Wind energy circulation power generation and utilization device
By using wind power recycling devices, selective power transmission and precise control are achieved through components such as transmission gears and friction discs. Combined with power generation and energy storage modules, the problem of low integration in wind power generation systems is solved, and efficient recycling of energy and stable power supply are realized.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- SHANGHAI WEIYI ENERGY TECHNOLOGY CO LTD
- Filing Date
- 2026-03-09
- Publication Date
- 2026-04-17
AI Technical Summary
Existing wind power systems have low system integration, with power generation, energy storage, and power supply modules being relatively independent, failing to form an efficient internal circulation ecosystem, resulting in significant energy loss during the conversion process.
The wind energy recycling power generation device uses components such as transmission gears, driven gears, fixed friction discs, servo push rods, moving supports, and movable friction discs to achieve selective power transmission and precise control. Combined with the structural layout of the power generation panel and energy storage module, it enables flexible adjustment of wind energy conversion into power generation and energy storage, as well as internal circulation power supply.
It enables the internal energy recycling of the wind power generation system, ensures a continuous and stable power supply to external loads, improves the working stability and energy conversion efficiency of the generator panel, and reduces energy waste.
Smart Images

Figure CN121875906A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of wind power generation technology, and more particularly to a wind energy cycle power generation device. Background Technology
[0002] Wind power, as a clean and renewable energy source, occupies an increasingly important position in the energy structure. Traditional wind turbines typically convert wind energy directly into electricity and feed it into the grid or supply power to loads;
[0003] Existing wind power generation systems still have the following shortcomings in practical applications: First, the system's startup and maintenance depend on external power sources, such as auxiliary equipment like yaw, control, and lubrication, which typically require power from the grid or batteries. Second, energy conversion efficiency is limited, especially at low wind speeds where wind energy capture efficiency is low, and traditional single-path energy conversion methods struggle to achieve optimal power utilization. Third, the system integration is low, with power generation, energy storage, and power supply modules operating relatively independently, failing to form an efficient internal circulation ecosystem, resulting in significant energy losses during the conversion process. Summary of the Invention
[0004] The purpose of this invention is to solve the problem of low system integration in the prior art, where the power generation, energy storage and power supply modules are relatively independent and fail to form an efficient internal circulation ecosystem, resulting in large energy losses during the conversion process. The invention proposes a wind energy circulation power generation device.
[0005] To achieve the above objectives, the present invention adopts the following technical solution: a wind power recycling power generation device, comprising a supporting base plate, a reducer fixedly connected to the top surface of the supporting base plate, an input shaft provided on one side of the reducer, the input shaft being connected to a wind turbine blade, an output shaft installed on the output end of the reducer, the power input by the input shaft being reduced by the reducer and output through the output shaft, a mounting bracket fixedly connected to the top surface of the supporting base plate, a rear bearing installed inside the mounting bracket, the output shaft being assembled and installed in the mounting bracket through a bearing seat, and a transmission gear installed on the outer wall of the output shaft.
[0006] Preferably, there are three transmission gears, which are arranged in a linear array on the outer wall of the output shaft, and a mounting bracket is fixedly connected to the top surface of the bearing base plate.
[0007] Preferably, the mounting bracket is a U-shaped structure with a one-way opening at the bottom. There are three mounting brackets in total, and the three mounting brackets are fixedly arranged in a linear array on the top surface of the supporting base plate. The mounting brackets are located on the outside of the transmission gear.
[0008] Preferably, a driven gear is rotatably connected to the inner side of the mounting bracket. Both the driven gear and the transmission gear are bevel gears, and the transmission gear meshes with the driven gear for transmission.
[0009] Preferably, a fixed friction disc is coaxially mounted on the outer side of the driven gear, and a sliding groove is provided at the top of the bearing base plate, with a servo push rod fixedly connected inside the sliding groove.
[0010] Preferably, a movable support is slidably connected inside the top groove of the bearing base plate, and the movable support is connected to a servo push rod, which is used to adjust the longitudinal position of the movable support in the bearing base plate.
