below the power motor 603, and the output end of the electric push rod 602 is fixedly connected to the bottom of the power motor 603.
[0041] As can be seen from the above, through the setting of the connection structure between the fixed base 1, the stable base 8, and the high-pressure spray gun 7 and the fixed base 1, the stable base 8 enhances the connection rigidity and stability between the entire device and the installation foundation during the working process, effectively suppressing vibration and shaking caused by the eccentric movement of the rotating parts, and improving the smoothness of operation; at the same time, the high-pressure spray gun 7 achieves position locking through the fixed connection between its two ends and the fixed base 1, ensuring that its output end can continuously and accurately align with the fan blade 404 at the six o'clock position, thereby providing stable auxiliary thrust during airflow injection, achieving the effect of improving the overall structural reliability of the device and ensuring the accuracy and continuity of energy auxiliary input. By adding the connection structure between the pipe 502, the valve 503, and the storage box 501 and the inner wall of the fixed base 1, during the working process, the operator can open the valve 502 to achieve the same result. 03. Controlling the timing and flow rate of lubricant replenishment avoids over- or under-replenishment, achieving controllable addition of lubricating medium; the storage tank 501 is firmly fixed inside the fixed base 1, ensuring its stable posture during device operation and preventing uneven distribution or leakage of lubricant due to shaking, thus facilitating maintenance and management and ensuring a continuous and stable supply of lubricating fluid to the system. Through the sleeve structure between the fixed plate 3 and the drive shaft 2, and between the sealing sleeve 504 and the drive shaft 2, the fixed plate 3 rotates synchronously with the drive shaft 2 during the working process, ensuring the consistency of the position of the telescopic adjustment mechanism 4 on the rotation path; the sealing sleeve 504 tightly fits the surface of the drive shaft 2, forming a dynamic seal during rotation, preventing lubricant leakage and blocking external dust from entering the storage tank 501, thus ensuring the linkage of the transmission system structure and the cleanliness of the lubrication environment.
[0042] Example 3: This example is basically the same as the previous example, except that a mounting base 601 is fixedly connected to one side of one of the fixed bases 1, and the top of the mounting base 601 is fixedly connected to the bottom of the electric push rod 602 by bolts.
[0043] A short rod 405 is fixedly connected to one side of the fan blade spoon 404, and one end of the short rod 405 is fixedly connected to one side of the adjacent counterweight ball 403.
[0044] As can be seen from the above, through the transmission connection structure between the power motor 603, the driving gear 604, the driven gear 605 and the transmission shaft 2 in the starting mechanism 6, in the working process, after the power motor 603 starts, the torque is transmitted to the transmission shaft 2 through the meshing of the driving gear 604 and the driven gear 605, realizing the initial acceleration start of the device. After the system gains sufficient inertia, it can disengage from the external drive, achieving the effect of providing reliable starting power for the device and realizing a smooth transition to a self-sustaining operating state. Through the connection structure between the power motor 603 and the electric push rod 602, in the working process, the electric push rod 602 drives the power motor 603 to move up and down through the extension and retraction action, thereby controlling the meshing and disengagement of the driving gear 604 and the driven gear 605, realizing the power input in the starting stage and automatic disengagement after the operation is stable, avoiding energy waste and mechanical wear caused by continuous drive, achieving the effect of precise control of power transmission on and off, improving the system automation level and operating safety. Through the mounting base 601 and the fixed base 1 The bolted connection between the electric push rods 602 and the motor push rods 602 ensures a stable support base for the electric push rods 602 during operation. This allows the push rods to maintain a stable posture without deflection or shaking during the pushing or retracting of the motor 603, ensuring precise meshing and reliable operation of the drive gear 604 and driven gear 605. This enhances the overall structural rigidity of the starting mechanism 6 and ensures power transmission accuracy and operational stability. The fixed connection between the fan blade 404, short rod 405, and counterweight ball 403 ensures a rigid linkage between the fan blade 404 and counterweight ball 403 during operation. This allows the thrust generated when the high-pressure spray gun 7 impacts the fan blade 404 to be directly transmitted to the counterweight ball 403, providing additional rotational acceleration at critical locations. Simultaneously, it ensures structural consistency of all components of the telescopic adjustment mechanism 4 during high-speed rotation, enhancing energy-assisted response capabilities and improving the stability of component coordinated operation.
