Water wave lever power generation system device

By using lever walls, limit switches, and a one-way gear system, the problem of lever oscillation caused by irregular wave motion was solved, achieving efficient water wave power generation conversion and enhancing the generator's output power and system stability.

CN117072366BActive Publication Date: 2025-11-11WUNING WUWEI ENVIRONMENTAL PROTECTION HOME FURNISHING CO LTD
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Patent Information

Application Number
CN202311192414.4
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-09-15
Publication Date
2025-11-11
Estimated Expiration
2043-09-15

AI Technical Summary

Technical Problem

In existing mechanical wave power generation systems, the irregular movement of waves causes the levers to swing left and right, affecting the conversion efficiency.

Method used

The system employs a lever wall system, a limit system, and a one-way gear system. A buoy drives the lever to move up and down, the limit system restricts the left and right swing of the lever, and the one-way gear system converts the lever's power into the rotational power of the gears to drive the generator.

Benefits of technology

It improves the conversion efficiency of water wave power generation, ensures the stable movement of the lever, enhances the output power of the generator, and increases the number of power generation systems through the lever principle.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses a water wave lever power generation system device and relates to the field of power generation, which comprises a buoy, a lever wall system, a limiting system, a fixed system and a one-way gear system. The upper surface of the buoy is connected with the lever wall system arranged obliquely. The limiting system is arranged at the middle section of the lever wall system. The one-way gear system is arranged at the end of the lever wall system far from the buoy. The fixed system is arranged at the side of the lever wall system close to the one-way gear system. The bottom of the fixed system and the one-way gear system is provided with a bottom plate. The upper surface of the bottom plate is provided with a generator, a ballast, a storage battery and an inverter in sequence at the side of the one-way gear system. The application can use the fluctuation of water waves as power, convert the up-down power of the lever into the rotating power of the gear to drive the generator to work, and avoid the left-right swing of the lever through the limiting system, so that the conversion efficiency is ensured.
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Description

Technical Field

[0001] This invention relates primarily to the field of power generation technology, specifically to a water wave lever power generation system device. Background Technology

[0002] With the rapid economic development, energy supplies are becoming increasingly strained, and renewable energy is receiving widespread attention, especially in the power industry. Finding new energy sources to replace traditional ones has become an inevitable trend. Wave energy, as an emerging renewable energy source, is a near-infinite energy resource with broad prospects and enormous potential.

[0003] Wave power generation can be categorized into pneumatic, hydraulic, and mechanical types. The pneumatic type converts wave energy into air energy, which is then used by a turbine to drive a generator. The hydraulic type converts wave energy into liquid pressure energy, which is then used by an oil turbine or water turbine to drive a generator. The mechanical type converts wave energy into mechanical energy, which is then used to drive a generator. Each of these three types has its advantages and disadvantages. The existing mechanical type collects and transmits the wave energy to a turntable using mechanical means such as floats, loop levers, and crankshafts. The turntable then drives the generator set to generate electricity. There is no restriction on the levers. However, waves have an irregular motion pattern, and under the action of waves, they are prone to swaying from side to side, which affects the force driving the turntable and reduces the conversion efficiency. Summary of the Invention

[0004] Therefore, the purpose of this invention is to provide a water wave lever power generation system device to solve the technical problems mentioned in the background art.

[0005] To achieve the above objectives, the present invention provides the following technical solution:

[0006] A wave-driven lever power generation system includes a buoy, a lever wall system, a limiting system, a fixed support system, and a one-way gear system. The upper surface of the buoy is connected to the inclined lever wall system. The limiting system is installed in the middle section of the lever wall system. The one-way gear system is located at the end of the lever wall system away from the buoy. The fixed support system is installed on the side of the lever wall system close to the one-way gear system. A base plate is provided at the bottom of the fixed support system and the one-way gear system. A generator, a ballast, a battery, and an inverter are sequentially arranged on the upper surface of the base plate on one side of the one-way gear system.