[0011] Preferably, the outer wall of the movable support is fixedly connected with a guide slider. There are two guide sliders, which are symmetrically fixed on the left and right sides of the movable support. The guide sliders are used to limit the longitudinal displacement of the movable support.
[0012] Preferably, two mounting baffles are fixedly connected in a linear array on the top surface of the movable support. A generator disk is rotatably connected to the inner side of the mounting baffles. A movable friction disk is coaxially mounted on the outer side of the generator disk. The movable friction disk matches the fixed friction disk. When the movable friction disk is in frictional contact with the fixed friction disk, the power output by the output shaft is transmitted to the generator disk through the transmission gear, the driven gear, and the fixed friction disk in sequence, and drives the generator disk to rotate.
[0013] Preferably, a connecting arm is fixedly connected to the outer side of the movable support. The connecting arm has an L-shaped structure, and a horseshoe magnet is fixedly connected to the outer side of the connecting arm. The horseshoe magnet is located on the outer side of the generator panel.
[0014] Preferably, a recyclable wiring harness is fixedly connected to the top surface of the supporting base plate, and a generator is also fixedly connected to the top of the supporting base plate. The recyclable wiring harness is used to connect the output wiring harness of the generator panel located on the left side and to the generator. An energy storage wiring harness and an energy storage module are fixedly connected to the top surface of the supporting base plate. The energy storage wiring harness is used to connect the output main wiring harness of the two generator panels located on the right side to the energy storage module. A load wiring harness is fixedly connected to the outside of the energy storage module.
[0015] Compared with the prior art, the beneficial effects of the present invention are as follows:
[0016] 1. In this invention, by setting up components such as transmission gears, driven gears, fixed friction discs, servo push rods, moving supports, and movable friction discs, the servo push rods drive the moving support to move, enabling the movable friction discs and fixed friction discs to achieve controllable frictional contact. This allows the power of the output shaft to be selectively transmitted to the generator. This device can flexibly adjust the power transmission path according to different wind speeds and power generation needs, achieving precise control of power distribution and energy conversion processes, avoiding energy waste caused by continuous power output, and providing a controllable power foundation for the internal circulating power supply of the system.
[0017] 2. In this invention, by setting three transmission gears and corresponding driven gears, fixed friction discs, and generator discs to cooperate, and by connecting the left generator disc to the recovery harness and generator, and the two generator discs on the right side to the energy storage harness and energy storage module, the mechanical power of wind energy conversion can simultaneously drive multiple generator discs to work. The electrical energy generated by the generator discs is used for the regulation and recovery of the generator and the storage and supply of the energy storage module. The electrical energy processed by the generator can be fed back to auxiliary equipment such as servo push rods to realize the internal circulation power supply of the system. The electrical energy stored in the energy storage module is stably output to the outside through the load harness. This device can realize the internal energy recycling of the wind power generation system while ensuring a continuous and stable power supply to the external load.
[0018] 3. In this invention, by setting components such as a movable support, a guide slider, a mounting baffle, and a connecting arm, the displacement of the movable support is precisely guided by the guide slider, and the horseshoe magnet is stably installed on the outside of the generator disk by the connecting arm, so that the generator disk rotates to generate electricity in a stable magnetic field environment. At the same time, the movable support drives the generator disk to move as a whole to achieve the clutch control with the fixed friction disk. This device can significantly improve the working stability and energy conversion efficiency of the generator disk, and ensure the reliable operation of the circulating power supply system and the continuity of power output. Attached Figure Description
[0019] Figure 1 This is a front view schematic diagram of the wind energy recycling power generation device proposed in this invention;
[0020] Figure 2 This is a top view of the wind energy recycling power generation device proposed in this invention.
[0021] Figure 3 This is a schematic diagram of the generator panel structure of the wind energy cycle power generation device proposed in this invention;
[0022] Figure 4 This is a schematic diagram of the mounting bracket structure for the wind power recycling power generation device proposed in this invention;
[0023] Figure 5 This is a schematic diagram of the left-side structure of the wind energy recycling power generation device proposed in this invention;
[0024] Figure 6 This is a front view structural schematic diagram of the wind energy recycling power generation device proposed in this invention;
[0025] Figure 7 The wind power recycling power generation device proposed in this invention Figure 2 Enlarged structural diagram at point A in the middle;
[0026] Figure 8 The wind power recycling power generation device proposed in this invention Figure 6 Enlarged structural diagram at point B.
