Efficient horizontal-axis wind turbine with rose-shaped blades
By adopting rose-shaped blade design, the problem of poor operation of traditional wind turbines in low wind speeds and complex wind direction environments is solved, and more efficient wind energy capture and energy utilization is achieved, reducing costs and maintenance difficulties.
Patent Information
- Application Number
- CN202510171514.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-17
- Publication Date
- 2025-05-13
AI Technical Summary
Traditional horizontal shaft wind turbines have limited ability to capture wind energy in low-wind speed environments and are difficult to operate effectively in environments with complex wind directions, which increases equipment costs and maintenance difficulties. At the same time, they fail to effectively utilize the heat generated by wind turbines, resulting in waste of energy.
An efficient horizontal axis wind turbine designed with rose-shaped blades. The blades are composed of multiple arc-shaped blades, gradually thinning from the root to the tip, and the left viewing angle is rose-shaped. It can automatically adjust the angle under different wind speeds and wind directions, capture wind energy, and achieve effective heat dissipation and waste heat generation through the air inlet duct and heat exchange shell.
It improves the applicability of wind power generation systems in low-wind speed areas, expands the range of available wind energy resources, reduces equipment costs and maintenance difficulties, improves power generation efficiency and stability, and enhances the comprehensive energy utilization capacity.
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Figure CN119982343A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of small generators, and more particularly to a high-efficiency horizontal-axis wind generator with rose-shaped blades. Background Art
[0002] With the continuous growth of global energy demand and the increasing awareness of environmental protection, the development and utilization of renewable energy has become increasingly important. As a clean and sustainable form of energy, wind power generation has received widespread attention and rapid development around the world. Horizontal axis wind turbines are one of the most widely used wind power generation equipment. The continuous advancement of their technology is of key significance to improving wind energy conversion efficiency and reducing power generation costs.
[0003] The blade design of traditional horizontal axis wind turbines is usually relatively conventional, and the wind energy capture capability is limited under different wind speed and wind direction conditions. Especially in low wind speed environments, the high starting wind speed of the blades makes it difficult for the generator to operate effectively, which makes it impossible to fully utilize the wind energy resources in a large number of low wind speed areas, limiting the application scope of wind power generation systems.
[0004] Traditional wind turbines often require a complex yaw system to adjust the direction of the wind rotor so that it is aligned with the wind direction. This not only increases the cost and maintenance difficulty of the equipment, but also in an environment where the wind direction changes frequently, the response speed of the yaw system may not be able to keep up with the change in wind direction in time, resulting in reduced wind energy capture efficiency. For example, in an urban environment, due to the obstruction of buildings and the turbulence of airflow, the wind direction changes are more complicated, and traditional wind turbines are difficult to fully play their role.
[0005] During the operation of wind turbines, the generator sets will generate a lot of heat. If this heat cannot be dissipated in time and effectively, it will affect the performance and service life of the generator. However, most wind turbines currently simply dissipate heat to the surrounding environment through heat dissipation devices, without effectively recycling and utilizing this part of heat, resulting in energy waste.
[0006] At the same time, when encountering strong wind weather, excessively high wind speeds may damage the blades, generators and other components of the wind turbine, affecting the normal operation and service life of the equipment. The wind speed protection mechanism of traditional wind turbines is often not perfect and cannot effectively respond to sudden strong winds in a timely manner, resulting in increased equipment maintenance costs. Therefore, professionals in this field provide a high-efficiency horizontal axis wind turbine with rose-shaped blades to solve the above-mentioned problems. Summary of the invention
[0007] In view of the problems existing in the prior art, the purpose of the present invention is to provide a high-efficiency horizontal-axis wind turbine with rose-shaped blades to reduce equipment costs and maintenance difficulties. The wind turbine is suitable for environments with complex and changeable wind directions such as cities, improves power generation efficiency and stability, and enhances the comprehensive energy utilization capability.
