Wind power generation device facilitating heat dissipation
By introducing a combined structure of the heat dissipation pipe and the spherical nozzle in the wind power generation device, and combining the top and side air inlet components, the problem of low air-cooling heat dissipation efficiency is solved, and rapid heat dissipation and equipment life are achieved.
Patent Information
- Application Number
- CN202510809042.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-17
- Publication Date
- 2025-07-18
AI Technical Summary
After working for a long time, the existing wind power generation devices cannot effectively and quickly cool down, affecting the service life of the equipment.
The combined structure of the heat dissipation pipe and the spherical nozzle is adopted, and the heat dissipation effect is enhanced by refrigerant evaporation and cold water spraying.
It realizes rapid heat dissipation of wind power plants and extends the service life of the equipment.
Smart Images

Figure CN120332116A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of wind power generation, and particularly to a wind power generation device facilitating heat dissipation. Background Art
[0002] A wind turbine is a power device that converts wind energy into mechanical work. The mechanical work drives the rotor to rotate, and finally outputs alternating current. A wind turbine generally consists of components such as a wind wheel, a generator, a yaw controller, a tower, a speed limit safety mechanism, and an energy storage device. The working principle of a wind turbine is relatively simple. The wind wheel rotates under the action of wind force, converting the kinetic energy of the wind into the mechanical energy of the wind wheel shaft. The generator rotates to generate electricity driven by the wind wheel shaft. Broadly speaking, wind energy is also solar energy. Therefore, it can also be said that a wind turbine is a heat energy utilization generator with the sun as the heat source and the atmosphere as the working medium.
[0003] The Chinese patent CN117212084A authorized and announced on December 12, 2023, discloses a wind power generation device facilitating heat dissipation. Among them, it includes a wind turbine housing. A cavity is formed inside the wind turbine housing. A temperature sensor and a cross beam are fixedly installed inside the cavity. A round hole communicating with the cavity is formed at one end of the wind turbine housing. In the above application document, when the device dissipates heat from the generator, only the air-cooling heat dissipation method is used. When the generator continuously works for a long time, the air-cooling heat dissipation cannot quickly cool down the generator, thus affecting the service life of the generator. Summary of the Invention
[0004] Aiming at the deficiencies of the prior art, the present invention provides a wind power generation device facilitating heat dissipation, solving the problems raised in the above background art. To achieve the above objectives, the present invention is realized through the following technical solutions: A wind power generation device facilitating heat dissipation, comprising: Support 1, above which is fixedly connected with a housing. On the left side of the housing is fixedly and movably connected with a power generation device; fixedly connected to the outside of the power generation device is a heat dissipation pipe, one end of the heat dissipation pipe is fixedly connected to the front side of a refrigeration pump, the other end of the heat dissipation pipe is fixedly connected to the rear side of the refrigeration pump, the bottom of the refrigeration pump is fixedly connected to a refrigeration liquid storage tank, the top of the housing is fixedly connected with a fixed block, the top of the fixed block is fixedly connected with a water tank, the right side of the water tank is fixedly connected with a water inlet pipe, the left side of the water tank is fixedly connected with a water outlet pipe, the top of the water outlet pipe is fixedly connected with a valve, the front side of the valve is fixedly connected with a push block 1, the right side of the push block 1 is slidably connected with a hydraulic block 1, the top of the hydraulic block 1 is fixedly connected with one end of a hose 1, the other end of the hose 1 is fixedly connected with the top of the heat dissipation pipe, the right side of the water outlet pipe is movably connected with a spherical nozzle through a rotating shaft 1, and the spherical nozzle is movably connected with the heat dissipation pipe through a transmission member. Through the setting of the heat dissipation pipe and the spherical nozzle, the refrigerant in the heat dissipation pipe absorbs the heat of the housing of the power generation device and evaporates into a gas state, and then cold water is sprayed from the spherical nozzle onto the heat dissipation pipe, causing the refrigerant to change from a gas state to a liquid state, thereby quickly dissipating the heat generated by the operation of the power generation device and extending the service life of the device.
