High-energy wind power generation device
By designing adaptive heat dissipation and anti-blocking mechanisms in wind power generation devices, the problem of excessive heating of the control box in high-temperature environments is solved, the stability and efficiency of the system are improved, the service life of electronic components is extended, and the maintenance costs are reduced.
Patent Information
- Application Number
- CN202510314253.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-17
- Publication Date
- 2025-05-30
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
Wind power generation devices may cause excessive heating of the control box in high temperature environments, damage electronic components, and reduce system stability and efficiency.
A high-energy wind power generation device is designed, including an adaptive heat dissipation mechanism and an anti-blocking mechanism. The adaptive heat dissipation mechanism automatically starts heat dissipation when the temperature is too high by driving the motor and the heat dissipation fan. The anti-blocking mechanism cleans up the dust on the dustproof board through the cleaning board to ensure the effective operation of the heat dissipation fan.
It effectively reduces the temperature of the gear control box, prevents electronic components from being damaged by high temperature, improves the stability and efficiency of the system, extends the service life of electronic components, and reduces maintenance costs.
Smart Images

Figure CN120062055A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of wind power generation, and specifically to a high-energy wind power generation device. Background Art
[0002] The core principle of a wind power generation device is the process of converting wind energy into electrical energy. Specifically, when the wind blows through the blades of a wind turbine, the blades start to rotate under the thrust of the wind. In this process, the kinetic energy of the wind is effectively captured and converted into mechanical energy. Subsequently, the blades drive the generator rotor to rotate through a mechanical transmission system (usually including a speed-increasing gearbox). Inside the generator, the rotational motion of the rotor is converted into electrical energy through the principle of electromagnetic induction. Finally, through the regulation of a transformer and an inverter, the current of the wind power generation is adjusted to an appropriate voltage and frequency, and then integrated into the power grid for people's daily use.
[0003] During the operation of a wind power generation device, affected by some factors (for example, high outdoor environmental temperature will directly cause the temperature inside the control box to rise or the heat dissipation system of the control box to malfunction), the control box will overheat. If not dealt with in time, it will not only cause the performance of the electronic components inside the control box to decline, such as changes in resistance values and reduction in capacitance, thus affecting the stability and accuracy of the entire control system, but also in a high-temperature environment, the electronic components will be overloaded during continuous operation and even directly damaged, such as capacitor bursting and integrated circuit burning, increasing the maintenance difficulty and cost of the wind turbine.
[0004] Therefore, the present invention proposes a high-energy wind power generation device to solve the above problems. Summary of the Invention
[0005] (1) Technical Problems to be Solved
[0006] In view of the deficiencies of the prior art, the present invention provides a high-energy wind power generation device, which can effectively solve the problems in the prior art.
[0007] (2) Technical Solutions
[0008] To achieve the above object, the object of the present invention can be realized by the following technical solutions:
[0009] A high-energy wind power generation device, including a bracket, the upper end of the bracket is fixedly connected with a gear control box, the output end of the gear control box is fixedly connected with a power generation blade, both sides of the gear control box are fixedly connected with protective shells, one side of the protective shell away from the gear control box is fixedly connected with a dust-proof plate, symmetrically provided with sliding grooves on one side of the protective shell close to the dust-proof plate, further including an adaptive heat dissipation mechanism and an anti-blocking mechanism, the adaptive heat dissipation mechanism includes a cross plate, a driving motor, a driving shaft, a heat dissipation fan and a button, the cross plate is fixedly connected inside the protective shell, the adaptive heat dissipation mechanism is used to automatically turn on the heat dissipation fan to work when the temperature of the gear control box is too high, and the anti-blocking mechanism is used to clean the surface of the dust-proof plate during the operation of the heat dissipation fan.
[0010] As a further solution of the present invention: the driving motor is fixedly connected to one side of the cross plate close to the dust-proof plate, the driving shaft is fixedly connected to the output end of the driving motor, and the driving shaft passes through and is rotatably connected to the cross plate, the heat dissipation fan is fixedly connected to one end of the driving shaft away from the driving motor, the driving motor and the button are electrically connected, and the button is fixedly connected to the upper end surface of the cross plate.