[0008] To achieve the above object, the present invention adopts the following technical solution: A high-efficiency horizontal axis wind turbine with rose-shaped blades, comprising a frame and a generator set installed on the right side thereof, a rotating main shaft is fixedly installed on the output shaft of the generator set, a synchronous shaft is arranged on the left side of the rotating main shaft, the synchronous shaft is rotatably connected to the frame, a rose-shaped fan blade group is fixedly installed on the synchronous shaft, a mounting groove is provided inside the rotating main shaft, a metal plate is slidably connected to the inner wall of the mounting groove, uniformly distributed limit rods are fixedly installed on the left side of the metal plate, uniformly distributed limit grooves are provided on the right side of the synchronous shaft, the limit rods are located inside the limit grooves, uniformly distributed limit springs are fixedly installed on the right side of the metal plate, the other end of the limit spring is fixedly connected to the inner wall of the mounting groove, a power supply electromagnet is fixedly installed on the inner wall of the mounting groove, the power supply electromagnet is magnetically connected to the metal plate, a wind sensor is fixedly installed on the top of the frame, an auxiliary component is connected to the frame, a processor is integrated in the frame, and the power supply electromagnet, the wind sensor and the auxiliary component are all connected to the processor signal; The auxiliary component includes an air inlet pipe, which is detachably connected to the top of the frame, an air inlet end of the air inlet pipe is located on the right side of the rose-shaped fan blade group, a heat insulation cover is fixedly installed on the right side of the frame, the generator set is located on the top of the heat insulation cover, the air inlet pipe is connected to the top of the heat insulation cover, a heat exchange shell connected to the interior of the heat insulation cover is fixedly installed on the bottom of the heat insulation cover, a thermal power generation module is fixedly installed on the inner wall of the heat exchange shell, an exhaust groove is opened on the right side of the heat exchange shell, an auxiliary power supply is fixedly installed inside the frame, the auxiliary power supply is connected to the processor signal, and the thermal power generation module is electrically connected to the auxiliary power supply.
[0009] As a further description of the above technical solution: a charging and discharging module and a power management module are installed on the inner wall of the rack, and both the power management module and the charging and discharging module are connected to the processor signal.
[0010] As a further description of the above technical solution: the inner wall of the heat exchange shell is fixedly connected with partitions arranged at equal distances, the inner wall of the heat exchange shell is fixedly connected with a guide plate, the guide plate is located on the top of the partition, and the partition is located on the top of the thermal power generation module.
[0011] As a further description of the above technical solution: a dustproof net is detachably connected to the right side of the heat exchange shell, and the dustproof net covers the exhaust slot.
[0012] As a further description of the above technical solution: a water blocking seat is fixedly connected to the inner wall of the air inlet pipe, and two sides of the water blocking seat are in an inclined state.
[0013] As a further description of the above technical solution: a mounting base plate is provided at the bottom of the frame, and evenly distributed spring dampers are fixedly installed on the top of the mounting base plate, and the top of the spring damper is fixedly installed on the bottom of the frame. Evenly distributed adjustment rods are rotatably connected to the frame, and the bottom ends of the adjustment rods pass through and extend to the bottom of the frame. An internal threaded seat is threadedly connected to the adjustment rod, and the bottom of the internal threaded seat is in contact with the top of the mounting base plate.
[0014] As a further description of the above technical solution: the top of the mounting base plate is fixedly connected with evenly distributed guide shafts, the top ends of the guide shafts penetrate and extend into the interior of the frame, and the internal threaded seat is slidably connected to the guide shafts.
[0015] As a further description of the above technical solution: the rose-shaped fan blade group is composed of a plurality of arc-shaped blades, the arc-shaped blades are made of aluminum alloy, the structure composed of the plurality of arc-shaped blades is rose-shaped from a left-hand perspective, the arc-shaped blades gradually become thinner from the root close to the synchronization shaft to the tip, and the arc-shaped blades are manufactured by a lost wax method.