[0005] Preferably, the transmission member includes a gear 1, a rack 1, a hydraulic block 2, and a hose 2. The top of the rotating shaft 1 is fixedly connected with a gear 1. The bottom of the hydraulic block 2 is fixedly connected with the fixed block through a support block. A rack 1 is slidably connected inside the hydraulic block 2, and the rack 1 meshes with the gear 1.
[0006] Preferably, a temperature sensor is fixedly connected to the front side wall surface inside the housing. The controller is fixedly connected to the inside of the housing through a support 2. One side of the support 2 is fixedly connected to the controller, and the other side of the support 2 is fixedly connected with a motor. The right side of the motor is rotatably connected with a heat dissipation device. The top of the housing is movably connected with an air inlet device. The top of the housing is movably connected with a top air inlet assembly. The two sides of the housing are movably connected with side air inlet assemblies. The bottom of the fixed block is fixedly connected with a drainage trough.
[0007] Preferably, the number of the spherical nozzles is two, and each spherical nozzle is symmetrically distributed about the midline of the fixed block. The number of the gears 1 is two, the number of the racks 1 is two, and the number of the hydraulic blocks 2 is two.
[0008] Preferably, the top air inlet assembly includes an air inlet block, a first air inlet, a first push block, a third hydraulic block, a third bracket, and a third hose. The top of the housing is slidably connected to the air inlet block through a first chute opened on its surface. The first air inlet is opened inside the air inlet block. The bottom of the air inlet block is fixedly connected to the second push block. The bottom of the second push block is slidably connected to the third hydraulic block. The bottom of the third hydraulic block is fixedly connected to the third bracket. The side of the third bracket is fixedly connected to the inner side wall of the housing. The right side of the third hydraulic block is fixedly connected to one end of the third hose. The other end of the third hose is fixedly connected to the side of the heat dissipation pipe. Through the setting of the top air inlet assembly, when the refrigerant further vaporizes, the air inlet block is lifted, so that the outside air blows towards the power generation device, and the heat generated by the power generation device is further removed, prolonging the service life of the device.
[0009] Preferably, the number of the first push blocks is two, and each first push block is symmetrically distributed about the midline of the housing. The number of the first push blocks is two, the number of the third hydraulic blocks is two, and the number of the third brackets is two.
[0010] Preferably, the inside of the third hose communicates with the inside of the third hydraulic block, and the inside of the third hose communicates with the inside of the heat dissipation pipe.
[0011] Preferably, the side air inlet assembly includes a side air inlet block, a second air inlet, a second rotating shaft, a third gear, a third rack, a fourth hydraulic block, and a fourth hose. The two sides of the housing are movably connected to the side air inlet block through second chutes opened on their surfaces. The second air inlet is opened inside the side air inlet block. The second rotating shaft penetrates and is fixedly connected to the inside of the side air inlet block. The top of the second rotating shaft is fixedly connected to the second gear. The fourth hydraulic block is fixedly connected to the inner side wall of the housing. The second rack is slidably connected to the left side of the fourth hydraulic block. The second rack meshes with the second gear. The side of the fourth hydraulic block is fixedly connected to one end of the fourth hose. The other end of the fourth hose is fixedly connected to the outside of the heat dissipation pipe. Through the setting of the side air inlet assembly, when the heat of the heat dissipation pipe cannot be dissipated only by cold water, the refrigerant further vaporizes, causing the side air inlet block to rotate, so that the outside air on both sides blows into the housing, and the heat generated by the power generation device is further removed, prolonging the service life of the device.
[0012] Preferably, the number of the side air inlet blocks is two, and each side air inlet block is symmetrically distributed about the midline of the housing. The number of the second rotating shafts is two, the number of the third gears is two, the number of the third racks is two, and the number of the fourth hydraulic blocks is two.
[0013] Preferably, the direction of the second air inlet guides towards the inside of the housing.
[0014] The present invention provides a wind power generation device that facilitates heat dissipation, with the following beneficial effects: (1) For the wind power generation device that facilitates heat dissipation, when in use, heat is generated by the power generation equipment, causing the refrigerant in the heat dissipation pipe to evaporate into a gaseous state. In cooperation with the first hose, water tank, valve, first push block, first hydraulic block, spherical nozzle, first rotating shaft, first gear, first rack, second hydraulic block, second hose, and drainage groove, cold water in the water tank flushes the heat dissipation pipe, causing the refrigerant in the heat dissipation pipe to re-condense into a liquid state, thereby removing the heat of the power generation equipment.