[0011] As a further solution of the present invention: a support column is arranged above the button, both ends of the support column are fixedly connected with support blocks, the support blocks are fixedly connected to the upper end surface of the cross plate, a moving block is fixedly connected to the outer surface of the support column, and a pressing rod is fixedly connected to the lower end of the moving block, and the pressing rod and the button are on the same horizontal line.
[0012] As a further solution of the present invention: a two-way shape memory alloy wire is fixedly connected to one side of the moving block away from the button, one end of the two-way shape memory alloy wire away from the moving block is fixedly connected to the support block on the side away from the button, and the two-way shape memory alloy wire is sleeved on the outer surface of the support column.
[0013] As a further solution of the present invention: the anti-blocking mechanism includes symmetrically arranged moving frames, the moving frames are all slidably connected between the two sliding grooves, a cleaning plate is fixedly connected to one side of the moving frame close to the dust-proof plate, and the cleaning plates are all attached to the surface of the dust-proof plate.
[0014] As a further solution of the present invention: a connecting frame is fixedly connected to the opposite sides between the two moving frames, a connecting column is fixedly connected to one end of the connecting frame away from the moving frame, the connecting columns all pass through and are slidably connected to the protective shell, a frame is fixedly connected between the ends of the two connecting columns away from the connecting frame, two moving plates are symmetrically fixedly connected to one side of the frame close to the cross plate, and transverse grooves are symmetrically opened on one side of the cross plate close to the frame, and the moving plates are all slidably connected in the transverse grooves.
[0015] As a further solution of the present invention: racks are fixedly connected to the upper and lower end faces of the inner wall of the frame at equal intervals. A turntable is arranged between the racks. Arc-shaped distribution fixing rods are fixedly connected to the side of the turntable away from the cross plate. The rods are meshed with the racks. The turntable is fixedly connected to the drive shaft.
[0016] As a further solution of the present invention: limit blocks are fixedly connected to the upper and lower end faces of the inner wall of the frame. The limit blocks are respectively arranged on one side of the racks and are located on different sides.
[0017] (III) Beneficial effects
[0018] Compared with the prior art, the present invention provides a high-energy wind power generation device, which has the following beneficial effects:
[0019] 1. Through the provided adaptive heat dissipation mechanism, when the temperature of the gear control box is too high and abnormal, the heat dissipation fan can be automatically turned on to dissipate heat from the gear control box, increasing the heat dissipation efficiency of the gear control box. It can not only timely reduce the temperature inside the gear control box, prevent the performance degradation of electronic components caused by high temperature, keep the electronic components within the normal working temperature range, maintain the stability and accuracy of the entire control system, thereby improving the overall operation efficiency of wind power generation, but also reduce the working temperature of the electronic components inside the gear control box, reduce the damage they suffer due to high temperature, thereby extending their service life, and reducing the maintenance cost and difficulty caused by component damage in the gear control box.
[0020] 2. Through the low-temperature variability of the shape memory alloy wire, after the temperature of the gear control box decreases, the operation of the heat dissipation fan can be automatically turned off. It can not only reduce the unnecessary operation of the heat dissipation fan, thereby extending its service life, reducing the replacement frequency and maintenance cost of the heat dissipation fan, but also automatically turning off the heat dissipation fan can avoid continuous operation when heat dissipation is not required, thereby reducing energy consumption, which is applicable to the overall energy efficiency of wind power generation and the solution of reducing operation costs.
[0021] 3. Through the provided anti-blocking mechanism, during the process of driving the heat dissipation fan to dissipate additional heat from the gear control box, the moving frame can be synchronously driven to reciprocate, driving the cleaning plate connected to the moving frame to wipe the surface of the dust-proof plate reciprocally, cleaning the dust-proof plate. It can not only remove the dust and impurities on its surface, avoid the long-term accumulation of dust and impurities, prevent the hindrance of heat dissipation, and reduce the heat dissipation effect of the heat dissipation fan, but also ensure the air circulation of the air inlet holes on the dust-proof plate by cleaning the dust-proof plate, ensuring that the heat dissipation fan can inhale enough air, thereby improving the heat dissipation efficiency and effectively reducing the temperature of the gear control box. Description of the drawings
[0022] For the convenience of those skilled in the art to understand, the present invention will be further described below in conjunction with the accompanying drawings.