[0027] In the diagram: 1. Support plate; 2. Reducer; 201. Input shaft; 2011. Output shaft; 2012. Transmission gear; 2013. Mounting support; 3. Mounting bracket; 301. Driven gear; 3011. Fixed friction disc; 4. Servo push rod; 401. Moving support; 4011. Guide slider; 4012. Mounting baffle; 4013. Generator panel; 4014. Movable friction disc; 4015. Connecting arm; 4016. Horseshoe magnet; 5. Recycling harness; 501. Generator; 5011. Energy storage harness; 5012. Energy storage module; 5013. Load harness. Detailed Implementation
[0028] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of the present invention without creative effort are within the scope of protection of the present invention.
[0029] Example, refer to Figure 1 - Figure 8A wind turbine generator includes a base plate 1. A reducer 2 is fixedly connected to the top surface of the base plate 1. An input shaft 201 is provided on one side of the reducer 2 and is connected to the wind turbine blade. An output shaft 2011 is installed on the output end of the reducer 2. The power input through the input shaft 201 is reduced by the reducer 2 and output through the output shaft 2011. A mounting bracket 2013 is fixedly connected to the top surface of the base plate 1. A rear bearing is installed inside the mounting bracket 2013. The output shaft 2011 is assembled in the mounting bracket 2013 through a bearing seat. A transmission is installed on the outer wall of the output shaft 2011. The drive gear 2012 and transmission gear 2012 are provided in three places. The three transmission gears 2012 are arranged in a linear array on the outer wall of the output shaft 2011. The mounting bracket 3 is fixedly connected to the top surface of the bearing base plate 1. By adopting the above technical solution, the input shaft 201 is connected to the wind turbine blade. After being reduced in speed by the reducer 2, it is output through the output shaft 2011, realizing the efficient conversion and transmission of wind energy into mechanical energy. The mounting bracket 3 is a U-shaped structure with a one-way opening at the bottom. There are three mounting brackets 3. The three mounting brackets 3 are arranged in a linear array and fixedly set on the top surface of the bearing base plate 1. The mounting bracket 3 is located on the outside of the transmission gear 2012.
[0030] Furthermore, a driven gear 301 is rotatably connected to the inner side of the mounting bracket 3. Both the driven gear 301 and the transmission gear 2012 are bevel gear structures. The transmission gear 2012 meshes with the driven gear 301 for transmission. A fixed friction disc 3011 is coaxially mounted on the outer side of the driven gear 301. A sliding groove is provided at the top of the bearing base plate 1. A servo push rod 4 is fixedly connected inside the sliding groove. By adopting the above technical solution, three transmission gears 2012 are arranged in a linear array on the outer wall of the output shaft 2011, and the mounting bracket 3 is set on the bearing base plate 1, realizing the synchronous output and support of multiple power sources. A movable support 401 is slidably connected inside the sliding groove at the top of the bearing base plate 1. The movable support 401 is connected to the servo push rod 4. The servo push rod 4 is used to adjust the longitudinal position of the movable support 401 in the bearing base plate 1.
[0031] Furthermore, guide sliders 4011 are fixedly connected to the outer wall of the movable support 401. Two guide sliders 4011 are provided, symmetrically fixed on the left and right sides of the movable support 401. The guide sliders 4011 are used to limit the longitudinal displacement of the movable support 401. By adopting the above technical solution, the mounting bracket 3 has a U-shaped structure and is located outside the transmission gear 2012, achieving stable installation and protection of the driven gear 301, improving the reliability and safety of the transmission system. A linear array is also present on the top surface of the movable support 401. The fixed connection has two mounting baffles 4012. The generator disk 4013 is rotatably connected to the inner side of the mounting baffle 4012. The movable friction disk 4014 is coaxially mounted on the outer side of the generator disk 4013. The movable friction disk 4014 matches the fixed friction disk 3011. When the movable friction disk 4014 is in frictional contact with the fixed friction disk 3011, the power output by the output shaft 2011 is transmitted to the generator disk 4013 in sequence through the transmission gear 2012, the driven gear 301, and the fixed friction disk 3011, and drives the generator disk 4013 to rotate.