[0015] (2) For the wind power generation device that facilitates heat dissipation, when the heat of the refrigerant in the heat dissipation pipe cannot be removed by flushing with cold water during use, the refrigerant further evaporates. In cooperation with the third hose, air inlet block, first air inlet, second push block, third hydraulic block, and third bracket, the external wind at the top enters the device interior, enhancing the heat dissipation capacity of the device.
[0016] (3) For the wind power generation device that facilitates heat dissipation, when the heat of the refrigerant in the heat dissipation pipe cannot be removed by flushing with cold water during use, the refrigerant further evaporates. In cooperation with the side air inlet block, second air inlet, second rotating shaft, second gear, second rack, fourth hydraulic block, and fourth hose, the external wind on both sides of the housing enters the device interior, enhancing the heat dissipation capacity of the device and extending the service life of the device. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 is a three-dimensional structure schematic diagram of the overall appearance of the present invention; Figure 2 is a three-dimensional structure schematic diagram of the overall cross-section of the present invention; Figure 3 is of the present invention Figure 2 the enlarged structure schematic diagram at A in; Figure 4 is a three-dimensional structure schematic diagram of some components of the present invention; Figure 5 is a three-dimensional structure schematic diagram of some components of the present invention; Figure 6 is a schematic diagram of the back structure of the top air inlet component of the present invention; Figure 7 is a schematic diagram of the front structure of the top air inlet component of the present invention; Figure 8 is a schematic diagram of the side air inlet component of the present invention.
[0018] In the figure: 100, first bracket; 200, housing; 300, power generation equipment; 400, temperature sensor; 500, controller; 600, motor; 700, second bracket; 800, heat dissipation equipment; 900, air inlet equipment 1001, Refrigeration pump; 1002, Heat dissipation pipe; 1003, Refrigeration liquid storage tank; 1004, Fixed block; 1005, Water tank; 1006, Water inlet pipe; 1007, Water outlet pipe; 1008, Valve; 1009, Push block 1; 1010, Hydraulic block 1; 1011, Hose 1; 1012, Spherical nozzle; 1013, Rotating shaft 1; 1014, Gear 1; 1015, Rack 1; 1016, Hydraulic block 2; 1017, Hose 2; 1018, Drainage trough 1100, Top air inlet assembly; 1101, Air inlet block; 1102, Air inlet 1; 1103, Push block 2; 1104, Hydraulic block 3; 1105, Bracket 3; 1106, Hose 3; 1200, Side air inlet assembly; 1201, Side air inlet block; 1202, Air inlet 2; 1203, Rotating shaft 2; 1204, Gear 2; 1205, Rack 2; 1206, Hydraulic block 4; 1207, Hose 4. Specific implementation mode
[0019] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments.
