Power generation device and system utilizing continuous fluctuation of seawater

By combining a first baffle, a protective top plate, a filter shell, and a deflector, a seawater continuous wave power generation device is developed, which solves the problem of energy waste, achieves efficient all-weather power generation, adapts to strong winds and waves, and reduces operation and maintenance costs.

CN122014487APending Publication Date: 2026-05-12王悦民
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
王悦民
Filing Date
2026-02-10
Publication Date
2026-05-12

AI Technical Summary

Technical Problem

Existing continuous wave power generation devices for seawater have a larger swing amplitude and a smaller angle with the horizontal plane, resulting in a smaller force-bearing area and thus energy waste.

Method used

It adopts a combined structure of a first baffle, a protective top plate, a filter shell, a deflector, a support plate, a sealing plate, a spring, a bevel gear, and a generator. The rotation of the deflector drives the spring to store elastic potential energy, which drives the bevel gear transmission system to generate electricity. It is also equipped with a waterproof servo motor to clean impurities and uses a balance block stabilization device.

Benefits of technology

It improves energy conversion efficiency, enables all-wave, all-weather power generation, reduces operation and maintenance costs, adapts to high wind and wave environments, and prevents energy waste and equipment damage.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of fluctuation power generation, and discloses a power generation device and system utilizing continuous fluctuation of seawater, the power generation device comprises a first baffle, a protection top plate is fixedly connected to the interior of the first baffle, a filter shell is fixedly connected to the bottom end of the protection top plate, and a deflection gyroscope is rotatably connected to the interior of the filter shell; a supporting plate is fixedly connected to the exterior of the deviation gyroscope, the exterior of the deviation gyroscope and the exterior of the supporting plate are rotatably connected to the interior of the filtering shell, a sealing plate is rotatably connected to the exterior of the deviation gyroscope, the exterior of the sealing plate is fixedly connected to the interior of the protection top plate, and a spring is fixedly connected to the top end of the deviation gyroscope. The top end of the spring is fixedly connected with a first bevel gear, and the tooth end of the first bevel gear is connected with a second bevel gear in an engaged mode. The supporting plate can make multi-angle contact with sea waves to push the deflection gyroscope to rotate, so that the fluctuation power generation effect is achieved, full-wave and all-weather power generation can be achieved, the anti-storm performance is excellent, and energy waste is effectively prevented.
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Description

Technical Field

[0001] This invention relates to the field of wave power generation technology, specifically to a power generation device and system that utilizes the continuous fluctuations of seawater. Background Technology

[0002] The core of ocean wave power generation devices lies in cleverly capturing the kinetic and potential energy of ocean waves. Through structures such as floating buoys, fixed air chambers, or underwater pendulums, they reciprocate with the waves, thereby driving internal hydraulic systems, turbines, or generators. For the first time, the irregular natural pulsations of the ocean are converted into stable electrical energy, providing continuous clean power to islands far from the mainland and coastal areas with high energy demand. This represents a blue energy source with extremely broad prospects.

[0003] Existing power generation devices that generate electricity from continuously fluctuating seawater convert the up-and-down movement and reciprocating thrust of ocean waves into mechanical kinetic energy through devices such as oscillating floats, air chambers, pendulums, or multi-floating hinge structures. However, as the amplitude of the oscillation increases and the angle with the horizontal plane decreases, the area of ​​force application decreases, making it impossible to maintain the maximum force state and resulting in energy waste. Summary of the Invention

[0004] To address the shortcomings of existing technologies, this invention provides a power generation device and system that utilizes the continuous fluctuation of seawater, thus solving the problem of energy waste caused by the larger the amplitude of the fluctuation and the smaller the angle with the horizontal plane in existing power generation devices that utilize the continuous fluctuation of seawater.