[0045] The embodiments of the present invention are given for the purposes of illustration and description. Although embodiments of the present invention have been shown and described above, it is understood that the above embodiments are exemplary and should not be construed as limiting the present invention. Those skilled in the art can make changes, modifications, substitutions and variations to the above embodiments within the scope of the present invention.
Claims
1. A potential energy to mechanical energy power generation device, comprising two fixed bases (1), characterized in that: A fixed plate (3) is provided on one side of each of the two fixed seats (1), and a plurality of telescopic adjustment mechanisms (4) are provided between the two fixed plates (3). The telescopic adjustment mechanism (4) includes a cylinder (401). Limiting rods (406) are fixedly connected to both sides of the outer wall of the cylinder (401). One end of the limiting rod (406) is fixedly connected to one side of the adjacent fixed plate (3). A connecting rod (402) is fixedly connected to the output end of the cylinder (401), and a counterweight ball (403) is fixedly connected to one end of the connecting rod (402). A fan blade spoon (404) is provided on one side of the counterweight ball (403). A drive shaft (2) is horizontally provided between the two fixed plates (3). The inner cavity of the fixed base (1) is provided with a lubrication mechanism (5), the lubrication mechanism (5) includes a storage box (501), the top of the storage box (501) is fixedly connected with an adding tube (502), and sealing bushings (504) are respectively provided on both sides of the inner cavity of the storage box (501). One end of the sealing bushing (504) extends through the side wall of the adjacent storage box (501) to one side of the storage box (501). The two ends of the drive shaft (2) pass through the inner cavity of the adjacent fixed plate (3) and the inner cavity of the corresponding storage box (501) respectively and extend to one side of the storage box (501). A high-pressure spray gun device (7) is provided between the two fixed seats (1).
2. The potential energy to mechanical energy conversion power generation device as described in claim 1, characterized in that: The bottom of the fixed base (1) is fixedly connected to a stable base (8), and the two ends of the high-pressure spray gun device (7) are respectively fixedly connected to one side of the adjacent fixed base (1). The output end of the high-pressure spray gun device (7) is adapted to one side of the adjacent fan blade spoon (404).
3. The potential energy to mechanical energy conversion power generation device as described in claim 1, characterized in that: A valve (503) is fixedly connected to the outer ring of the adding tube (502), and the outer wall of the storage box (501) is fixedly connected to the inner wall of the adjacent fixed seat (1).
4. The potential energy to mechanical energy conversion power generation device as described in claim 1, characterized in that: Both of the fixed discs (3) are fitted onto the outer ring of the drive shaft (2), and both of the sealing bushings (504) are fitted onto the outer ring of the drive shaft (2).
5. The potential energy to mechanical energy conversion power generation device as described in claim 1, characterized in that: One of the fixed bases (1) is provided with a starting mechanism (6) on one side. The starting mechanism (6) includes a power motor (603). The output shaft of the power motor (603) is fixedly connected to a drive gear (604), and the outer ring of the drive gear (604) is connected to a driven gear (605) through a snap-tooth meshing. One end of the driven gear (605) is fixedly connected to the extension end of the adjacent transmission shaft (2).
6. The potential energy to mechanical energy conversion power generation device as described in claim 5, characterized in that: An electric push rod (602) is provided below the power motor (603), and the output end of the electric push rod (602) is fixedly connected to the bottom of the power motor (603).
7. The potential energy to mechanical energy conversion power generation device as described in claim 6, characterized in that: One of the fixed bases (1) is fixedly connected to a mounting base (601) on one side, and the top of the mounting base (601) is fixedly connected to the bottom of the electric push rod (602) by bolts.
8. The potential energy to mechanical energy conversion power generation device as described in claim 1, characterized in that: A short rod (405) is fixedly connected to one side of the fan blade spoon (404), and one end of the short rod (405) is fixedly connected to one side of the adjacent counterweight ball (403).