[0023] Figure 1 It is a schematic diagram of the overall structure of the present invention;
[0024] Figure 2 For the present invention Figure 1 The enlarged structural schematic diagram of the gear control box area in;
[0025] Figure 3 It is a schematic diagram of the internal structure of the protective shell of the present invention;
[0026] Figure 4 For the present invention Figure 3 The enlarged structural schematic diagram of area A in;
[0027] Figure 5 It is a schematic diagram of the connection structure between the frame and the cross plate of the present invention;
[0028] Figure 6 For the present invention Figure 5 The enlarged structural schematic diagram of area B in.
[0029] In the figure: 1. Bracket; 2. Gear control box; 3. Power generation blade; 4. Protective shell; 5. Chute; 6. Dust-proof plate;
[0030] 701. Moving frame; 702. Connecting frame; 703. Cleaning plate; 704. Connecting column; 705. Frame; 706. Cross groove; 707. Moving plate; 708. Rack; 709. Turntable; 710. Poking rod; 711. Limiting block;
[0031] 801. Driving motor; 802. Cross plate; 803. Cooling fan; 804. Support block; 805. Support column; 806. Two-way shape memory alloy wire; 807. Moving block; 808. Pressing rod; 809. Button; 810. Driving shaft. Specific embodiments
[0032] The technical solutions of the present invention will be clearly and completely described below in conjunction with the embodiments. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.
[0033] A high-energy wind power generation device of this embodiment, such as Figure 1 - Figure 6As shown in the figure, it includes a bracket 1. A gear control box 2 is fixedly connected to the upper end of the bracket 1. A power generation blade 3 is fixedly connected to the output end of the gear control box 2. Protective shells 4 are fixedly connected to both sides of the gear control box 2. Dust-proof plates 6 are fixedly connected to the sides of the protective shells 4 away from the gear control box 2. Sliding grooves 5 are symmetrically formed on the sides of the protective shells 4 close to the dust-proof plates 6. It also includes an adaptive heat dissipation mechanism and an anti-blocking mechanism. The adaptive heat dissipation mechanism includes a cross plate 802, a driving motor 801, a driving shaft 810, a heat dissipation fan 803, and a button 809. The cross plate 802 is fixedly connected inside the protective shell 4. The adaptive heat dissipation mechanism is used to automatically turn on the heat dissipation fan 803 to work when the temperature of the gear control box 2 is too high.
[0034] In this embodiment, as Figure 4 - Figure 6 shown in the figure, the driving motor 801 is fixedly connected to the side of the cross plate 802 close to the dust-proof plate 6. The driving shaft 810 is fixedly connected to the output end of the driving motor 801, and the driving shaft 810 passes through and is rotatably connected to the cross plate 802. The heat dissipation fan 803 is fixedly connected to one end of the driving shaft 810 away from the driving motor 801. The driving motor 801 and the button 809 are electrically connected. The button 809 is fixedly connected to the upper end surface of the cross plate 802. When the button 809 is pressed, the driving motor 801 can be turned on to work, and the heat dissipation fan 803 is driven to rotate by the driving shaft 810 connected to the output end of the driving motor 801.
[0035] In this embodiment, as Figure 4 shown in the figure, a support column 805 is arranged above the button 809. Support blocks 804 are fixedly connected to both ends of the support column 805, and the support blocks 804 are fixedly connected to the upper end surface of the cross plate 802. A moving block 807 is fixedly connected to the outer surface of the support column 805. A pressing rod 808 is fixedly connected to the lower end of the moving block 807. The pressing rod 808 and the button 809 are on the same horizontal line. When the moving block 807 slides horizontally on the outer surface of the support column 805, the pressing rod 808 can be driven to move synchronously, so that the pressing rod 808 contacts or separates from the button 809.