[0007] The lever system includes a lever, one end of which is connected to a snap ring. The snap ring is connected to a buoy via a drive assembly. The limiting system includes a limiting frame, which is integrally composed of a vertical rod and a diagonal rod. The top of both the vertical rod and the diagonal rod has a movable slot, and the lever passes through both movable slots. The fixing system includes a fixing frame, the top of which is movably mounted with a movable shaft. The lower surface of the lever is integrally connected to the movable shaft. The one-way gear system includes a power assembly and a one-way gear. The power assembly is connected to the other end of the lever, and the drive end of the power assembly is connected to the one-way gear. The one-way gear is connected to a generator via a transmission chain.

[0008] Specifically, the buoy is designed with a flat upper surface and an arc-shaped lower surface. The buoy is filled with foam, and a pull ring is integrally connected to the center of the upper surface. The snap ring consists of two movable semi-rings. One end of each of the two semi-rings has a storage groove and a plug-in groove on its two side walls. A plug-in rod is fixedly connected to each of the two plug-in grooves, and the storage groove and the plug-in groove cooperate with each other.

[0009] Specifically, the driving component includes a movable through groove formed inside a semi-ring. Both ends of the movable through groove communicate with a receiving groove. A mounting shaft is provided in the middle of the movable through groove. A turbine is fixedly mounted on the mounting shaft. Mounting plates are provided through the outer walls of both ends of the mounting shaft, and threaded rods are welded to both ends of the mounting shaft. Sleeves are threaded onto both threaded rods. Locking blocks are connected to the ends of the two sleeves through the movable through groove. The two locking blocks are located in the receiving groove and the insertion groove, and each locking block has two through holes at the insertion groove. Each through hole cooperates with the insertion rod.

[0010] Specifically, in this technical solution, a limiting groove is provided at the bottom of the movable channel. A limiting plate is integrally connected to the bottom of the two sleeves near the turbine. Both limiting plates are slidably connected to the limiting groove. A worm is installed at the bottom of the limiting groove. The worm meshes with the turbine. A connecting rod is fixedly connected to one end of the worm. A rotating handle is fixedly connected to the end of the connecting rod through a semi-ring. Each mounting plate is fixedly connected to the top wall of the movable channel.

[0011] Specifically, in this technical solution, several grooves are provided on the inner walls of both sides of the two movable channels, and rollers are movably installed in each of the grooves. The outer walls of the rollers are in contact with the side walls of the levers.

[0012] Specifically, in this technical solution, the power component includes a rotating shaft, the end of the lever is movably sleeved on the rotating shaft, both ends of the rotating shaft are fixedly sleeved with fixing plates, one end face of the rotating shaft is fixedly connected to a vertical long plate, one long side of the long plate is provided with a toothed track, the one-way gear is meshed with the toothed track, the one-way gear is connected to a fixing block through a connecting shaft, the bottom of the fixing block is welded with a bracket, and the connecting shaft passes through the fixing block and connects to a large sprocket.

[0013] Specifically, in this technical solution, an I-shaped frame plate and an L-shaped frame plate are vertically arranged on the upper surface of the base plate on both sides of the support. The inner walls of the I-shaped frame plate and the L-shaped frame plate are respectively provided with a strip groove and a movable groove. The long plate is in contact with the L-shaped wall of the L-shaped frame plate. A movable block is installed on the top of the outer wall of the long plate. The movable block is inserted into the movable groove and slidably connected thereto. The end of the rotating shaft away from the long plate is inserted into the strip groove and slidably connected thereto.

[0014] Specifically, in this technical solution, the width of the strip groove is equal to that of the rotating shaft, and the outer wall of the moving block is embedded with balls, which are in contact with the inner wall of the movable groove.

[0015] Specifically, in this technical solution, a small sprocket is installed on one output end of the generator, and a large sprocket connected to one side of the one-way gear is connected to the small sprocket via a transmission chain.

[0016] Specifically, in this technical solution, a network system is provided at the end of the base plate away from the limit system, the generator is connected to the ballast via a wire, and the ballast is connected to the battery via a wire.

[0017] In summary, the present invention has the following advantages: the present application uses the lever wall system, limit system, fixed block system and one-way gear system to use the up and down undulation of water waves as power, converting the up and down power of the lever into the rotational power of the gear to drive the generator. The conversion is simple and direct, and the limit system prevents the lever from swinging left and right, ensuring conversion efficiency.