[0032] Furthermore, a connecting arm 4015 is fixedly connected to the outer side of the movable support 401. The connecting arm 4015 has an L-shaped structure, and a horseshoe magnet 4016 is fixedly connected to the outer side of the connecting arm 4015. The horseshoe magnet 4016 is located on the outer side of the generator disk 4013. By adopting the above technical solution, both the transmission gear 2012 and the driven gear 301 are bevel gear structures and mesh with each other, realizing the change of power direction and stable transmission, adapting to different layout requirements. The top surface of the bearing base plate 1 is fixedly connected to... A recycling harness 5 is connected to the top of the support base plate 1, and a generator 501 is also fixedly connected to the top of the support base plate 1. The recycling harness 5 is used to connect the output harness of the generator panel 4013 located on the left side and to the generator 501. An energy storage harness 5011 and an energy storage module 5012 are fixedly connected to the top surface of the support base plate 1. The energy storage harness 5011 is used to connect the output main harnesses of the two generator panels 4013 located on the right side to the energy storage module 5012. A load harness 5013 is fixedly connected to the outside of the energy storage module 5012.
[0033] In use, the base plate 1 serves as the fundamental support component of the entire device. The base plate 1 is made of high-strength metal. A reducer 2 is bolted to the top surface of the base plate 1. The reducer 2 has a multi-stage gear transmission structure inside. An input shaft 201 is located on one side of the reducer 2, and is connected to the main shaft of the wind turbine blade via a coupling. An output shaft 2011 is installed on the output end of the reducer 2. The input shaft 201 receives the rotational power converted from wind energy and inputs it into the reducer 2. The reducer 2 performs speed reduction and torque amplification on the input high-speed rotational power, converting the high-speed, low-torque power generated by the wind turbine blade into low-speed, high-torque power. The power processed by the reducer 2 is then output outward through the output shaft 2011. A mounting bracket 2013 is bolted to the top surface of the base plate 1. A bearing seat is installed inside the mounting bracket 2013. The output shaft 2011 is mounted within the mounting bracket 2013 via the bearing seat. The mounting bracket 2013 provides stable rotational support for the output shaft 2011, maintaining its stable rotation. A transmission gear 2012 is keyed to the outer wall of the output shaft 2011. The output shaft 2011 rotates synchronously, driving the transmission gear 2012 to rotate. There are three transmission gears 2012 arranged in a linear array on the outer wall of the output shaft 2011. The specifications and installation angles of the three transmission gears 2012 are identical. When shaft 2011 rotates, three transmission gears 2012 rotate synchronously. Mounting brackets 3 are bolted to the top surface of the bearing base plate 1. Mounting brackets 3 are U-shaped structures with a one-way opening at the bottom. There are three mounting brackets 3, arranged in a linear array on the top surface of the bearing base plate 1. The mounting brackets 3 are located outside the transmission gears 2012. A driven gear 301 is rotatably connected to the inner side of the mounting brackets 3 via bearings. Both the driven gear 301 and the transmission gears 2012 are bevel gears. The axis of the driven gear 301 is perpendicular to the axis of the transmission gear 2012. When the transmission gear 2012 rotates, it meshes with the driven gear 301, and the rotational power of the transmission gear 2012 is transmitted through the bevel gear meshing. The gear is passed to the driven gear 301, which rotates around its own axis within the mounting bracket 3. A fixed friction disc 3011 is coaxially mounted on the outer side of the driven gear 301. The fixed friction disc 3011 is fixed to the driven gear 301 by a key connection. When the driven gear 301 rotates, it synchronously drives the fixed friction disc 3011 to rotate. The working end face of the fixed friction disc 3011 is provided with a high friction coefficient material layer. The fixed friction disc 3011 maintains a continuous rotation state with the driven gear 301. A sliding groove is provided at the top of the supporting base plate 1, which extends along the longitudinal direction of the supporting base plate 1. A servo push rod 4 is fixedly connected to the inside of the sliding groove by bolts. The servo push rod 4 adopts an electric push rod structure, and the telescopic end of the servo push rod 4 is set towards the inside of the sliding groove.A