A piston generator with high heat dissipation efficiency
Patent Information
- Application Number
- CN202511326227.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-17
- Publication Date
- 2026-08-18
- Estimated Expiration
- 2045-09-17
AI Technical Summary
[0003]活塞发电机发电时油缸通常采用风冷被动散热设计,其散热过程完全依赖外部空气对流换热实现热量耗散,然而,该散热方式存在热交换效率受限和环境敏感性强的问题,其散热能力相对较低且与风速呈正相关,在低风速条件下会导致热交换效率显著下降,可能引发发动机过热风险
该散热高效的活塞发电机,通过设置的发电本体机构、集风导流机构、进风导流机构、水雾喷洒降温机构和渗水收集机构,能够在使用时采用主动喷雾冷却技术,通过水雾喷洒机构向发电单元表面均匀喷射微米级水雾,同时结合进风导流结构形成定向气流加速液滴蒸发,从而高效带走热量,相较于传统被动散热方式,该方案显著提升散热效率并降低对环境风速的依赖。
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Figure CN120845173B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of generator technology, specifically to a piston generator with high heat dissipation efficiency. Background Technology
[0002] In the field of low-power aircraft piston engines, air-cooled two-stroke horizontally opposed aircraft piston engines dominate the application. Their advantages lie in the high power-to-weight ratio, simple structure, and flexible control strategy of two-stroke engines. High reliability can be achieved by equipping them with high power-to-weight ratio generators.
[0003] When a piston generator generates electricity, the cylinder usually adopts a passive air-cooled heat dissipation design. Its heat dissipation process relies entirely on external air convection heat exchange to dissipate heat. However, this heat dissipation method has the problems of limited heat exchange efficiency and strong environmental sensitivity. Its heat dissipation capacity is relatively low and is positively correlated with wind speed. Under low wind speed conditions, the heat exchange efficiency will decrease significantly, which may cause the engine to overheat. Summary of the Invention
[0004] In view of the shortcomings of the prior art, the present invention provides a piston generator with high heat dissipation efficiency, which solves the problems mentioned in the background.
[0005] This invention provides the following technical solution: a high-efficiency heat dissipation piston generator, comprising: a generator body mechanism, wherein air collecting and guiding mechanisms are provided on both sides of the generator body mechanism, and an air intake guiding mechanism is provided on one side of the air collecting and guiding mechanisms; the generator body mechanism includes an engine body, piston cylinders, heat sinks, a generator body, an air inlet, an exhaust outlet, an air intake extension pipe, and an exhaust extension pipe; the piston cylinders are respectively fixedly installed on both sides of the engine body; the number of heat sinks is multiple, and the multiple heat sinks are integrally installed on the surface of two piston cylinders; the generator body is fixedly installed on one side of the engine body, and the input end of the generator body is connected to the output end of the engine body via a coupling. The system is fixedly connected, with the air inlet and exhaust outlet integrally mounted on the surface of the piston cylinder. The air inlet extension pipe and the exhaust outlet extension pipe are respectively fixedly installed at one end of the air inlet and one end of the exhaust outlet. The air collection and guiding mechanism includes two guide cylinders, which are respectively fixedly sleeved on the surfaces of the two piston cylinders. The heat sink is located inside the guide cylinder. The air intake guiding mechanism includes two cooling fans, which are respectively located on one side of the two guide cylinders. Both cooling fans are electrically connected to the generator body. One end of the air inlet extension pipe and one end of the exhaust outlet extension pipe both penetrate the interior of the guide cylinder and extend to the exterior of the guide cylinder.
[0006] Preferably, a water mist spraying and cooling mechanism is installed on the surface of both air collection and guiding mechanisms, and a water seepage collection mechanism is installed on the surface of both air collection and guiding mechanisms. The water mist spraying and cooling mechanism is located above the guiding cylinder, and the water seepage collection mechanism is located below the guiding cylinder.
[0007] Preferably, the power generation body mechanism further includes a water-absorbing sleeve and a turbulence-dissipating hole, wherein the water-absorbing sleeve is fixedly sleeved on the surface of the heat sink, and the turbulence-dissipating hole is formed on the surface of the water-absorbing sleeve.