[0018] The buoy moves with the rise and fall of the water waves, causing the lever to move up and down continuously. The lever moves along the moving slot of the limit frame, and under the action of the moving shaft, the other end moves up and down. The other end of the lever drives the long plate in the power assembly to move vertically along the L-shaped frame plate. The moving long plate drives the one-way gear to rotate in a direction through the toothed track. The one-way gear drives the large sprocket to rotate. The large sprocket drives the small sprocket to rotate through the transmission chain. The rotation of the small sprocket drives the generator to work and generate electricity. The principle of large and small wheels can increase the speed of the generator. Attached Figure Description

[0019] Figure 1This is an overall structural diagram of the present invention;

[0020] Figure 2 This is a schematic diagram of the upper surface structure of the base plate of the present invention;

[0021] Figure 3 This is a side view of the L-shaped frame plate of the present invention;

[0022] Figure 4 This is an enlarged view of point A in the present invention;

[0023] Figure 5 This is an enlarged view of section B of the present invention;

[0024] Figure 6 This is a schematic diagram of the snap-fit ​​ring of the present invention;

[0025] Figure 7 This is a structural diagram of the driving component of the present invention;

[0026] Figure 8 This is a top view of the system structure of the present invention.

[0027] Figure Descriptions: 1. Buoy; 101. Pull ring; 2. Lever; 201. Snap ring; 2011. Half ring; 202. Receiving slot; 203. Insertion slot; 2031. Insertion rod; 3. Drive assembly; 301. Movable through slot; 3011. Restriction slot; 302. Turbine; 303. Mounting shaft; 3031. Mounting plate; 304. Threaded rod; 305. Sleeve; 3051. Restriction plate; 306. Worm gear; 307. Connecting rod; 308. Handle; 309. Locking block; 3091. Through hole; 4. Limiting bracket; 401. Vertical rod; 402. Diagonal rod; 403. Movable through slot; 4031. Recess 4032, Roller; 5, Fixed frame; 501, Movable shaft; 6, Power assembly; 601, Rotating shaft; 6011, Fixed plate; 602, Long plate; 6021, Toothed track; 6022, Moving block; 6023, Ball bearing; 603, I-shaped frame plate; 6031, Strip groove; 604, L-shaped frame plate; 6041, Movable groove; 7, One-way gear; 701, Fixed block; 7011, Bracket; 7012, Large sprocket; 702, Connecting shaft; 8, Generator; 801, Small sprocket; 9, Drive chain; 10, Ballast; 11, Battery; 12, Inverter; 13, Network system; 14, Base plate. Detailed Implementation

[0028] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain the present invention, and should not be construed as limiting the present invention.

[0029] The embodiments of the present invention will now be described.

[0030] Example

[0031] This application is set up on the riverbank, lakeside, or seaside, and the limiting system is fixed to the embankment. Multiple sets can be set up side by side to achieve uninterrupted power generation. When multiple sets of power generation system devices are set up, the connecting shaft 702 at the center of their one-way gears are all connected by a shaft. The multiple sets of lever power generation system devices are all connected to the same storage battery 11 through the ballast 10. The base plate 14 is fixedly installed on the shore, and the one-way gear 7 adopts the existing technology, such as the form of a one-way ratchet.

[0032] Please see Figure 1 , Figure 2 , Figure 4 , Figure 5 , Figure 6 and Figure 8 As shown, the water wave lever power generation system includes a buoy 1, a lever wall system, a limiting system, a fixed support system, and a one-way gear system. The upper surface of the buoy 1 is connected to the inclined lever wall system. The limiting system is installed in the middle section of the lever wall system. The one-way gear system is located at the end of the lever wall system away from the buoy 1. The fixed support system is installed on the side of the lever wall system close to the one-way gear system. A base plate 14 is installed at the bottom of the fixed support system and the one-way gear system. A generator 8, a ballast 10, a battery 11, and an inverter 12 are sequentially installed on the upper surface of the base plate 14 on the side of the one-way gear system. A network system 13 is installed at the end of the base plate 14 away from the limiting system. The generator 8 is connected to the ballast 10 through a wire, and the ballast 10 is connected to the battery 11 through a wire.