[0036] In this embodiment, as Figure 4 shown in the figure, a two-way shape memory alloy wire 806 is fixedly connected to the side of the moving block 807 away from the button 809. One end of the two-way shape memory alloy wire 806 away from the moving block 807 is fixedly connected to the support block 804 on the side away from the button 809. The two-way shape memory alloy wire 806 is sleeved on the outer surface of the support column 805. When the air temperature near the two-way shape memory alloy wire 806 changes, the two-way shape memory alloy wire 806 is affected by the temperature and will extend or contract, pushing the moving block 807 to move horizontally on the outer surface of the support column 805.
[0037] In the prior art, affected by some factors (for example, high outdoor environmental temperature will directly cause the temperature inside the control box to rise or the heat dissipation system of the control box to malfunction), the control box will overheat. If not dealt with in time, it will not only cause the performance of the internal electronic components of the control box to decline, such as changes in resistance values and reduction in capacitance, thus affecting the stability and accuracy of the entire control system, but also in a high-temperature environment, the electronic components will be overloaded during continuous operation and even directly damaged, such as capacitor bursting and integrated circuit burning, increasing the maintenance difficulty and cost of the wind turbine. Compared with the prior art, when the temperature of the gear control box 2 is too high and abnormal, the cooling fan 803 can be automatically turned on to dissipate heat from the gear control box 2, increasing the heat dissipation efficiency of the gear control box 2. This can not only timely reduce the temperature inside the gear control box 2, prevent the performance decline of electronic components caused by high temperature, keep the electronic components within the normal operating temperature range, maintain the stability and accuracy of the entire control system, thereby improving the overall operating efficiency of wind power generation, but also reduce the operating temperature of the internal electronic components of the gear control box 2, reduce the damage they suffer due to high temperature, thereby extending their service life, and reducing the maintenance cost and difficulty of the gear control box 2 caused by component damage.
[0038] On other levels, this embodiment also provides an anti-blocking mechanism for cleaning the surface of the dust-proof plate 6 during the operation of the cooling fan 803, such as Figure 1 - Figure 6 As shown, the anti-blocking mechanism includes symmetrically arranged moving frames 701. The moving frames 701 are all slidably connected between two sliding grooves 5. Cleaning plates 703 are fixedly connected to the sides of the moving frames 701 close to the dust-proof plate 6, and the cleaning plates 703 are all attached to the surface of the dust-proof plate 6.
[0039] In this embodiment, as Figure 5 and Figure 6 shown, connecting frames 702 are fixedly connected to the opposite sides between the two moving frames 701. Connecting columns 704 are fixedly connected to the ends of the connecting frames 702 away from the moving frames 701. The connecting columns 704 are all slidably connected through the protective shell 4. A frame 705 is fixedly connected between the ends of the two connecting columns 704 away from the connecting frames 702. Moving plates 707 are symmetrically and fixedly connected to the side of the frame 705 close to the cross plate 802. Transverse grooves 706 are symmetrically formed in the side of the cross plate 802 close to the frame 705. The moving plates 707 are all slidably connected in the transverse grooves 706. When the frame 705 slides on the cross plate 802 through the moving plates 707 and the transverse grooves 706, it can drive the connecting columns 704 on both sides to slide synchronously through the protective shell 4. During the movement of the connecting columns 704, the moving frames 701 will be pushed to slide on the side wall of the protective shell 4 through the connecting frames 702.
[0040] In this embodiment, as Figure 6As shown, the upper and lower end surfaces of the inner wall of the frame 705 are equidistantly fixedly connected with racks 708, a turntable 709 is arranged between the racks 708, and a lever 710 is fixedly connected to the turntable 709 in an arc shape on the side away from the cross plate 802. The lever 710 and the rack 708 are meshed with each other, and the turntable 709 is fixedly connected to the driving shaft 810. When the driving shaft 810 drives the turntable 709 to rotate, the lever 710 connected to the side wall of the turntable 709 will move synchronously. At this time, the lever 710 will contact the racks 708 in turn, and the frame 705 will be moved through the racks 708.