[0008] Preferably, the air collection and guiding mechanism further includes a heat dissipation exhaust mesh, an air inlet connector, a buffer pad, an end plate, a guide strip, a seepage port, and a seepage mesh. The surface of the guiding cylinder has a heat dissipation exhaust port, and the heat dissipation exhaust mesh is fixedly installed inside the heat dissipation exhaust port. The air inlet connector is integrally set on the surface of the guiding cylinder, and the air inlet connector and the heat dissipation exhaust mesh are distributed opposite to each other. The buffer pad is fixedly connected to one end of the guiding cylinder, and the surface of the buffer pad is in contact with the surface of the piston cylinder. The end plate is fixedly connected to the inner wall of the guiding cylinder. The guide strip is integrally set on the inner wall of the guiding cylinder. The seepage port is integrally set at the bottom of the guiding cylinder, and the seepage mesh is fixedly connected to the inner wall of the seepage port.
[0009] Preferably, the air intake guiding mechanism further includes a heat dissipation shroud and an air intake mesh. The heat dissipation shroud is fixedly installed on the surface of the air intake connector, the heat dissipation fan is fixedly installed inside the heat dissipation shroud, and the air inlet of the heat dissipation shroud is larger than the air outlet. The air intake mesh is fixedly connected to the inner wall of the heat dissipation shroud.
[0010] Preferably, the water mist spraying cooling mechanism includes a switching valve, a manifold, a water pump, atomizing nozzles, a connecting pipe, and a recovery pipe. The switching valve is fixedly installed on the surface of the guide tube, the manifold is fixedly connected to the inner wall of the switching valve, the water pump is fixedly installed on the surface of the manifold, and the output end of the water pump is connected to the interior of the manifold. There are multiple atomizing nozzles, and all multiple atomizing nozzles are fixedly installed on the lower surface of the manifold. The connecting pipe is fixedly connected between the input end of the water pump and the switching valve, and the recovery pipe is fixedly connected to one end of the switching valve.
[0011] Preferably, the seepage collection mechanism includes a seepage collection tank, a base plate, a light-transmitting plate, and a water level sensor. The seepage collection tank is fixedly connected to the surface of the seepage outlet, the base plate is fixedly connected to the bottom of the seepage collection tank, the light-transmitting plate is fixedly installed on the surface of the seepage collection tank, and the water level sensor is fixedly installed inside the base plate.
[0012] Preferably, the seepage collection mechanism further includes a connecting seat, a flow guiding hose, a counterweight, and a buffer sleeve. The flow guiding hose is fixedly connected to the inner wall of the seepage collection tank through the connecting seat, and the flow guiding hose is connected to the recovery pipe. The counterweight is fixedly connected to one end of the flow guiding hose, and the buffer sleeve is fixedly sleeved on the surface of the counterweight.
[0013] Preferably, the air collection and guiding mechanism further includes a heat dissipation and exhaust mesh, an air inlet connector, a buffer pad, and an end cap. The surface of the guide tube is provided with a heat dissipation and exhaust port. The heat dissipation and exhaust mesh is fixedly installed inside the heat dissipation and exhaust port. The air inlet connector is integrally set on the surface of the guide tube and is distributed opposite to the heat dissipation and exhaust mesh. The buffer pad is fixedly connected to one end of the guide tube, and the surface of the buffer pad is in contact with the surface of the piston cylinder. The end cap is fixedly connected to the inner wall of the guide tube.
[0014] Preferably, the air intake guiding mechanism further includes a heat dissipation shroud and an air intake mesh. The heat dissipation shroud is fixedly installed on the surface of the air intake connector, the heat dissipation fan is fixedly installed inside the heat dissipation shroud, and the air inlet of the heat dissipation shroud is larger than the air outlet. The air intake mesh is fixedly connected to the inner wall of the heat dissipation shroud.
[0015] Compared with the prior art, the present invention has the following beneficial effects: This highly efficient heat dissipation piston generator, through its generator body mechanism, air collection and guiding mechanism, air intake guiding mechanism, water mist spraying and cooling mechanism, and water seepage collection mechanism, can adopt active spray cooling technology during use. The water mist spraying mechanism evenly sprays micron-sized water mist onto the surface of the generator unit, while the air intake guiding structure forms a directional airflow to accelerate the evaporation of droplets, thereby efficiently removing heat. Compared with traditional passive heat dissipation methods, this solution significantly improves heat dissipation efficiency and reduces dependence on ambient wind speed.