[0033] The lever system includes a lever 2, which is made of high-grade steel and must be of high rigidity but not too large. One end of the lever 2 is connected to a snap ring 201, which is connected to the buoy 1 via a drive assembly 3. The limiting system includes a limiting frame 4, which is composed of a vertical rod 401 and a diagonal rod 402. Both the vertical rod 401 and the diagonal rod 402 have movable slots 403 at their tops. The dimensions of the movable slots 403 are determined by the maximum size of the tooth path 6021 in the one-way gear system. The lever 2 passes through the two movable slots 403. Several grooves 4031 are formed on the inner walls of both sides of the two movable slots 403. Rollers 4032 are movably installed in each of the grooves 4031. The outer wall of lever 2 is in contact with the side wall of lever 2. The fixed system includes a fixed frame 5. A movable shaft 501 is movably installed on the top of the fixed frame 5. The lower surface of lever 2 is integrally connected with the movable shaft 501. The connection form between lever 2 and movable shaft 501 is the same as that of a seesaw. The one-way gear system includes a power component 6 and a one-way gear 7. The power component 6 is connected to the other end of lever 2, and the drive end of the power component 6 is connected to the one-way gear 7. The one-way gear 7 is connected to the generator 8 through a transmission chain 9. A small sprocket 801 is installed on one output end of the generator 8. A large sprocket 7012 connected to one side of the one-way gear 7 is connected to the small sprocket 801 through the transmission chain 9. The design of the large and small sprockets can increase the speed of generator 8.

[0034] Buoy 1 moves with the rise and fall of the water waves, causing lever 2 to move up and down continuously. Lever 2 moves along the movable channel 403 opened in the vertical rod 401 and the inclined rod 402. At the same time, the roller 4032 can reduce the friction between lever 2 and the movable channel 403. Under the action of the movable shaft 501, the two ends of lever 2 move up and down. The other end of lever 2 drives the power component 6 to move vertically. The drive end of the power component 6 drives the one-way gear 7 to rotate in a directional manner. The one-way gear 7 rotates in a directional manner and drives the large sprocket 7012 to rotate through the connecting shaft 702. The large sprocket 7012 drives the small sprocket 801 to rotate through the transmission chain 9. The rotation of the small sprocket 801 drives the generator 8 to work and generate electricity. The electricity generated by the generator 8 is stored in the battery 11 through the ballast 10 so that it can be used to power the network system 13 through the inverter 12.

[0035] This allows the up-and-down motion of water waves to be used as power, converting the up-and-down motion of lever 2 into the rotational motion of gears to drive generator 8. The conversion is simple and direct, and the limit system prevents lever 2 from swinging left and right, ensuring conversion efficiency. Furthermore, the lever 2's principle of using minimal force to achieve maximum effect can be used to add multiple generator systems.

[0036] Please see Figure 1 , Figure 6 and Figure 7As shown, the buoy 1 has a flat upper surface and an arc-shaped lower surface. The buoy 1 is filled with foam. The buoy 1 is a plastic product. The foam filling can reduce the impact on buoyancy when the buoy is damaged. The size of the buoy 1 is calculated based on the length and weight of the lever 2 and the rated torque of the generator set. The upper surface of the buoy 1 is integrally connected with a pull ring 101. The snap ring 201 is composed of two movable semi-rings 2011. The two side walls of one end of the two semi-rings 2011 are respectively provided with a storage groove 202 and a plug groove 203. A plug rod 2031 is fixedly connected in each of the two plug grooves 203. The storage groove 202 and the plug groove 203 cooperate.