[0041] In this embodiment, Figure 6 As shown, the upper end surface and the lower end surface of the inner wall of the frame 705 are fixedly connected to the limit blocks 711, and the limit blocks 711 are respectively arranged on one side of the rack 708, and the limit blocks 711 are located on different sides. Through the set limit blocks 711, the moving position of the rack 708 can be limited during the process of the lever 710 contacting the rack 708, so that the subsequent lever 710 can stably contact with the rack 708 and move the rack 708.
[0042] Compared with the prior art, in the process of driving the cooling fan 803 to perform additional cooling for the gear control box 2, the movable frame 701 can be synchronously driven to move back and forth, and the cleaning plate 703 connected to the driving movable frame 701 is adapted to be wiped back and forth against the surface of the dustproof plate 6. Cleaning the dustproof plate 6 can not only remove dust and impurities on its surface, but also avoid the long-term accumulation of dust and impurities, which hinder the dissipation of heat and reduce the cooling effect of the cooling fan 803. Moreover, by cleaning the dustproof plate 6, the air circulation through the air inlet holes on the dustproof plate 6 can be ensured, thereby ensuring that the cooling fan 803 can inhale sufficient air, thereby improving the heat dissipation efficiency and effectively reducing the temperature of the gear control box 2.
[0043] The working process and principle involved in the overall content of the above embodiment are as follows:
[0044] It should be noted that: The two-way shape memory alloy wire 806 (also known as two-phase alloy or two-shape memory alloy) is a type of alloy material with a special shape memory effect. It can achieve two different shapes at different temperatures. The most common two-way shape memory effect alloy is nickel-titanium alloy (Ni-Ti alloy), also known as "Nitinol" alloy or "superelastic alloy". It usually has the following two shapes: high-temperature phase and low-temperature phase. At the high-temperature phase (usually above room temperature), the material is in an elastic shape and can undergo large elastic deformations. While at the low-temperature phase (usually below room temperature), the material will return to the pre-set initial shape. Specifically, the transformation temperature (two-way transformation temperature) of nickel-titanium alloy (Ni-Ti alloy) can be adjusted according to the composition and treatment of the alloy. Generally, the high-temperature phase transformation temperature range is about 40 - 100 °C, and the low-temperature phase transformation temperature range is about -10 to 30 °C. This range can be adjusted according to the needs of specific applications. It should be noted that the shape memory process of the two-way shape memory alloy is reversible and can be switched between high temperature and low temperature multiple times while maintaining the same memory effect. In this embodiment, the low-temperature phase of the two-way shape memory alloy wire 806 is in a contracted state, and the high-temperature phase will automatically extend.
[0045] During the operation of the power generation blade 3 and the gear control box 2, when the gear control box 2 is affected by external factors and its own temperature becomes too high, the air near the gear control box 2 will also rise. At this time, the two-way shape memory alloy wire 806 inside the protective shell 4 will come into contact with the high-temperature air. Affected by the high-temperature air, it will deform and automatically extend, pushing the moving block 807 connected to one end of the two-way shape memory alloy wire 806 away from the support block 804 and moving horizontally on the outer surface of the support column 805. When the moving block 807 slides on the outer surface of the support column 805, the moving block 807 will drive the pressing rod 808 connected to its lower end face to move synchronously. Since the pressing rod 808 and the button 809 are on the same horizontal plane and the button 809 is electrically connected to the drive motor 801, during the movement of the pressing rod 808, it will come into contact with the button 809 and press the button 809 to turn on the drive motor 801 to work, driving the drive shaft 810 connected to the output end of the drive motor 801 to rotate on the cross plate 802, so that the cooling fan 803 connected to the drive shaft 810 works to dissipate heat from both sides of the gear control box 2, improving the heat dissipation efficiency of the gear control box 2. This can not only timely reduce the temperature inside the gear control box 2, prevent the performance decline of electronic components caused by high temperature, keep the electronic components within the normal working temperature range, maintain the stability and accuracy of the entire control system, thereby improving the overall operation efficiency of wind power generation, but also reduce the working temperature of the electronic components inside the gear control box 2, reduce the damage they suffer due to high temperature, thereby extending their service life, and reducing the maintenance cost and maintenance difficulty of the gear control box 2 caused by component damage;