[0016] Compared with the prior art, the advantages of the present invention are: In the present invention, the rose-shaped blade group has a unique curved blade design, which gradually becomes thinner from the root to the tip and is rose-shaped from the left view, so that it can better capture wind energy under different wind speed and wind direction conditions, especially in low wind speed environments, drive the generator set to generate electricity, expand the range of available wind energy resources, and improve the applicability of wind power generation systems in low wind speed areas. When the wind direction changes, the blades of the rose-shaped blade group can automatically adjust the angle so that the turbine automatically aligns with the favorable wind direction, without the need for a complex yaw system, reducing equipment costs and maintenance difficulties. It is particularly suitable for environments with complex and changeable wind directions such as cities, and improves power generation efficiency and stability. In the present invention, when the equipment is running, the fan blades rotate to allow part of the airflow to enter the air inlet pipe of the auxiliary component, taking away the heat generated by the generator set to achieve heat dissipation. After the airflow with heat enters the heat exchange shell, the thermal power generation module uses the waste heat to generate electricity and stores the electric energy in the auxiliary power supply through the charging and discharging module. The partition and the guide plate increase the airflow residence time, improve the waste heat utilization efficiency, and the auxiliary power supply can supply power to the components in the rack, thereby enhancing the comprehensive energy utilization capability. In the present invention, the wind sensor monitors the wind speed in real time. When the wind speed is too high, the processor controls the power supply electromagnet to disconnect the synchronous shaft from the rotating main shaft to avoid damage to the generator set. When the wind speed is normal, the two are reconnected to continue generating electricity to ensure the service life of the generator set. In the present invention, the spring damper installed on the base plate can reduce the vibration of the wind turbine during operation, improve the stability and service life of the equipment, and during transportation or installation, the internal thread seat can be moved along the guide shaft by rotating the adjustment rod, so as to adjust the support between the frame and the installation base plate, realize the switching between stable support and spring support, and adapt to the needs of different places. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 It is a schematic diagram of the three-dimensional structure of the present invention; Figure 2 It is a schematic diagram of the formal cross-sectional structure of the present invention; Figure 3 It is a schematic diagram of the main shaft cross-section structure of the present invention; Figure 4 It is a schematic diagram of the cross-sectional structure of the auxiliary component of the present invention; Figure 5 It is a schematic diagram of the three-dimensional structure of the internal thread seat of the present invention; Figure 6 It is a schematic diagram of the principle of the present invention.
[0018] Description of the numbers in the figure: 1. Frame; 2. Generator set; 3. Rotating main shaft; 301. Mounting slot; 4. Synchronous shaft; 401. Limiting slot; 5. Rose-shaped fan blade group; 6. Metal plate; 7. Limiting rod; 8. Limiting spring; 9. Power supply electromagnet; 10. Wind sensor; 11. Auxiliary components; 1101. Air inlet pipe; 1102. Heat insulation cover; 1103. Heat exchange shell; 1104. Thermal power generation module; 1105. Auxiliary power supply; 1106. Exhaust slot; 12. Processor; 13. Charging and discharging module; 14. Power management module; 15. Partition; 16. Guide plate; 17. Dust net; 18. Water blocking seat; 19. Mounting base plate; 20. Spring damper; 21. Adjusting rod; 22. Internal thread seat; 23. Guide shaft. DETAILED DESCRIPTION
[0019] The technical solutions in the embodiments of the present invention will be described clearly and completely below in conjunction with the accompanying drawings in the embodiments of the present invention; See also Figures 1 to 6In the present invention, a high-efficiency horizontal axis wind turbine with rose-shaped blades includes a frame 1 and a generator set 2 installed on the right side thereof, a rotating main shaft 3 is fixedly installed on the output shaft of the generator set 2, a synchronous shaft 4 is arranged on the left side of the rotating main shaft 3, the synchronous shaft 4 is rotatably connected to the frame 1, a rose-shaped fan blade group 5 is fixedly installed on the synchronous shaft 4, a mounting groove 301 is opened inside the rotating main shaft 3, a metal plate 6 is slidably connected to the inner wall of the mounting groove 301, a uniformly distributed limit rod 7 is fixedly installed on the left side of the metal plate 6, and a uniformly distributed limit rod 7 is opened on the right side of the synchronous shaft 4. The limit slot 401 is fixedly provided with a limit rod 7 inside the limit slot 401, and a limit spring 8 evenly distributed is fixedly installed on the right side of the metal plate 6. The other end of the limit spring 8 is fixedly connected to the inner wall of the mounting slot 301. A power electromagnet 9 is fixedly installed on the inner wall of the mounting slot 301, and the power electromagnet 9 is magnetically connected to the metal plate 6. A wind sensor 10 is fixedly installed on the top of the frame 1, and an auxiliary component 11 is connected to the frame 1. A processor 12 is integrated in the frame 1, and the power electromagnet 9, the wind sensor 10 and the auxiliary component 11 are all connected to the processor 12 signal.