[0005] To achieve the above objectives, the present invention provides the following technical solution: a power generation device utilizing the continuous fluctuation of seawater, comprising a first baffle, a protective top plate fixedly connected inside the first baffle, a filter housing fixedly connected to the bottom end of the protective top plate, a deflector rotatably connected inside the filter housing, a support plate fixedly connected outside the deflector rotatably, the deflector rotatably and the support plate rotatably connected inside the filter housing, a sealing plate rotatably connected outside the deflector rotatably, the sealing plate fixedly connected outside the protective top plate, a mainspring fixedly connected to the top end of the deflector rotatably, a first bevel gear fixedly connected to the top end of the mainspring, a second bevel gear meshing with the teeth of the first bevel gear, a rotating shaft fixedly connected inside the second bevel gear, and a power generation component disposed outside the rotating shaft.

[0006] The above scheme is as follows: the first baffle is an external protective structure that provides physical protection for internal components, preventing external collisions or the intrusion of debris. The protective top plate is fixed inside the first baffle, which not only strengthens the overall structural rigidity but also provides an installation reference for the filter housing and sealing plate. The filter housing is connected to the bottom of the protective top plate to form a closed filtration space. The top of the deflector is connected to a spring, which can be wound up to store elastic potential energy when rotating, providing an energy basis for subsequent power transmission. At the same time, the restoring force of the spring can also help the deflector return to its initial position. Then, the spring will drive the first bevel gear, the second bevel gear, and the rotating shaft to rotate, and drive the generator to generate electricity.

[0007] Preferably, the power generation component includes a first gear, the inside of which is fixedly connected to the outside of the rotating shaft, the teeth of the first gear meshing with a second gear, and the inside of the second gear being fixedly connected to a generator.

[0008] Preferably, the spring is externally locked to a support frame, and the bottom end of the support frame is fixedly connected to the top end of the sealing plate.

[0009] Preferably, the first bevel gear and the second bevel gear are externally rotatably connected to the inside of the protective top plate, and both ends of the rotating shaft are rotatably connected to the inside of the protective top plate.

[0010] Preferably, a sealing frame is fixedly connected to the bottom end of the filter housing, and a cleaning component is provided inside the sealing frame.

[0011] Preferably, the cleaning assembly includes a waterproof servo motor, which is externally fixedly connected to the inside of the sealing frame. A first rotating bevel gear is fixedly connected to the output end of the waterproof servo motor. A second rotating bevel gear is meshed with the tooth end of the first rotating bevel gear. A threaded rod is fixedly connected to the top end of the second rotating bevel gear. A sliding blade is threadedly connected to the external end of the threaded rod.

[0012] Preferably, the sliding blade is internally slidably connected to the outside of the filter housing, the first and second rotating bevel gears are externally rotatably connected to the inside of the sealing frame, and the top end of the threaded rod is rotatably connected to the inside of the first baffle and the sealing frame.

[0013] Preferably, a support rod is fixedly connected inside the first baffle, and a second baffle is fixedly connected to the bottom end of the support rod.

[0014] Preferably, a balance block is fixedly connected to the bottom end of the second baffle.

[0015] A method utilizing a continuously fluctuating seawater system includes the following steps:

[0016] S1: Power generation module, used to drive a generator to generate electricity by the wave of seawater. The power generation module includes a deflector, a support plate, a spring, a gear transmission mechanism, and a power generation component. The support plate is configured to contact the waves at multiple angles to drive the deflector to rotate. The rotation of the deflector drives the power generation component to generate electricity through the spring and the gear transmission mechanism.

[0017] S2: Cleaning module, used to clean impurities outside the filter housing of the power generation module. The cleaning module includes a waterproof servo motor, a gear transmission mechanism and a sliding blade, wherein the waterproof servo motor drives the gear transmission mechanism to move the sliding blade to scrape off impurities.

[0018] S3: Stabilization module for preventing the power generation system from tilting and overturning. The stabilization module includes a second baffle and a balance block. The second baffle is connected to the first baffle via a support rod. The balance block is fixed to the bottom of the second baffle to lower the center of gravity and provide a restoring torque.