movable support 401 is slidably connected inside the top groove of the base plate 1. The bottom shape of the movable support 401 matches the groove. The movable support 401 is connected to the telescopic end of the servo push rod 4. After the servo push rod 4 is activated, the telescopic end extends or retracts. The telescopic action of the servo push rod 4 pushes the movable support 401 to adjust its longitudinal displacement along the groove. A guide slider 4011 is fixedly connected to the outer wall of the movable support 401. There are two guide sliders 4011, which are symmetrically fixed on the left and right sides of the movable support 401. The guide sliders 4011 are embedded in the guide grooves on both sides of the groove. The guide sliders 4011 slide in the groove and guide and limit the longitudinal displacement of the movable support 401, preventing movement. During movement, the support 401 may shift or tilt. To ensure smooth movement of the moving support 401 along a set trajectory, two mounting baffles 4012 are fixedly connected in a linear array on the top surface of the moving support 401. The two mounting baffles 4012 are arranged parallel to each other and perpendicular to the top surface of the moving support 401. A generator disk 4013 is rotatably connected to the inner side of the mounting baffles 4012 via bearings. The two ends of the rotating shaft of the generator disk 4013 are respectively supported in the bearings of the two mounting baffles 4012, allowing the generator disk 4013 to rotate freely between the mounting baffles 4012. A movable friction disk 4014 is coaxially mounted on the outer side of the generator disk 4013, and the movable friction disk 4014 is fixed to the rotating shaft of the generator disk 4013 via a key connection. The working end face of the movable friction disk 4014 is provided with a high friction coefficient material layer that matches the fixed friction disk 3011. The positions of the movable friction disk 4014 and the fixed friction disk 3011 correspond. When the servo push rod 4 drives the movable support 401 to move closer to the fixed friction disk 3011, the movable support 401 drives the mounting baffle 4012, the generator disk 4013, and the movable friction disk 4014 to move synchronously towards the fixed friction disk 3011. When the movable support 401 moves to the set position, the working end face of the movable friction disk 4014 and the working end face of the fixed friction disk 3011 come into contact and press against each other, generating friction transmission between the movable friction disk 4014 and the fixed friction disk 3011. The rotational power of the fixed friction disk 3011 is transmitted through... The frictional force is transmitted to the movable friction disk 4014, which drives the rotating shaft of the generator disk 4013 to rotate. The generator disk 4013 rotates accordingly. When the movable friction disk 4014 is in frictional contact with the fixed friction disk 3011, the power output from the output shaft 2011 is transmitted sequentially through the transmission gear 2012, the driven gear 301, and the fixed friction disk 3011 to the generator disk 4013, driving it to rotate. When the servo push rod 4 drives the movable support 401 to move away from the fixed friction disk 3011, the movable friction disk 4014 separates from the fixed friction disk 3011, the frictional transmission is interrupted, and the generator disk 4013 stops rotating. A connecting arm 4015 is fixedly connected to the outer side of the movable support 401.The connecting arm 4015 has an L-shaped structure. The vertical section of the connecting arm 4015 is fixedly connected to the outer wall of the movable support 401. The horizontal section of the connecting arm 4015 extends outward to the outside of the generator disk 4013. A horseshoe magnet 4016 is fixedly connected to the outside of the connecting arm 4015. The horseshoe magnet 4016 is located outside the generator disk 4013, and a set gap is maintained between the horseshoe magnet 4016 and the outer circumferential surface of the generator disk 4013. The horseshoe magnet 4016 provides a stable magnetic field environment during the rotation of the generator disk 4013. The winding of the generator disk 4013 cuts magnetic field lines in the magnetic field to generate an induced current. The horseshoe magnet 4016 moves synchronously with the movable support 401. When the movable support 401 moves, the horseshoe magnet 4016 and... The relative position of the generator 4013 remains unchanged, ensuring that the generator 4013 is always in a stable magnetic field environment. A recovery cable 5 is fixedly connected to the top surface of the support base plate 1. The recovery cable 5 is made of high conductivity cable. One end of the recovery