[0037] The drive assembly 3 includes a movable through groove 301 opened inside a semi-ring 2011. The two ends of the movable through groove 301 are connected to the receiving groove 202. A mounting shaft 303 is provided in the middle of the movable through groove 301. A turbine 302 is fixedly mounted on the mounting shaft 303. Mounting plates 3031 are provided through the outer walls of both ends of the mounting shaft 303. Threaded rods 304 are welded to both ends of the mounting shaft 303. Sleeves 305 are threaded on both threaded rods 304. The ends of both sleeves 305 pass through the movable through groove 301 and are connected to locking blocks 309. The two locking blocks 309 are located in the receiving groove 202 and the insertion groove 203. Two through holes 3091 are opened in the insertion groove 203 of each locking block 309. Each through hole 3091 is engaged with the insertion rod 2031.

[0038] The bottom of the movable channel 301 is provided with a limiting groove 3011. The bottom of the two sleeves 305 near the turbine 302 is integrally connected with a limiting plate 3051. Both limiting plates 3051 are slidably connected to the limiting groove 3011. A worm 306 is installed at the bottom of the limiting groove 3011. The worm 306 is meshed with the turbine 302. A connecting rod 307 is fixedly connected to one end of the worm 306. A handle 308 is fixedly connected to the end of the connecting rod 307 through a semi-ring 2011. Each of the mounting plates 3031 is fixedly connected to the top wall of the movable channel 301.

[0039] The drive assembly 3 allows for quicker connection of the snap ring 201 to the pull ring 101 of the buoy 1. During installation, a wrench is used to rotate the handle 308. The handle 308 drives the worm gear 306 to rotate via the connecting rod 307. The rotation of the worm gear 306 drives the meshing turbine 302 to rotate. The turbine 302 drives the mounting shaft 303 to rotate. The mounting shaft 303 drives the threaded rods 304 connected at both ends to rotate, causing the sleeve 305 to follow the rotation of the threaded rods 304 under the constraint of the limiting plate 3051 and the limiting groove 3011. The rotating edge moves laterally along the movable through groove 301, thereby pushing the locking block 309 out of the storage groove 202 and the insertion groove 203. At this time, the two half rings 2011 can be rotated and opened. Then, the two opened half rings 2011 are put on the pull ring 101 and then merged. At this time, rotating the handle 308 in the opposite direction can reset the locking block 309 and move it into the storage groove 202 and the insertion groove 203. The insertion rod 2031 passes through the through hole 3091 to complete the installation. The installation is simple and convenient, and it is easy to quickly replace the float 1.

[0040] Please see Figure 2 , Figure 3 and Figure 5 As shown, the power assembly 6 includes a rotating shaft 601. The end of the lever 2 is movably sleeved on the rotating shaft 601. Fixing plates 6011 are fixedly sleeved on the outer walls of both ends of the rotating shaft 601. A vertical long plate 602 is fixedly connected to one end face of the rotating shaft 601. A toothed track 6021 is provided on one long side of the long plate 602. A one-way gear 7 meshes with the toothed track 6021. The one-way gear 7 is connected to a fixing block 701 through a connecting shaft 702. A bracket 7011 is welded to the bottom of the fixing block 701. The connecting shaft 702 passes through the fixing block 701 and connects to a large sprocket 7012.

[0041] On the upper surface of the base plate 14, on both sides of the bracket 7011, there are vertically arranged I-shaped bracket plates 603 and L-shaped bracket plates 604. The inner walls of the I-shaped bracket plates 603 and L-shaped bracket plates 604 are respectively provided with strip grooves 6031 and movable grooves 6041. The long plate 602 is in contact with the L-shaped wall of the L-shaped bracket plate 604. A movable block 6022 is installed on the top of the outer wall of the long plate 602. The movable block 6022 is inserted into the movable groove 6041 and slidably connected to it. The end of the rotating shaft 601 away from the long plate 602 is inserted into the strip groove 6031 and slidably connected to it. The width of the strip groove 6031 is equal to that of the rotating shaft 601. The outer wall of the movable block 6022 is embedded with ball bearings 6023. The ball bearings 6023 are in contact with the inner wall of the movable groove 6041.