[0019] This invention provides a power generation device and system that utilizes the continuous fluctuations of seawater. It has the following beneficial effects:

[0020] 1. This invention allows the support plate to contact the waves at multiple angles, driving the deflector to rotate. Simultaneously, the mainspring is tightened by the rotation of the deflector, which in turn drives the first bevel gear to rotate. Subsequently, the second bevel gear rotates under the transmission of the rotating shaft and the first gear, and the second gear meshes with the first gear, driving the generator to generate electricity, thereby achieving the effect of wave power generation. The overall conversion efficiency is far higher than that of traditional pendulum and multi-floating body hinge structures. Even in the short term when there are no waves, the energy stored in the mainspring can still continuously drive the generator, enabling all-wave, all-weather power generation. It has excellent wind and wave resistance and effectively prevents energy waste.

[0021] 2. The waterproof servo motor of this invention drives the first rotating bevel gear to rotate, and under the transmission of the first rotating bevel gear, the second rotating bevel gear and the threaded rod rotate, causing the sliding blade to slide. The sliding blade scrapes off the impurities on the surface of the filter housing, thereby achieving the effect of cleaning the external impurities of the filter housing. This effectively reduces the number of times manual underwater cleaning is required, which reduces maintenance costs and avoids equipment downtime losses that may occur during manual maintenance.

[0022] 3. Under the action of the second baffle and the balance block, the present invention can prevent the first baffle from overturning when it encounters large waves, and at the same time, it can stabilize the first baffle in the seawater. The balance block can drag the float by its own weight, reducing the oscillation amplitude of the float when there are large winds and waves. The second baffle is used to support the balance block and fix the support rod on the first baffle, thereby preventing the device from tilting and overturning. It effectively avoids the impact of excessive tilting on the operation of the power generation equipment and is suitable for use in areas with strong winds and large waves. Attached Figure Description

[0023] Figure 1 This is a three-dimensional structural view of the present invention;

[0024] Figure 2 This is a partial structural diagram of the second baffle of the present invention;

[0025] Figure 3 This is a partial structural diagram of the filter housing of the present invention;

[0026] Figure 4 This is a schematic diagram of a partial structure of the deflector of the present invention;

[0027] Figure 5 This is a partial structural diagram of the sealing plate of the present invention;

[0028] Figure 6 for Figure 5 Enlarged view of point A in the middle;

[0029] Figure 7 This is a partial structural diagram of the sealing frame of the present invention;

[0030] Figure 8 for Figure 7 Enlarged diagram of point B in the middle.

[0031] The components include: 1. First baffle; 2. Protective top plate; 3. Filter housing; 4. Deflector; 5. Support plate; 6. Sealing plate; 7. Spring; 8. First bevel gear; 9. Support frame; 10. Second bevel gear; 11. Rotating shaft; 12. Generator assembly; 121. First gear; 122. Second gear; 123. Generator; 13. Sealing frame; 14. Cleaning assembly; 141. Waterproof servo motor; 142. First rotating bevel gear; 143. Second rotating bevel gear; 144. Threaded rod; 145. Sliding blade; 15. Support rod; 16. Second baffle; 17. Balance block. Detailed Implementation

[0032] The technical solution of the present invention will now be clearly and completely described with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0033] Please see the appendix Figure 1 -Appendix Figure 3This invention provides a power generation device utilizing the continuous fluctuation of seawater, comprising a first baffle 1, a protective top plate 2 fixedly connected inside the first baffle 1, a filter housing 3 fixedly connected to the bottom end of the protective top plate 2, a deflector 4 rotatably connected inside the filter housing 3, a support plate 5 fixedly connected to the outside of the deflector 4, the deflector 4 and the support plate 5 rotatably connected inside the filter housing 3, a sealing plate 6 rotatably connected to the outside of the deflector 4, the sealing plate 6 fixedly connected to the outside of the protective top plate 2, a spring 7 fixedly connected to the top end of the deflector 4, a first bevel gear 8 fixedly connected to the top end of the spring 7, a second bevel gear 10 meshing with the tooth end of the first bevel gear 8, a rotating shaft 11 fixedly connected inside the second bevel gear 10, and a power generation component 12 disposed outside the rotating shaft 11.