cable 5 is electrically connected to the output end of the generator 4013 located on the left. A generator 501 is also fixedly connected to the top of the support base plate 1. The other end of the recovery cable 5 is electrically connected to the input end of the generator 501. The recovery cable 5 is used to connect to the output cable of the generator 4013 located on the left and to transmit the electrical energy generated by the generator 4013 on the left to the generator 501. The generator 501 performs voltage regulation and rectification on this part of the electrical energy. The electrical energy processed by the generator 501 is then transmitted through a conductor. The power supply is fed back to auxiliary equipment such as the servo push rod 4, providing working power for the auxiliary equipment and realizing the recycling and reuse of electrical energy within the system. An energy storage harness 5011 and an energy storage module 5012 are fixedly connected to the top surface of the supporting base plate 1. One end of the energy storage harness 5011 is electrically connected to the output main harness of the two generator panels 4013 located on the right side, and the other end is electrically connected to the input end of the energy storage module 5012. The energy storage harness 5011 is used to connect the output main harness of the two generator panels 4013 located on the right side to the energy storage module 5012, transmitting the electrical energy generated by the two generator panels 4013 on the right side to the energy storage module 5012. The energy storage module 5012 contains a battery pack and a charge / discharge management circuit. 5012 stores and manages the input electrical energy. A load harness 5013 is fixedly connected to the outside of the energy storage module 5012. One end of the load harness 5013 is electrically connected to the output terminal of the energy storage module 5012, and the other end is electrically connected to an external load device. The load harness 5013 outputs the electrical energy stored in the energy storage module 5012 to the external load, providing a stable and reliable power supply to the external load. When the entire device is working, the wind turbine blades rotate under the action of wind power. The rotational power of the wind turbine blades is input to the reducer 2 through the input shaft 201. The reducer 2 reduces and increases the torque of the input power and outputs it through the output shaft 2011. The output shaft 2011 drives the three transmission gears 2012 to rotate synchronously.Three transmission gears 2012 mesh with corresponding driven gears 301, which in turn drive the fixed friction disk 301 to rotate continuously. The servo push rod 4 drives the movable support 401 to move along the slide groove according to control commands. The movable support 401 drives the mounting baffle 4012, generator disk 4013, movable friction disk 4014, connecting arm 4015, and horseshoe magnet 4016 to move as a whole. When power generation is needed, the servo push rod 4 pushes the movable support 401 to move closer to the fixed friction disk 3011, causing the movable friction disk 4014 to press firmly against the fixed friction disk 3011. The rotational power of the fixed friction disk 3011 is transmitted to the movable friction disk 4014 through friction. The movable friction disk 4014 drives the generator disk 4013 to rotate. The generator disk 4013 rotates in the stable magnetic field provided by the horseshoe magnet 4016, generating an induced current. The electrical energy generated by the left-side generator 4013 is transmitted to the generator 501 via the recovery harness 5. The generator 501 processes the energy and then feeds it back to auxiliary equipment such as the servo push rod 4 to achieve internal power circulation. The electrical energy generated by the two generators 4013 on the right side is transmitted to the energy storage module 5012 via the energy storage harness 5011 for storage. The energy storage module 5012 stably outputs the stored electrical energy to the external load via the load harness 5013. When power generation is not needed or the power generation needs to be adjusted, the servo push rod 4 drives the movable support 401 to move away from the fixed friction disk 3011, causing the movable friction disk 4014 to separate from the fixed friction disk 3011. The generator 4013 stops rotating, and the power generation process pauses. The precise control of the servo push rod 4 enables the engagement and disengagement of the generator 4013 and the fixed friction disk 3011, thus achieving flexible adjustment of power transmission and the power generation process.
[0034] The above description is only a preferred embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.