[0042] When lever 2 moves up and down due to the movement of buoy 1, the end of lever 2 away from buoy 1 drives shaft 601 to move down. Shaft 601 drives fixed plate 6011 and long plate 602 to move down between I-shaped frame plate 603 and L-shaped frame plate 604. At this time, one end of shaft 601 moves along strip groove 6031, and long plate 602 drives moving block 6022 to move along movable groove 6041. When moving block 6022 moves, the setting of ball bearing 6023 can improve the movement effect, thereby restricting the movement of long plate 602 and preventing wobbling. The moving long plate 602 drives meshing one-way gear 7 to rotate in a direction through toothed track 6021, thereby converting the up and down power of lever 2 into the rotational driving force of gear, which facilitates the operation of generator 8.

[0043] The working principle of this invention is as follows:

[0044] Buoy 1 moves with the rise and fall of the water waves, causing lever 2 to move up and down continuously. Lever 2 moves along the movable channel 403 opened in the vertical rod 401 and the inclined rod 402. During the movement, roller 4032 can reduce the friction between lever 2 and the movable channel 403. Under the action of movable shaft 501, the two ends of lever 2 move up and down. The other end of lever 2 drives the rotating shaft 601 to move down. The rotating shaft 601 drives the fixed plate 6011 and the long plate 602 to move down between the I-shaped frame plate 603 and the L-shaped frame plate 604. At this time, one end of the rotating shaft 601 moves along the strip groove 6031, and the long plate 602 drives the moving block 6022 along the movable channel 503. The moving groove 6041 moves, and the ball bearings 6023 improve the movement effect when the moving block 6022 moves, thereby restricting the movement of the long plate 602 and preventing swaying. The moving long plate 602 drives the meshing one-way gear 7 to rotate in a direction through the toothed track 6021. The one-way gear 7 rotates in a direction through the connecting shaft 702, which drives the large sprocket 7012 to rotate. The large sprocket 7012 drives the small sprocket 801 to rotate through the transmission chain 9. The rotation of the small sprocket 801 drives the generator 8 to work and generate electricity. The electricity generated by the generator 8 is stored in the battery 11 through the ballast 10 so that it can supply power to the network system 13 through the inverter 12.

[0045] Although embodiments of the present invention have been shown and described, these specific embodiments are merely explanations of the invention and are not intended to limit it. The specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples. After reading this specification, those skilled in the art may make modifications, substitutions, and variations to the embodiments as needed without departing from the principles and spirit of the invention, but such modifications, substitutions, and variations are protected by patent law as long as they are within the scope of the claims of the present invention.