[0046] During the process that the drive shaft 810 rotates to drive the cooling fan 803 to work, the drive shaft 810 will drive the turntable 709 connected to its outer surface to rotate synchronously, so that the lever 710 connected to the side of the turntable 709 close to the rack 708 rotates around the drive shaft 810. As the lever 710 rotates, the lever 710 will successively contact the upper and lower racks 708 and move the rack 708. Since the rack 708 is fixedly connected to the frame 705, and the frame 705 is horizontally slidably connected to the cross plate 802 through the moving plate 707 and the horizontal groove 706, therefore, when the lever 710 moves the rack 708, it will drive the frame 705 to horizontally reciprocate on the side wall of the cross plate 802, driving the connecting columns 704 connected to both sides of the frame 705 to penetrate and reciprocate on the protective shell 4. During the horizontal reciprocating movement of the connecting column 704, since a connecting frame 702 is connected to the end of the connecting column 704 far from the frame 705, the connecting frame 702 is installed on the moving frame 701, and the moving frame 701 is slidably connected to the protective shell 4 through the chute 5, and a cleaning plate 703 is connected to the side wall of the moving frame 701. Therefore, the connecting column 704 can drive the moving frame 701 to reciprocate synchronously on the side wall of the protective shell 4 through the connecting frame 702, driving the cleaning plate 703 to wipe reciprocally against the surface of the dust-proof plate 6 to clean the dust-proof plate 6. This can not only remove the dust and impurities on its surface, avoid the long-term accumulation of dust and impurities, prevent the obstruction of heat dissipation, and reduce the heat dissipation effect of the cooling fan 803, but also ensure the air circulation of the air inlet holes on the dust-proof plate 6 by cleaning the dust-proof plate 6, ensure that the cooling fan 803 can inhale enough air, thereby improving the heat dissipation efficiency and effectively reducing the temperature of the gear control box 2;
[0047] During the process that the lever 710 follows the turntable 709 to move from one rack 708 to the other rack 708, the lever 710 at the edge will first contact the limit block 711. Blocked by the limit block 711 and the lever 710, it is convenient for the subsequent lever 710 to be stuck into the groove between the racks 708, thereby improving the stability of the horizontal reciprocating movement of the frame 705;
[0048] When the temperature of the gear control box 2 drops, the air temperature around the two-way shape memory alloy wire 806 will also drop synchronously. At this time, affected by the low temperature, the state of the two-way shape memory alloy wire 806 will change to a low-temperature phase state, that is, a contracted state, pulling the moving block 807 to move in the reverse direction on the outer surface of the support column 805, driving the pressing rod 808 and the button 809 connected to the lower end of the moving block 807 to separate from each other, shutting down the operation of the drive motor 801, and pausing the heat dissipation work of the heat dissipation fan 803 for the gear control box 2. This can not only reduce the unnecessary operation of the heat dissipation fan 803, thereby extending its service life and reducing the replacement frequency and maintenance cost of the heat dissipation fan 803, but also automatically shutting down the heat dissipation fan 803 can avoid continuous operation when heat dissipation is not required, thereby reducing energy consumption, which is applicable to the overall energy efficiency of wind power generation and the solution of reducing operating costs.
[0049] The preferred embodiments of the present invention disclosed above are only used to help illustrate the present invention. The preferred embodiments do not describe all the details in detail, nor limit the invention to the specific embodiments described. Obviously, many modifications and variations can be made according to the content of this specification. This specification selects and specifically describes these embodiments to better explain the principle and practical application of the present invention, so that those skilled in the art can well understand and utilize the present invention. The present invention is only limited by the claims and their full scope and equivalents.