[0020] The auxiliary component 11 includes an air inlet pipe 1101, which is detachably connected to the top of the frame 1, and the air inlet end of the air inlet pipe 1101 is located on the right side of the rose-shaped fan blade group 5. A heat insulation cover 1102 is fixedly installed on the right side of the frame 1, and the generator set 2 is located on the top of the heat insulation cover 1102. The air inlet pipe 1101 is connected to the top of the heat insulation cover 1102, and a heat exchange shell 1103 connected to the interior of the heat insulation cover 1102 is fixedly installed at the bottom of the heat insulation cover 1102, and a thermal power generation module 1104 is fixedly installed on the inner wall of the heat exchange shell 1103, and an exhaust groove 1106 is opened on the right side of the heat exchange shell 1103. An auxiliary power supply 1105 is fixedly installed inside the frame 1, and the auxiliary power supply 1105 is connected to the processor 12 signal, and the thermal power generation module 1104 is electrically connected to the auxiliary power supply 1105.
[0021] A charging and discharging module 13 and a power management module 14 are installed on the inner wall of the rack 1, and both the power management module 14 and the charging and discharging module 13 are connected to the processor 12 by signal; The inner wall of the heat exchange shell 1103 is fixedly connected with partitions 15 arranged at equal distances. The inner wall of the heat exchange shell 1103 is fixedly connected with a guide plate 16 , which is located on the top of the partition 15 , and the partition 15 is located on the top of the thermal power generation module 1104 .
[0022] A mounting base plate 19 is provided at the bottom of the frame 1, and evenly distributed spring dampers 20 are fixedly installed on the top of the mounting base plate 19. The top of the spring damper 20 is fixedly installed on the bottom of the frame 1. Evenly distributed adjusting rods 21 are rotatably connected to the frame 1. The bottom end of the adjusting rod 21 passes through and extends to the bottom of the frame 1. An internal thread seat 22 is threadedly connected to the adjusting rod 21, and the bottom of the internal thread seat 22 contacts the top of the mounting base plate 19.
[0023] The top of the mounting base plate 19 is fixedly connected with evenly distributed guide shafts 23 , the top ends of the guide shafts 23 penetrate and extend into the interior of the frame 1 , and the internal threaded seat 22 is slidably connected to the guide shafts 23 .
[0024] The rose-shaped fan blade group 5 is composed of multiple arc-shaped blades, which are made of aluminum alloy. The structure composed of multiple arc-shaped blades is rose-shaped from the left side view. The arc-shaped blades gradually become thinner from the root close to the synchronous shaft 4 to the tip. The arc-shaped blades are manufactured by the lost wax method.
[0025] When wind power generation is required, natural wind acts on the rose-shaped fan blade group 5. Since the rose-shaped fan blade group 5 is composed of a plurality of specially shaped arc blades, these arc blades gradually become thinner from the root close to the synchronous shaft 4 to the tip, and the structure composed of the plurality of arc blades is rose-shaped from a left perspective. This special shape and aerodynamic characteristics enable it to better capture wind energy under different wind speed and wind direction conditions. In a low wind speed environment, its special shape can make the blades start to rotate at a lower wind speed, thereby driving the synchronous shaft 4 to rotate.
[0026] In the normal wind speed range, the synchronous shaft 4 is connected to the rotating main shaft 3 through the limit rod 7. Specifically, the limit rod 7 is located inside the limit groove 401 on the right side of the synchronous shaft 4. Under the action of the limit spring 8, the metal plate 6 stably maintains the limit rod 7 in the limit groove 401, thereby realizing the connection between the synchronous shaft 4 and the rotating main shaft 3. After the rotating main shaft 3 rotates, it drives the output shaft of the generator set 2 to rotate, thereby enabling the generator set 2 to generate electricity. The generated electricity is processed and distributed through the charging and discharging module 13 and the power management module 14, and transmitted to the connected energy storage battery. This improves the applicability of the wind power generation system in low wind speed areas and expands the range of available wind energy resources.