Claims

1. A water wave lever power generation system device, comprising a buoy (1), a lever wall system, a limiting system, a fixed anchor system, and a one-way gear system, characterized in that... The upper surface of the buoy (1) is connected to the inclined lever wall system. The limiting system is installed in the middle section of the lever wall system. The one-way gear system is installed at the end of the lever wall system away from the buoy (1). The fixed slab system is installed on the side of the lever wall system close to the one-way gear system. The bottom of the fixed slab system and the one-way gear system is provided with a base plate (14). The upper surface of the base plate (14) is provided with a generator (8), a ballast (10), a battery (11) and an inverter (12) in sequence on the side of the one-way gear system. The lever wall system includes a lever (2), one end of which is connected to a snap ring (201). The snap ring (201) is connected to the buoy (1) via a drive assembly (3). The limiting system includes a limiting frame (4), which is integrally composed of a vertical rod (401) and a diagonal rod (402). The top of both the vertical rod (401) and the diagonal rod (402) is provided with a moving slot (403). The lever (2) passes through both moving slots (403). The fixed frame system includes a fixed frame (5), on the top of which a movable shaft (501) is movably mounted. The lower surface of the lever (2) is integrally connected to the movable shaft (501). The one-way gear system includes a power component (6) and a one-way gear (7). The power component (6) is connected to the other end of the lever (2), and the drive end of the power component (6) is connected to the one-way gear (7). The one-way gear (7) is connected to the generator (8) through a transmission chain (9). The buoy (1) is designed with a flat upper surface and an arc-shaped lower surface. The buoy (1) is filled with foam, and a pull ring (101) is integrally connected to the center of the upper surface of the buoy (1). The snap ring (201) is composed of two movable semi-rings (2011). One end of each of the two semi-rings (2011) has a storage groove (202) and a plug-in groove (203) on its two side walls. A plug-in rod (2031) is fixedly connected to each of the two plug-in grooves (203). The storage groove (202) and the plug-in groove (203) cooperate with each other. The drive assembly (3) includes a movable through groove (301) opened inside one of the semi-rings (2011). The two ends of the movable through groove (301) are connected to the storage groove (202). A mounting shaft (303) is provided in the middle of the mounting shaft (301). A turbine (302) is fixedly mounted on the mounting shaft (303). Mounting plates (3031) are provided on the outer walls of both ends of the mounting shaft (303). Threaded rods (304) are welded to both ends of the mounting shaft (303). Sleeves (305) are threaded onto both threaded rods (304). Locking blocks (309) are connected to the ends of the sleeves (305) through movable through slots (301). The two locking blocks (309) are located in the receiving slot (202) and the insertion slot (203). Two through holes (3091) are opened at the insertion slots (203) of the two locking blocks (309). Each through hole (3091) is matched with the insertion rod (2031). The power assembly (6) includes a rotating shaft (601), the end of the lever (2) is movably sleeved on the rotating shaft (601), and a fixing plate (6011) is fixedly sleeved on the outer walls of both ends of the rotating shaft (601). A vertical long plate (602) is fixedly connected to one end face of the rotating shaft (601). A toothed track (6021) is provided on one long side of the long plate (602). The one-way gear (7) meshes with the toothed track (6021). The one-way gear (7) is connected to a fixing block (701) through a connecting shaft (702). A bracket (7011) is welded to the bottom of the fixing block (701). The connecting shaft (702) passes through the fixing block (701) and is connected to a large sprocket (7012). The bottom of the movable through groove (301) is provided with a limiting groove (3011). The bottom of the two sleeves (305) near the turbine (302) is integrally connected with a limiting plate (3051). Both limiting plates (3051) are slidably connected to the limiting groove (3011). A worm (306) is installed at the bottom of the limiting groove (3011). The worm (306) is meshed with the turbine (302). A connecting rod (307) is fixedly connected to one end of the worm (306). A rotating handle (308) is fixedly connected to the end of the connecting rod (307) through a semi-ring (2011). Each mounting plate (3031) is fixedly connected to the top wall of the movable through groove (301).

2. The water wave lever power generation system device according to claim 1, characterized in that, The inner walls of both sides of the two movable channels (403) are provided with a number of grooves (4031), and rollers (4032) are movably installed in the grooves (4031). The outer walls of the rollers (4032) are in contact with the side wall of the lever (2).

3. The water wave lever power generation system device according to claim 1, characterized in that, The upper surface of the base plate (14) is vertically provided with an I-shaped frame plate (603) and an L-shaped frame plate (604) on both sides of the bracket (7011). The inner walls of the I-shaped frame plate (603) and the L-shaped frame plate (604) are respectively provided with a strip groove (6031) and a movable groove (6041). The long plate (602) is in contact with the L-shaped wall of the L-shaped frame plate (604). A movable block (6022) is installed on the top of the outer wall of the long plate (602). The movable block (6022) is inserted into the movable groove (6041) and slidably connected to it. The end of the rotating shaft (601) away from the long plate (602) is inserted into the strip groove (6031) and slidably connected to it.

4. The water wave lever power generation system device according to claim 3, characterized in that, The width of the strip groove (6031) is equal to that of the rotating shaft (601), and the outer wall of the moving block (6022) is fitted with a ball bearing (6023), which is in contact with the inner wall of the movable groove (6041).

5. The water wave lever power generation system device according to claim 1, characterized in that, A small sprocket (801) is installed on one side of the output end of the generator (8), and a large sprocket (7012) connected to one side of the one-way gear (7) is connected to the small sprocket (801) through a transmission chain (9).

6. The water wave lever power generation system device according to claim 1, characterized in that, A network system (13) is provided at the end of the base plate (14) away from the limit system. The generator (8) is connected to the ballast (10) through a wire, and the ballast (10) is connected to the battery (11) through a wire.

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