Claims
1. A high-energy wind power generation device, comprising a bracket (1), wherein the upper end of the bracket (1) is fixedly connected to a gear control box (2), the output end of the gear control box (2) is fixedly connected to a power generation blade (3), both sides of the gear control box (2) are fixedly connected to a protective shell (4), the side of the protective shell (4) away from the gear control box (2) is fixedly connected to a dustproof plate (6), and the side of the protective shell (4) close to the dustproof plate (6) is symmetrically provided with a slide groove (5), characterized in that: It also includes an adaptive heat dissipation mechanism and an anti-clogging mechanism; The adaptive heat dissipation mechanism comprises a transverse plate (802), a drive motor (801), a drive shaft (810), a heat dissipation fan (803) and a button (809); the transverse plate (802) is fixedly connected to the inside of the protective shell (4); and the adaptive heat dissipation mechanism is used to automatically turn on the heat dissipation fan (803) to operate when the temperature of the gear control box (2) is too high; The anti-blocking mechanism is used to clean the surface of the dustproof plate (6) during the operation of the cooling fan (803).
2. A high energy wind power generation device according to claim 1, characterized in that: The driving motor (801) is fixedly connected to the side of the horizontal plate (802) close to the dustproof plate (6), the driving shaft (810) is fixedly connected to the output end of the driving motor (801), and the driving shaft (810) is rotatably connected to the horizontal plate (802), the cooling fan (803) is fixedly connected to the end of the driving shaft (810) away from the driving motor (801), the driving motor (801) and the button (809) are electrically connected, and the button (809) is fixedly connected to the upper end surface of the horizontal plate (802).
3. A high energy wind power generation device according to claim 2, characterized in that: A support column (805) is arranged above the button (809), and both ends of the support column (805) are fixedly connected to support blocks (804), and the support blocks (804) are fixedly connected to the upper end surface of the horizontal plate (802). A moving block (807) is fixedly connected to the outer surface of the support column (805), and a pressing rod (808) is fixedly connected to the lower end of the moving block (807), and the pressing rod (808) and the button (809) are on the same horizontal line.
4. A high-energy wind power generation device according to claim 3, characterized in that: A two-way memory alloy wire (806) is fixedly connected to the side of the moving block (807) away from the button (809); one end of the two-way memory alloy wire (806) away from the moving block (807) is fixedly connected to the support block (804) on the side away from the button (809); and the two-way memory alloy wire (806) is sleeved on the outer surface of the support column (805).
5. A high energy wind power generation device according to claim 1, characterized in that: The anti-blocking mechanism comprises symmetrically arranged moving frames (701), each of the moving frames (701) being slidably connected between two slide grooves (5), each of the moving frames (701) being fixedly connected with a cleaning plate (703) on one side close to the dustproof plate (6), and each of the cleaning plates (703) being in contact with the surface of the dustproof plate (6).
6. A high energy wind power generation device according to claim 5, characterized in that: A connecting frame (702) is fixedly connected to the opposite side of the two movable frames (701); a connecting column (704) is fixedly connected to the end of the connecting frame (702) away from the movable frame (701); the connecting column (704) is slidably connected to the protective shell (4); a frame (705) is fixedly connected between the ends of the two connecting columns (704) away from the connecting frame (702); a movable plate (707) is symmetrically fixedly connected to the side of the frame (705) close to the transverse plate (802); a transverse groove (706) is symmetrically opened on the side of the transverse plate (802) close to the frame (705); and the movable plates (707) are slidably connected in the transverse groove (706).
7. A high energy wind power generation device according to claim 6, characterized in that: The upper end surface and the lower end surface of the inner wall of the frame (705) are fixedly connected with racks (708) at equal distances, a rotating disk (709) is arranged between the racks (708), and a shifting rod (710) is fixedly connected to the rotating disk (709) in an arc shape on the side away from the horizontal plate (802), the shifting rod (710) and the racks (708) are meshed with each other, and the rotating disk (709) is fixedly connected to the driving shaft (810).
8. A high energy wind power generation device according to claim 7, characterized in that: The upper end surface and the lower end surface of the inner wall of the frame (705) are both fixedly connected to limit blocks (711), and the limit blocks (711) are respectively arranged on one side of the rack (708), and the limit blocks (711) are located on different sides.