[0034] Specifically, the first baffle 1 is used to support and fix the protective top plate 2, and the protective top plate 2 is used to support and fix the filter housing 3. The first baffle 1 is made of lightweight buoyancy material, allowing it to float naturally on the sea surface. When the seawater fluctuates and the liquid level rises, the first baffle 1 rises synchronously under the action of buoyancy. In turn, the filter housing 3 provides rotation space for the deflector 4 and the support plate 5. The support plate 5 makes contact with the waves at multiple angles, effectively improving the rotation efficiency of the deflector 4. The filter screen structure inside the filter housing 3 blocks sand, shells, aquatic plants, plastic fragments and other debris in the ocean, preventing these impurities from entering the device and avoiding jamming, wear and tear, or even transmission problems when the deflector 4 rotates. To address the issue of dynamic failure, the top plate 2 is used to support and fix the sealing plate 6. The sealing plate 6 can also isolate the seawater inside the filter housing 3, effectively preventing seawater from entering the top plate 2 and corroding the rest of the structure. Since the direction and intensity of seawater fluctuations are irregular, the bidirectional rotation characteristics of the deflector 4 can adapt to this disordered fluctuation, maximizing the capture of wave energy of different directions and intensities, and avoiding energy waste. After receiving the rotational power transmitted by the deflector 4, the spring 7 converts the dispersed and unstable wave mechanical energy into its own elastic potential energy through tightening and deformation. When the deflector 4 stops rotating, it can also drive the generator 123 to generate electricity.

[0035] Please see the appendix Figure 3 -Appendix Figure 5 The power generation component 12 includes a first gear 121, which is internally fixedly connected to the outside of the rotating shaft 11. The teeth of the first gear 121 are meshed with a second gear 122, and the generator 123 is internally fixedly connected to the second gear 122.

[0036] Specifically, the generator 123 has a connecting wire and a power detector. When the generator 123 generates electricity, the current will enter the other equipment through the connecting wire, and the power detector can detect the current in real time. The connecting wire is fixed inside the protective top plate 2, which effectively prevents the connecting wire from shaking under the impact of waves. The protective top plate 2 is used to support the rotating shaft 11 to rotate and to support the generator 123 to fix it.

[0037] Please see the appendix Figure 3 -Appendix Figure 5 The spring 7 is externally locked to a support frame 9, and the bottom end of the support frame 9 is fixedly connected to the top end of the sealing plate 6;

[0038] Specifically, the mainspring 7 is tightened by the rotation of the deflector 4, and simultaneously tightened under the protection of the support frame 9. The support frame 9 is then fixed to the sealing plate 6, effectively preventing the mainspring 7 from shifting under the impact of waves. Furthermore, the sealing plate 6, through its own structure, can prevent high-salt seawater from seeping into the interior of the protective top plate 2. The support frame 9 can provide an installation reference for other structures, ensuring the alignment of the mainspring 7 and the deflector 4, reducing friction and deviation during transmission, ensuring the uniformity of energy release from the mainspring 7, and thus improving the voltage stability of the generator 123.

[0039] Please see the appendix Figure 3 -Appendix Figure 5 The first bevel gear 8 and the second bevel gear 10 are externally rotatably connected to the inside of the protective top plate 2, and both ends of the rotating shaft 11 are rotatably connected to the inside of the protective top plate 2.

[0040] Specifically, the protective top plate 2 provides rotation space for the first bevel gear 8 and the second bevel gear 10, and the rotating shaft 11 will rotate inside the protective top plate 2 under the drive of the second bevel gear 10. The protective top plate 2 is made of high-strength metal and can directly withstand the impact of large waves and ocean waves, preventing the top structure from being broken or deformed.