[0027] When the wind direction changes, due to the special shape of the 5 blades of the rose-shaped fan blade group, the turbine can automatically align with the most favorable wind direction. The blades will automatically adjust the angle due to the force they are subjected to. There is no need for a complex yaw system, which reduces equipment costs and maintenance difficulties. Especially in environments with complex and changeable wind directions such as cities, it can better adapt and improve power generation efficiency and stability.
[0028] During the operation of the equipment, when the rose-shaped fan blade group 5 rotates, due to the special notch part of the rose fan blade, the airflow passing through the fan blade will be gathered, and part of the airflow will be concentrated into the air inlet pipe 1101 of the auxiliary component 11. The air inlet end of the air inlet pipe 1101 is located on the right side of the rose-shaped fan blade group 5. The airflow enters the heat insulation cover 1102 through the air inlet pipe 1101. The heat insulation cover 1102 wraps the generator set 2. The airflow takes away the heat generated by the generator set 2 to achieve heat dissipation.
[0029] Subsequently, the airflow carrying heat enters the heat exchange shell 1103, and a thermal power generation module 1104 is fixedly installed on the inner wall of the heat exchange shell 1103. The thermal power generation module 1104 uses the waste heat in the airflow to generate electricity and transmits the electrical energy to the auxiliary power supply 1105 for storage. In order to increase the time of the airflow inside the heat exchange shell 1103 so that the thermal power generation module 1104 can absorb heat more fully, the inner wall of the heat exchange shell 1103 is fixedly connected with equidistantly arranged partitions 15 and guide plates 16, and the guide plate 16 is located on the top of the partition 15, and the partition 15 is located on the top of the thermal power generation module 1104. The airflow flows in a zigzag manner under the action of the partition 15 and the guide plate 16, and is finally discharged through the exhaust groove 1106. The current generated by the thermal power generation module 1104 is transmitted to the auxiliary power supply 1105 for distribution, and the auxiliary power supply 1105 can power components such as sensors in the rack 1.
[0030] When the wind speed is too high, the wind sensor 10 transmits a signal to the processor 12. After receiving the signal, the processor 12 controls the power supply electromagnet 9 to be energized. After the power supply electromagnet 9 is energized, it generates magnetism to attract the metal plate 6. At this time, the magnetic force is greater than the force of the limit spring 8, so that the metal plate 6 drives the limit rod 7 to disengage from the limit groove 401 of the synchronous shaft 4, so that the synchronous shaft 4 is disconnected from the rotating main shaft 3. At this time, the wind speed is too high, and the fan blades rotate by themselves, avoiding damage to the generator set 2 due to excessive wind speed.
[0031] When the wind speed is within the normal range, the processor 12 controls the power supply electromagnet 9 to cut off the power, so that the limit spring 8 starts to rebound, and the metal plate 6 sends the limit rod 7 into the limit groove 401, thereby realizing the connection between the synchronous shaft 4 and the rotating main shaft 3, and then continuing to generate electricity. The end of the limit rod 7 has a ball, which can reduce the friction generated when the limit rod 7 fits with the limit groove 401.
[0032] During the operation of the wind turbine, the spring damper 20 installed on the top of the base plate 19 can play a shock-absorbing role, reduce the impact of vibration generated during the operation of the wind turbine on the equipment, and improve the stability and service life of the equipment.
[0033] During transportation or installation, the adjusting rod 21 can be rotated. An internal threaded seat 22 is threadedly connected to the adjusting rod 21. The internal threaded seat 22 is slidably connected to the guide shaft 23. When the adjusting rod 21 is rotated, the internal threaded seat 22 moves up and down along the guide shaft 23. The support between the frame 1 and the mounting base plate 19 is adjusted through the threaded structure to achieve stability. In this way, it is possible to switch between stable support and spring support to meet the needs of different sites.