[0020] Example 1, please refer to Figures 1 - 4 , A wind power generation device convenient for heat dissipation, including: Support 100, a housing 200 is fixedly connected above the support 100, a power generation device 300 is fixedly and movably connected to the left side of the housing 200, a temperature sensor 400 is fixedly connected to the front side wall surface inside the housing 200. By setting the temperature sensor 400, the temperature inside the housing 200 can be monitored in real time. Inside the housing 200, a controller 500 is fixedly connected through a support 2 700. One side of the support 2 700 is fixedly connected to the controller 500, and the other side of the support 2 700 is fixedly connected to a motor 600. The right side of the motor 600 is rotatably connected to a heat dissipation device 800. By setting the heat dissipation device 800, the air inside the housing 200 flows towards the tail. An air intake device 900 is movably connected to the top of the housing 200, a top air intake assembly 1100 is movably connected to the top of the housing 200, and side air intake assemblies 1200 are movably connected to both sides of the housing 200. A drain trough 1018 is fixedly connected to the bottom of the fixed block 1004. By setting the drain trough 1018, the cold water in the water tank 1005 flushes the heat dissipation pipe 1002 and then flows into the drain trough 1018, so that the water will not flow into the device interior, thus protecting the internal circuit of the device;A heat dissipation pipe 1002 is fixedly connected to the outside of the power generation device 300. By providing the heat dissipation pipe 1002, the heat generated by the power generation device 300 is transferred to the refrigerant inside the heat dissipation pipe 1002 through the heat dissipation pipe 1002. One end of the heat dissipation pipe 1002 is fixedly connected to the front side of the refrigeration pump 1001, and the other end of the heat dissipation pipe 1002 is fixedly connected to the rear side of the refrigeration pump 1001. By providing the refrigeration pump 1001, the refrigerant flows in the heat dissipation pipe 1002, thereby cyclically absorbing the heat generated by the power generation device 300. The bottom of the refrigeration pump 1001 is fixedly connected to a refrigeration liquid storage tank 1003. A fixing block 1004 is fixedly connected to the top of the housing 200. By providing the fixing block 1004, a part of the pipe section of the heat dissipation pipe 1002 can be evenly laid above the slope of the fixing block 1004, thereby increasing the contact area between the cold water and the heat dissipation pipe 1002. A water tank 1005 is fixedly connected to the top of the fixing block 1004. A water inlet pipe 1006 is fixedly connected to the right side of the water tank 1005, and a water outlet pipe 1007 is fixedly connected to the left side of the water tank 1005. A valve 1008 is fixedly connected to the top of the water outlet pipe 1007. A first push block 1009 is fixedly connected to the front side of the valve 1008. A first hydraulic block 1010 is slidably connected to the right side of the first push block 1009. The top of the first hydraulic block 1010 is fixedly connected to one end of a first hose 1011. The other end of the first hose 1011 is fixedly connected to the top of the heat dissipation pipe 1002. The right side of the water outlet pipe 1007 is movably connected to a spherical nozzle 1012 through a first rotating shaft 1013. The number of spherical nozzles 1012 is two, and each spherical nozzle 1012 is symmetrically distributed about the midline of the fixing block 1004. The number of first gears 1014 is two, the number of first racks 1015 is two, and the number of second hydraulic blocks 1016 is two. The spherical nozzle 1012 is movably connected to the heat dissipation pipe 1002 through a transmission member. The transmission member includes a first gear 1014, a first rack 1015, a second hydraulic block 1016, and a second hose 1017. The top of the first rotating shaft 1013 is fixedly connected to a first gear 1014. The bottom of the second hydraulic block 1016 is fixedly connected to the fixing block 1004 through a support block. A first rack 1015 is slidably connected to the inside of the second hydraulic block 1016. The first rack 1015 meshes with the first gear 1014. By providing the heat dissipation pipe 1002 and the spherical nozzle 1012, after the refrigerant in the heat dissipation pipe 1002 absorbs the heat of the power generation device 300, it evaporates into a gas state, and then the spherical nozzle 1012 sprays cold water on the heat dissipation pipe 1002, so that the refrigerant is converted from a gas state to a liquid state, thereby quickly dissipating the heat generated by the operation of the power generation device 300 and improving the service life of the device.;
[0021] In use, when the temperature sensor 400 detects that the temperature inside the housing 200 is too high, the refrigeration pump 1001 is started, and the refrigerant inside the refrigeration liquid storage tank 1003 circulates through the heat dissipation pipe 1002, so that the heat generated by the operation of the power generation device 300 is absorbed by the refrigerant. When the heat increases, part of the refrigerant evaporates from the liquid state into the gaseous state, increasing the pressure inside the heat dissipation pipe 1002. The excess pressure is transmitted through the first hose 1011 to the first hydraulic block 1010, causing the first hydraulic block 1010 to be compressed, pushing out the first push block 1009, opening the valve 1008, allowing the cold water in the water tank 1005 to flow out through the water outlet pipe 1007. At the same time, the excess pressure is transmitted through the second hose 1017 to the second hydraulic block 1016, causing the second hydraulic block 1016 to be compressed, moving the two first racks 1015 inward, rotating the first gear 1014, and thus rotating the two spherical nozzles 1012, so that the cold water in the water tank 1005 is evenly sprinkled on the heat dissipation pipe 1002, absorbing and removing the heat of the refrigerant in the heat dissipation pipe 1002, causing the refrigerant to condense into a liquid state and participate in the next cycle, quickly removing the heat generated by the power generation device 300, and extending the service life of the device.