[0041] Please see the appendix Figure 6 -Appendix Figure 8 A sealing frame 13 is fixedly connected to the bottom of the filter housing 3, and a cleaning component 14 is provided inside the sealing frame 13;

[0042] Specifically, the filter housing 3 is used to support and fix the sealing frame 13. However, there are impurities in the ocean such as shells, sand, marine life remains, and plastic fragments discarded by people. The filter screen structure of the filter housing 3 can intercept these impurities and prevent them from entering the device. For example, the rotating shaft of the deflector 4 has a small gap and requires high operating precision. If impurities enter, they may cause jamming, wear, or even transmission failure. The filter housing 3 can avoid such failures from the source. At the same time, the sealing frame 13 is used to provide allowable space for the cleaning component 14 and runs on the surface of the filter housing 3. The sealing frame 13 can isolate seawater and moisture, protect the internal structure, and prevent short circuits, corrosion, or damage.

[0043] Please see the appendix Figure 6 -Appendix Figure 8 The cleaning component 14 includes a waterproof servo motor 141, which is externally fixedly connected to the inside of the sealing frame 13. The output end of the waterproof servo motor 141 is fixedly connected to a first rotating bevel gear 142, and the tooth end of the first rotating bevel gear 142 is meshed with a second rotating bevel gear 143. The top end of the second rotating bevel gear 143 is fixedly connected to a threaded rod 144, and a sliding blade 145 is externally threaded onto the threaded rod 144.

[0044] Specifically, the sealing frame 13 is used to support and fix the waterproof servo motor 141, and the waterproof servo motor 141 is used to drive the first rotating bevel gear 142 to rotate. The first rotating bevel gear 142 then drives the second rotating bevel gear 143 and the threaded rod 144 to rotate. Under the support of the sealing frame 13, the threaded rod 144 rotates, and the sliding blade 145 slides on the surface of the filter housing 3 under the drive of the threaded rod 144. The forward and reverse rotation of the waterproof servo motor 141 allows the sliding blade 145 to slide up and down. After long-term use, the filter screen of the filter housing 3 is easily damaged by seashells, etc. Sediment and marine debris can clog water flow, reducing energy capture efficiency. As the sliding blade 145 moves up and down, it removes impurities from the surface of the filter housing 3. Meanwhile, the waterproof servo motor 141 uses a multi-seal design and marine-grade corrosion-resistant materials, achieving an IP65 or higher protection rating. It can effectively resist seawater erosion and high-pressure impact. Its housing is mostly made of stainless steel or special aluminum alloy with an anti-corrosion coating. The internal components are also specially protected to prevent short circuits and rust caused by high-salt seawater to the motor's internal circuitry and transmission structure. It can also withstand the pressure at a certain depth underwater.

[0045] Please see the appendix Figure 6 -Appendix Figure 8 The sliding blade 145 is internally slidably connected to the outside of the filter housing 3. The first rotating bevel gear 142 and the second rotating bevel gear 143 are externally rotatably connected to the inside of the sealing frame 13. The top end of the threaded rod 144 is rotatably connected to the inside of the first baffle 1 and the sealing frame 13.

[0046] Specifically, the sealing frame 13 provides rotation space for the first rotating bevel gear 142, the second rotating bevel gear 143, and the threaded rod 144, and there is a sealing structure between the sealing frame 13 and the threaded rod 144, which effectively prevents seawater from entering the interior of the sealing frame 13 when the threaded rod 144 rotates. At the same time, the first baffle 1 provides rotation space for the threaded rod 144, which effectively prevents the threaded rod 144 from rotating off-center. As a result, the threaded rod 144 has a self-locking ability, which effectively prevents the sliding blade 145 from sliding under the action of the waves.

[0047] Please see the appendix Figure 6 -Appendix Figure 8 A support rod 15 is fixedly connected inside the first baffle 1, and a second baffle 16 is fixedly connected to the bottom end of the support rod 15.

[0048] Specifically, the first baffle 1 is used to support and fix the support rod 15, and then the support rod 15 is fixedly connected to the second baffle 16. Under the action of the second baffle 16, the first baffle 1 can effectively resist the impact of the waves.