[0034] In the present invention, the rose-shaped blade group 5 has a unique curved blade design, which gradually becomes thinner from the root to the tip and is rose-shaped from a left perspective, so that it can better capture wind energy under different wind speed and wind direction conditions, especially in low wind speed environments, and drive the generator group 2 to generate electricity, thereby expanding the range of available wind energy resources and improving the applicability of wind power generation systems in low wind speed areas. When the wind direction changes, the blades of the rose-shaped blade group 5 can automatically adjust the angle so that the turbine automatically aligns with the favorable wind direction. There is no need for a complex yaw system, which reduces equipment costs and maintenance difficulties. It is particularly suitable for environments with complex and changeable wind directions such as cities, and improves power generation efficiency and stability.
[0035] During operation of the equipment of the present invention, the fan blades rotate to allow part of the airflow to enter the air inlet pipe 1101 of the auxiliary component 11, taking away the heat generated by the generator set 2 to achieve heat dissipation. After the airflow with heat enters the heat exchange shell 1103, the thermal power generation module 1104 generates electricity using the waste heat and stores the electrical energy in the auxiliary power supply 1105 through the charging and discharging module 13. The partition 15 and the guide plate 16 increase the airflow residence time and improve the waste heat utilization efficiency. The auxiliary power supply 1105 can supply power to the components in the rack 1, thereby enhancing the comprehensive energy utilization capability.
[0036] In the present invention, the wind sensor 10 monitors the wind speed in real time. When the wind speed is too high, the processor 12 controls the power electromagnet 9 to disconnect the synchronous shaft 4 from the rotating main shaft 3 to avoid damage to the generator set 2. When the wind speed is normal, the two are reconnected to continue generating electricity to ensure the service life of the generator set 2.
[0037] In the present invention, the spring damper 20 on the mounting base plate 19 can reduce the vibration of the wind turbine during operation, improve the stability and service life of the equipment, and during transportation or installation, the adjusting rod 21 can be rotated to move the internal thread seat 22 along the guide shaft 23 to adjust the support between the frame 1 and the mounting base plate 19, thereby realizing the switching between stable support and spring support to meet the needs of different places.
[0038] See also Figure 1 , 2 4, wherein: a dustproof net 17 is detachably connected to the right side of the heat exchange shell 1103, and the dustproof net 17 shields the exhaust slot 1106.
[0039] In the present invention, the dustproof net 17 can filter external dust or impurities to prevent dust and debris from entering the heat exchange shell 1103 and causing blockage to affect the heat exchange effect.
[0040] See also Figure 2 and 4 , wherein: a water blocking seat 18 is fixedly connected to the inner wall of the air inlet pipe 1101, and both sides of the water blocking seat 18 are in an inclined state.
[0041] In the present invention, the water blocking seat 18 can prevent water from entering through the left end of the air inlet pipe 1101, thereby protecting the generator set 2.
[0042] The above is only a preferred specific implementation of the present invention; however, the protection scope of the present invention is not limited thereto. Any technician familiar with the technical field can make equivalent replacements or changes according to the technical solution and its improved conception within the technical scope disclosed by the present invention, which should be covered by the protection scope of the present invention.