[0022] Embodiment 2. Please refer to Figures 1 - 6 , on the basis of Embodiment 1, the top air inlet assembly 1100 includes an air inlet block 1101, a first air inlet 1102, a second push block 1103, a third hydraulic block 1104, a third bracket 1105, and a third hose 1106. The top of the housing 200 is slidably connected to the air inlet block 1101 through a first chute opened on its surface. The inside of the air inlet block 1101 is provided with a first air inlet 1102. By providing the first air inlet 1102, the outside air can directly blow onto the surface of the power generation device 300. The bottom of the air inlet block 1101 is fixedly connected to the second push block 1103. The bottom of the second push block 1103 is slidably connected to the third hydraulic block 1104. The bottom of the third hydraulic block 1104 is fixedly connected to the third bracket 1105. The side of the third bracket 1105 is fixedly connected to the inner side wall of the housing 200. The right side of the third hydraulic block 1104 is fixedly connected to one end of the third hose 1106. The other end of the third hose 1106 is fixedly connected to the side of the heat dissipation pipe 1002. The inside of the third hose 1106 is communicated with the inside of the third hydraulic block 1104, and the inside of the third hose 1106 is communicated with the inside of the heat dissipation pipe 1002. By providing the third hose 1106, the pressure inside the heat dissipation pipe 1002 is transmitted to the inside of the third hydraulic block 1104. The number of the second push blocks 1103 is two, and each second push block 1103 is symmetrically distributed about the midline of the housing 200. The number of the second push blocks 1103 is two, the number of the third hydraulic blocks 1104 is two, and the number of the third brackets 1105 is two. By providing the top air inlet assembly 1100, when the refrigerant further vaporizes, the air inlet block 1101 is lifted, so that the outside air blows onto the power generation device 300, further removing the heat generated by the power generation device 300 and extending the service life of the device.
[0023] During use, based on the first embodiment, when the power generation device 300 operates continuously for a long time and the heat generated cannot be removed by the cold water in the water tank 1005, the refrigerant absorbs heat and further evaporates into a gas state, and the internal pressure of the heat dissipation pipe 1002 further increases. The excess pressure inside the heat dissipation pipe 1002 is transmitted to the hydraulic block three 1104 through the hose three 1106, causing the hydraulic block three 1104 to be compressed, the push block two 1103 to move upward, the air inlet block 1101 to move upward, the front side of the air inlet one 1102 to be completely in contact with the outside air, the outside wind to enter the inside of the housing 200 through the air inlet one 1102, the heat generated by the continuous long-term operation of the power generation device 300 to be blown towards the tail of the housing 200, and then blown to the outside through the heat dissipation device 800, so that the heat generated by the power generation device 300 is further removed, and the service life of the device is extended.
[0024] For the third embodiment, please refer to Figures 1 - 8 Based on the first and second embodiments, the side air inlet assembly 1200 includes side air inlet blocks 1201, air inlets two 1202, rotating shafts two 1203, gears two 1204, racks two 1205, hydraulic blocks four 1206, and hoses four 1207. The two sides of the housing 200 are movably connected to the side air inlet blocks 1201 through the chutes two opened on their surfaces. The inside of the side air inlet blocks 1201 is provided with air inlets two 1202. By providing the air inlets two 1202, the outside air on both sides can directly blow into the inside of the housing 200, and the direction of the air inlets two 1202 guides towards the inside of the housing 200. The inside of the side air inlet blocks 1201 is penetrated and fixedly connected with rotating shafts two 1203. The number of side air inlet blocks 1201 is two, and each side air inlet block 1201 is symmetrically distributed about the midline of the housing 200. The number of rotating shafts two 1203 is two, the number of gears two 1204 is two, the number of racks two 1205 is two, and the number of hydraulic blocks four 1206 is two. The tops of the rotating shafts two 1203 are fixedly connected with gears two 1204. The inner side walls of the housing 200 are fixedly connected with hydraulic blocks four 1206. The left sides of the hydraulic blocks four 1206 are slidably connected with racks two 1205. The racks two 1205 are meshed with the gears two 1204. The sides of the hydraulic blocks four 1206 are fixedly connected with one ends of the hoses four 1207. The other ends of the hoses four 1207 are fixedly connected with the outer sides of the heat dissipation pipes 1002. By providing the hoses four 1207, the pressure inside the heat dissipation pipes 1002 is transmitted to the inside of the hydraulic blocks four 1206. By providing the side air inlet assembly 1200, when the heat of the heat dissipation pipes 1002 cannot be dissipated only by cold water, the refrigerant further vaporizes, causing the side air inlet blocks 1201 to rotate, the outside air on both sides to blow into the inside of the housing 200, and the heat generated by the power generation device 300 to be further removed, and the service life of the device is extended.