[0049] Please see the appendix Figure 6 -Appendix Figure 8 A balance block 17 is fixedly connected to the bottom end of the second baffle 16;

[0050] Specifically, by installing the balance block 17 below the second baffle 16, a bottom-heavy structure is formed, which lowers the overall center of gravity. When the center of gravity is lower than the center of buoyancy, a reverse restoring torque is generated, so even if the device tilts due to the impact of large waves, it can automatically return to the correct position and avoid tipping over.

[0051] Workflow: When power generation is required, the deflector 4 is first aligned with the direction of the wave movement. The waves then pass through the filter housing 3, causing the deflector 4 and support plate 5 to rotate. Simultaneously, the deflector 4 drives the mainspring 7 to lock, which in turn drives the first bevel gear 8 to rotate. The first bevel gear 8 then drives the second bevel gear 10, rotating shaft 11, and first gear 121 to rotate synchronously. The first gear 121 then meshes with the second gear 122, starting the generator 123 to produce current. This current is then transmitted to the storage device via a connecting wire. Simultaneously, the current status is detected by a power detector. When the current is significantly higher than expected, it will alert maintenance personnel to equipment malfunction. When the waves stop, the mainspring 7 will release the locking force, which will drive the first bevel gear 8, the deflector 4, and the support plate 5 to rotate back to their original positions. Then, the first bevel gear 8 will drive the generator 123 to generate electricity again through the transmission of the second bevel gear 10 and the rotating shaft 11, thus achieving the effect of wave power generation. The overall conversion efficiency is much higher than that of traditional pendulum and multi-floating body hinge structures. Even if there are no waves for a short period of time, the energy stored in the mainspring 7 can still continuously drive the generator 123, which can achieve all-wave, all-weather power generation, with excellent wind and wave resistance and effectively prevent energy waste.

[0052] When it is necessary to clean the debris attached to the outside of the filter housing 3, the waterproof servo motor 141 is first started to drive the first rotating bevel gear 142 to rotate. At the same time, the first rotating bevel gear 142 will drive the second rotating bevel gear 143 and the threaded rod 144 to rotate. Under the drive of the threaded rod 144, the sliding blade 145 will slide on the outside of the filter housing 3. When the sliding blade 145 slides, it will scrape off the impurities on the outside of the filter housing 3. By rotating the waterproof servo motor 141 in the opposite direction, the sliding blade 145 will be driven to slide downward, thereby achieving the effect of cleaning the impurities on the outside of the filter housing 3. This effectively reduces the number of times manual underwater cleaning is required, which reduces maintenance costs and avoids equipment downtime losses that may occur during manual maintenance.

[0053] When the device needs to tilt and overturn to withstand the impact of waves, the second baffle 16 and the balance block 17 can provide downward support to the first baffle 1. When the waves hit the filter housing 3, the filter housing 3 will cause the protective top plate 2 and the first baffle 1 to swing. In turn, the first baffle 1 will cause the support rod 15, the second baffle 16, and the balance block 17 to swing synchronously, which can prevent the first baffle 1 from swinging too much and tilting and overturning. This can prevent the device from tilting and overturning, effectively avoiding the impact of excessive tilting on the operation of the power generation equipment. It is suitable for use in areas with strong winds and large waves.

[0054] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A power generation device utilizing the continuous fluctuations of seawater, comprising a first baffle (1), characterized in that: A protective top plate (2) is fixedly connected inside the first baffle (1). A filter housing (3) is fixedly connected to the bottom end of the protective top plate (2). A deflector (4) is rotatably connected inside the filter housing (3). A support plate (5) is fixedly connected to the outside of the deflector (4). The deflector (4) and the support plate (5) are rotatably connected inside the filter housing (3). A sealing plate (6) is rotatably connected to the outside of the deflector (4). The sealing plate (6) is fixedly connected to the inside of the protective top plate (2). A spring (7) is fixedly connected to the top end of the deflector (4). A first bevel gear (8) is fixedly connected to the top end of the spring (7). A second bevel gear (10) is meshed with the tooth end of the first bevel gear (8). A rotating shaft (11) is fixedly connected inside the second bevel gear (10). A power generation component (12) is provided outside the rotating shaft (11).