Claims
1. A wind-powered circulating power generation device, comprising a supporting base plate (1), characterized in that, A reducer (2) is fixedly connected to the top surface of the bearing base plate (1). An input shaft (201) is provided on one side of the reducer (2). The input shaft (201) is connected to the wind turbine blade. An output shaft (2011) is installed on the output end of the reducer (2). The power input by the input shaft (201) is reduced by the reducer (2) and output through the output shaft (2011). A mounting bracket (2013) is fixedly connected to the top surface of the bearing base plate (1). A rear bearing is installed inside the mounting bracket (2013). The output shaft (2011) is assembled in the mounting bracket (2013) through a bearing seat. A transmission gear (2012) is installed on the outer wall of the output shaft (2011).
2. The wind power recycling power generation device according to claim 1, characterized in that, The transmission gear (2012) is provided in three places. The three transmission gears (2012) are arranged in a linear array on the outer wall of the output shaft (2011). The mounting bracket (3) is fixedly connected to the top surface of the bearing base plate (1).
3. The wind power cycle power generation device according to claim 2, characterized in that, The mounting bracket (3) is a U-shaped structure with a one-way opening at the bottom. There are three mounting brackets (3) in total. The three mounting brackets (3) are fixedly arranged in a straight line array on the top surface of the bearing base plate (1). The mounting brackets (3) are located on the outside of the transmission gear (2012).
4. The wind power cycle power generation device according to claim 2, characterized in that, The inner side of the mounting bracket (3) is rotatably connected to a driven gear (301). Both the driven gear (301) and the transmission gear (2012) are bevel gears. The transmission gear (2012) meshes with the driven gear (301) for transmission.
5. The wind power recycling power generation device according to claim 4, characterized in that, A fixed friction disc (3011) is coaxially mounted on the outer side of the driven gear (301), and a sliding groove is provided at the top of the bearing base plate (1), and a servo push rod (4) is fixedly connected inside the sliding groove.
6. The wind power cycle power generation device according to claim 1, characterized in that, The top groove of the bearing base plate (1) is slidably connected to a movable support (401), which is connected to a servo push rod (4). The servo push rod (4) is used to adjust the longitudinal position of the movable support (401) in the bearing base plate (1).
7. The wind power recycling power generation device according to claim 6, characterized in that, The outer wall of the movable support (401) is fixedly connected with a guide slider (4011). There are two guide sliders (4011). The two guide sliders (4011) are symmetrically fixed on the left and right sides of the movable support (401). The guide sliders (4011) are used to limit the longitudinal displacement of the movable support (401).
8. The wind power cycle power generation device according to claim 6, characterized in that, Two mounting baffles (4012) are fixedly connected in a linear array on the top surface of the movable support (401). A generator disk (4013) is rotatably connected to the inner side of the mounting baffle (4012). A movable friction disk (4014) is coaxially mounted on the outer side of the generator disk (4013). The movable friction disk (4014) is matched with the fixed friction disk (3011). When the movable friction disk (4014) is in frictional contact with the fixed friction disk (3011), the power output by the output shaft (2011) is transmitted to the generator disk (4013) in sequence through the transmission gear (2012), the driven gear (301), and the fixed friction disk (3011) and drives the generator disk (4013) to rotate.
9. The wind power recycling power generation device according to claim 6, characterized in that, The movable support (401) is fixedly connected to a connecting arm (4015) on its outer side. The connecting arm (4015) has an L-shaped structure. A horseshoe magnet (4016) is fixedly connected to the outer side of the connecting arm (4015). The horseshoe magnet (4016) is located on the outer side of the generator panel (4013).
10. The wind power cycle power generation device according to claim 1, characterized in that, A recycling harness (5) is fixedly connected to the top surface of the bearing base plate (1). A generator (501) is also fixedly connected to the top surface of the bearing base plate (1). The recycling harness (5) is used to connect the output harness of the generator panel (4013) located on the left side and to the generator (501). An energy storage harness (5011) and an energy storage module (5012) are fixedly connected to the top surface of the bearing base plate (1). The energy storage harness (5011) is used to connect the output main harness of the two generator panels (4013) located on the right side to the energy storage module (5012). A load harness (5013) is fixedly connected to the outside of the energy storage module (5012).