[0025] In use, on the basis of the first and second embodiments, when the power generation device 300 works continuously for a long time and the heat generated cannot be removed by the cold water in the water tank 1005, the refrigerant absorbs heat and further evaporates into a gas state, and the internal pressure of the heat dissipation pipe 1002 further increases. The excess pressure inside the heat dissipation pipe 1002 is transmitted to the hydraulic block four 1206 through the hose four 1207, causing the hydraulic block four 1206 to be compressed, pushing out the rack two 1205, rotating the gear two 1204, rotating the rotating shaft two 1203, rotating the side air inlet block 1201 outward to open, allowing the outside air on both sides of the housing 200 to blow into the interior of the housing 200 through the air inlet two 1202, further removing the heat generated by the power generation device 300, and extending the service life of the device.
[0026] The above is only a preferred specific embodiment of the present invention, but the protection scope of the present invention is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present invention, according to the technical solution and inventive concept of the present invention, making equivalent substitutions or changes, should be covered by the protection scope of the present invention.
Claims
1. A wind power generation device facilitating heat dissipation, characterized in that, Including: A first bracket (100), with a housing (200) fixedly connected above the first bracket (100), and a power generation device (300) movably connected to the left side of the housing (200); A heat dissipation pipe (1002) is fixedly connected to the outside of the power generation device (300). One end of the heat dissipation pipe (1002) is fixedly connected to the front side of a refrigeration pump (1001), and the other end of the heat dissipation pipe (1002) is fixedly connected to the rear side of the refrigeration pump (1001). The bottom of the refrigeration pump (1001) is fixedly connected to a refrigeration liquid storage tank (1003). A fixing block (1004) is fixedly connected to the top of the housing (200), a water tank (1005) is fixedly connected to the top of the fixing block (1004), a water inlet pipe (1006) is fixedly connected to the right side of the water tank (1005), a water outlet pipe (1007) is fixedly connected to the left side of the water tank (1005), a valve (1008) is fixedly connected to the top of the water outlet pipe (1007), a first push block (1009) is fixedly connected to the front side of the valve (1008), a first hydraulic block (1010) is slidably connected to the right side of the first push block (1009), the top of the first hydraulic block (1010) is fixedly connected to one end of a first hose (1011), the other end of the first hose (1011) is fixedly connected to the top of the heat dissipation pipe (1002), and the right side of the water outlet pipe (1007) is movably connected to a spherical nozzle (1012) through a first rotating shaft (1013). The spherical nozzle (1012) is movably connected to the heat dissipation pipe (1002) through a transmission member.
2. The wind power generation device facilitating heat dissipation according to claim 1, wherein: The transmission member includes a first gear (1014), a first rack (1015), a second hydraulic block (1016), and a second hose (1017). The top of the first rotating shaft (1013) is fixedly connected to the first gear (1014). The bottom of the second hydraulic block (1016) is fixedly connected to the fixing block (1004) through a support block. A first rack (1015) is slidably connected to the inside of the second hydraulic block (1016), and the first rack (1015) meshes with the first gear (1014).