2. The power generation device utilizing continuous seawater fluctuations according to claim 1, characterized in that: The power generation component (12) includes a first gear (121), the inside of which is fixedly connected to the outside of the rotating shaft (11), the tooth end of the first gear (121) is meshed with a second gear (122), and the inside of the second gear (122) is fixedly connected to a generator (123).

3. A power generation device utilizing continuous seawater fluctuations according to claim 1, characterized in that: The spring (7) is externally locked to a support frame (9), the bottom end of which is fixedly connected to the top end of the sealing plate (6).

4. A power generation device utilizing continuous seawater fluctuations according to claim 1, characterized in that: The first bevel gear (8) and the second bevel gear (10) are externally rotatably connected to the inside of the protective top plate (2), and the two ends of the rotating shaft (11) are rotatably connected to the inside of the protective top plate (2).

5. A power generation device utilizing continuous seawater fluctuations according to claim 1, characterized in that: A sealing frame (13) is fixedly connected to the bottom of the filter housing (3), and a cleaning component (14) is provided inside the sealing frame (13).

6. A power generation device utilizing continuous seawater fluctuations according to claim 5, characterized in that: The cleaning assembly (14) includes a waterproof servo motor (141), which is externally fixedly connected to the inside of the sealing frame (13). The output end of the waterproof servo motor (141) is fixedly connected to a first rotating bevel gear (142), and the tooth end of the first rotating bevel gear (142) is meshed with a second rotating bevel gear (143). The top end of the second rotating bevel gear (143) is fixedly connected to a threaded rod (144), and the external thread of the threaded rod (144) is connected to a sliding blade (145).

7. A power generation device utilizing continuous seawater fluctuations according to claim 6, characterized in that: The sliding blade (145) is internally slidably connected to the outside of the filter housing (3), the first rotating bevel gear (142) and the second rotating bevel gear (143) are externally rotatably connected to the inside of the sealing frame (13), and the top end of the threaded rod (144) is rotatably connected to the inside of the first baffle (1) and the sealing frame (13).

8. A power generation device utilizing continuous seawater fluctuations according to claim 1, characterized in that: The first baffle (1) is fixedly connected to a support rod (15), and the bottom end of the support rod (15) is fixedly connected to a second baffle (16).

9. A power generation device utilizing continuous seawater fluctuations according to claim 8, characterized in that: The bottom end of the second baffle (16) is fixedly connected to a balance block (17).

10. A system utilizing continuous seawater fluctuations according to claim 1, characterized in that, For a power generation device utilizing continuous seawater fluctuations as described in any one of claims 1-9, the method comprises the following steps: S1: Power generation module for driving a generator (123) to generate electricity by the wave of seawater. The power generation module includes a deflector (4), a support plate (5), a spring (7), a gear transmission mechanism, and a power generation component (12). The support plate (5) is configured to contact the waves at multiple angles to drive the deflector (4) to rotate. The rotation of the deflector (4) drives the power generation component (12) to generate electricity through the spring (7) and the gear transmission mechanism. S2: Cleaning module, used to clean impurities outside the filter housing (3) of the power generation module. The cleaning module includes a waterproof servo motor (141), a gear transmission mechanism and a sliding blade (145), wherein the waterproof servo motor (141) drives the gear transmission mechanism to move the sliding blade (145) to scrape off impurities. S3: Stabilization module for preventing the power generation system from tilting and overturning. The stabilization module includes a second baffle (16) and a balance block (17), wherein the second baffle (16) is connected to the first baffle (1) by a support rod (15), and the balance block (17) is fixed to the bottom of the second baffle (16) to lower the center of gravity and provide a restoring torque.