Claims
1. A high-efficiency horizontal-axis wind turbine with rose-shaped blades, comprising a frame (1) and a generator set (2) mounted on the right side thereof, characterized in that: A rotating main shaft (3) is fixedly mounted on the output shaft of the generator set (2); a synchronous shaft (4) is arranged on the left side of the rotating main shaft (3); the synchronous shaft (4) is rotatably connected to the frame (1); a rose-shaped fan blade group (5) is fixedly mounted on the synchronous shaft (4); a mounting groove (301) is provided inside the rotating main shaft (3); a metal plate (6) is slidably connected to the inner wall of the mounting groove (301); uniformly distributed limiting rods (7) are fixedly mounted on the left side of the metal plate (6); uniformly distributed limiting grooves (401) are provided on the right side of the synchronous shaft (4); the limiting rods (7) are located inside the limiting grooves (401). The right side of the metal plate (6) is fixedly mounted with uniformly distributed limit springs (8), the other end of the limit spring (8) is fixedly connected to the inner wall of the mounting groove (301), the inner wall of the mounting groove (301) is fixedly mounted with a power supply electromagnet (9), the power supply electromagnet (9) is magnetically connected to the metal plate (6), a wind sensor (10) is fixedly mounted on the top of the frame (1), an auxiliary component (11) is connected to the frame (1), a processor (12) is integrated in the frame (1), and the power supply electromagnet (9), the wind sensor (10) and the auxiliary component (11) are all signal-connected to the processor (12); The auxiliary component (11) comprises an air inlet pipe (1101), the air inlet pipe (1101) is detachably connected to the top of the frame (1), the air inlet end of the air inlet pipe (1101) is located on the right side of the rose-shaped fan blade group (5), a heat insulation cover (1102) is fixedly installed on the right side of the frame (1), the generator set (2) is located on the top of the heat insulation cover (1102), the air inlet pipe (1101) is in communication with the top of the heat insulation cover (1102), and the heat insulation cover (1102) is connected to the top of the heat insulation cover (1102). ) is fixedly installed at the bottom of the rack (1) and is connected to the interior thereof; a thermal power generation module (1104) is fixedly installed on the inner wall of the heat exchange shell (1103); an exhaust slot (1106) is provided on the right side of the heat exchange shell (1103); an auxiliary power supply (1105) is fixedly installed inside the rack (1); the auxiliary power supply (1105) is signal-connected to the processor (12); and the thermal power generation module (1104) is electrically connected to the auxiliary power supply (1105).
2. A high-efficiency horizontal axis wind turbine with rose-shaped blades according to claim 1, characterized in that: A charging and discharging module (13) and a power management module (14) are installed on the inner wall of the frame (1), and both the power management module (14) and the charging and discharging module (13) are signal-connected to the processor (12).
3. A high-efficiency horizontal axis wind turbine with rose-shaped blades according to claim 1, characterized in that: The inner wall of the heat exchange shell (1103) is fixedly connected to partitions (15) arranged at equal distances, the inner wall of the heat exchange shell (1103) is fixedly connected to a guide plate (16), the guide plate (16) is located on the top of the partition (15), and the partition (15) is located on the top of the thermal power generation module (1104).
4. The high-efficiency horizontal axis wind turbine with rose-shaped blades according to claim 1, characterized in that: The right side of the heat exchange shell (1103) is detachably connected to a dustproof net (17), and the dustproof net (17) shields the exhaust slot (1106).
5. The high-efficiency horizontal-axis wind turbine with rose-shaped blades according to claim 1, characterized in that: A water blocking seat (18) is fixedly connected to the inner wall of the air inlet pipe (1101), and two sides of the water blocking seat (18) are in an inclined state.
6. The high-efficiency horizontal axis wind turbine with rose-shaped blades according to claim 1, characterized in that: The bottom of the frame (1) is provided with a mounting base plate (19), the top of the mounting base plate (19) is fixedly mounted with uniformly distributed spring dampers (20), the top of the spring dampers (20) is fixedly mounted on the bottom of the frame (1), the frame (1) is rotatably connected with uniformly distributed adjustment rods (21), the bottom ends of the adjustment rods (21) penetrate and extend to the bottom of the frame (1), the adjustment rods (21) are threadedly connected with internal thread seats (22), and the bottom of the internal thread seats (22) contacts the top of the mounting base plate (19).
7. A high-efficiency horizontal axis wind turbine with rose-shaped blades according to claim 6, characterized in that: The top of the mounting base plate (19) is fixedly connected to evenly distributed guide shafts (23), the top ends of the guide shafts (23) penetrate through and extend into the interior of the frame (1), and the internal threaded seat (22) is slidably connected to the guide shafts (23).
8. The high-efficiency horizontal-axis wind turbine with rose-shaped blades according to claim 1, characterized in that: The rose-shaped fan blade group (5) is composed of a plurality of arc-shaped blades, the arc-shaped blades are made of an aluminum alloy material, the structure composed of the plurality of arc-shaped blades is rose-shaped from a left-hand perspective, the arc-shaped blades gradually become thinner from the root close to the synchronous shaft (4) to the tip, and the arc-shaped blades are manufactured by a lost wax method.