3. A wind power generation device facilitating heat dissipation according to claim 1, characterized in that: A temperature sensor (400) is fixedly connected to the inner front side wall surface of the housing (200). A controller (500) is fixedly connected to the inside of the housing (200) through a second bracket (700). One side of the second bracket (700) is fixedly connected to the controller (500), and the other side of the second bracket (700) is fixedly connected to a motor (600). A heat dissipation device (800) is rotatably connected to the right side of the motor (600). An air inlet device (900) is movably connected to the top of the housing (200). A top air inlet assembly (1100) is movably connected to the top of the housing (200). Side air inlet assemblies (1200) are movably connected to both sides of the housing (200). A drainage groove (1018) is fixedly connected to the bottom of the fixing block (1004).
4. A wind power generation device facilitating heat dissipation according to claim 1, characterized in that: The number of the spherical nozzles (1012) is two, and each spherical nozzle (1012) is symmetrically distributed about the midline of the fixed block (1004). The number of the first gears (1014) is two, the number of the first racks (1015) is two, and the number of the second hydraulic blocks (1016) is two.
5. The wind power generation device facilitating heat dissipation according to claim 3, wherein: The top air inlet assembly (1100) includes an air inlet block (1101), a first air inlet (1102), a second push block (1103), a third hydraulic block (1104), a third bracket (1105), and a third hose (1106). The top of the outer shell (200) is slidably connected to the air inlet block (1101) through a first chute opened on its surface. The first air inlet (1102) is opened inside the air inlet block (1101). The second push block (1103) is fixedly connected to the bottom of the air inlet block (1101). The bottom of the second push block (1103) is slidably connected to the third hydraulic block (1104). The third hydraulic block (1104) is fixedly connected to the bottom of the third bracket (1105). The side of the third bracket (1105) is fixedly connected to the inner side wall of the outer shell (200). The right side of the third hydraulic block (1104) is fixedly connected to one end of the third hose (1106), and the other end of the third hose (1106) is fixedly connected to the side of the heat dissipation pipe (1002).
6. The wind power generation device facilitating heat dissipation according to claim 5, wherein: The number of the second push blocks (1103) is two, and each second push block (1103) is symmetrically distributed about the midline of the outer shell (200). The number of the second push blocks (1103) is two, the number of the third hydraulic blocks (1104) is two, and the number of the third brackets (1105) is two.
7. The wind power generation device for facilitating heat dissipation according to claim 5, characterized in that: The inside of the third hose (1106) is communicated with the inside of the third hydraulic block (1104), and the inside of the third hose (1106) is communicated with the inside of the heat dissipation pipe (1002).
8. The wind power generation device facilitating heat dissipation according to claim 5, wherein: The side air inlet assembly (1200) includes a side air inlet block (1201), a second air inlet (1202), a second rotating shaft (1203), a second gear (1204), a second rack (1205), a fourth hydraulic block (1206), and a fourth hose (1207). The two sides of the outer shell (200) are movably connected to the side air inlet block (1201) through second chutes opened on its surface. The second air inlet (1202) is opened inside the side air inlet block (1201). The second rotating shaft (1203) penetrates and is fixedly connected to the inside of the side air inlet block (1201). The second gear (1204) is fixedly connected to the top of the second rotating shaft (1203). The fourth hydraulic block (1206) is fixedly connected to the inner side wall of the outer shell (200). The second rack (1205) is slidably connected to the left side of the fourth hydraulic block (1206). The second rack (1205) meshes with the second gear (1204). The side of the fourth hydraulic block (1206) is fixedly connected to one end of the fourth hose (1207), and the other end of the fourth hose (1207) is fixedly connected to the outside of the heat dissipation pipe (1002).
9. The wind power generation device facilitating heat dissipation according to claim 8, wherein: The number of the side air inlet blocks (1201) is two, and each of the side air inlet blocks (1201) is symmetrically distributed about the midline of the housing (200). The number of the second rotating shafts (1203) is two, the number of the second gears (1204) is two, the number of the second racks (1205) is two, and the number of the fourth hydraulic blocks (1206) is two.
10. A wind power generation device facilitating heat dissipation according to claim 8, characterized in that: The direction of the second air inlet (1202) guides to the inside of the housing (200).
Citation Information
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