[0016] This highly efficient heat dissipation piston generator, through its engine body, piston cylinder, heat sink, generator body, air inlet, exhaust outlet, air inlet extension pipe, exhaust extension pipe, water suction jacket, and turbulence cooling holes, can evenly distribute water mist on the surface of the heat sink through the water suction jacket during use, ensuring that the water mist can evaporate more quickly and carry away heat. At the same time, the turbulence cooling holes turbulent the airflow passing over the surface of the water suction jacket, thereby further improving the heat dissipation effect.
[0017] This highly efficient heat dissipation piston generator, through the inclusion of a flow guide tube, heat dissipation exhaust mesh, air inlet connector, buffer pad, end plate, flow guide strip, seepage port, and seepage mesh, can concentrate airflow during use, reducing airflow dispersion and ensuring improved water mist evaporation efficiency in Embodiment 1 and improved heat exchange efficiency in Embodiment 2.
[0018] This highly efficient heat dissipation piston generator, through its switching valve, manifold, water pump, atomizing nozzle, connecting pipe, and recovery pipe, can atomize cold water during use by using the atomizing nozzle, increasing the surface area of the cooling water, improving its evaporation efficiency, and thus enhancing the effect of evaporative heat dissipation.
[0019] This highly efficient heat dissipation piston generator, through its seepage collection tank, base plate, light-transmitting plate, water level sensor, connecting seat, flow guiding hose, counterweight, and buffer sleeve, can collect seepage water that has not evaporated in time during use, ensuring its recycling and reuse during subsequent heat dissipation. Attached Figure Description
[0020] Figure 1 This is a schematic diagram of the structure of the present invention; Figure 2 This is a bottom view of Embodiment 1 of the present invention; Figure 3 This is a schematic diagram of the structure of Embodiment 2 of the present invention; Figure 4 This is a schematic diagram of the power generation body structure according to Embodiment 1 of the present invention; Figure 5 This is a schematic diagram of the power generation body structure in Embodiment 2 of the present invention; Figure 6 This is an internal sectional view of the airflow guiding mechanism according to Embodiment 1 of the present invention; Figure 7 This is a schematic diagram of the exploded structure at the location of the air collection and guiding mechanism in Embodiment 1 of the present invention; Figure 8 This is a schematic diagram of the water mist spraying and cooling mechanism of the present invention; Figure 9 This is a schematic diagram of the exploded structure at the location of the air-collecting and guiding mechanism in Embodiment 2 of the present invention; Figure 10 This is an internal sectional view of the airflow guiding mechanism according to Embodiment 1 of the present invention; Figure 11 This is a cross-sectional view of the seepage collection mechanism of the present invention.
[0021] In the diagram: 101. Engine body; 102. Piston cylinder; 103. Cooling fins; 104. Generator body; 105. Air intake; 106. Exhaust port; 107. Intake extension pipe; 108. Exhaust extension pipe; 109. Water suction jacket; 110. Fluid cooling hole; 201. Flow guide; 202. Cooling and exhaust mesh; 203. Intake connector; 204. Buffer pad; 205. End plate; 206. Flow guide strip; 207. Drain outlet ; 208. Seepage barrier; 301. Cooling fan; 302. Cooling shroud; 303. Air intake barrier; 401. Diverter valve; 402. Manifold; 403. Water pump; 404. Atomizing nozzle; 405. Connecting pipe; 406. Recovery pipe; 501. Seepage collection tank; 502. Base plate; 503. Light-transmitting plate; 504. Water level sensor; 505. Connecting seat; 506. Flow guiding hose; 507. Counterweight; 508. Buffer sleeve. Detailed Implementation
[0022] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0023] Please see Figures 1-11A high-efficiency heat dissipation piston generator includes: a generator body mechanism, with air collection and guiding mechanisms on both sides of the generator body mechanism, and an air intake guiding mechanism on one side of the air collection and guiding mechanisms. The generator body mechanism includes an engine body 101, piston cylinders 102, heat sinks 103, a generator body 104, an air intake 105, an exhaust port 106, an intake extension pipe 107, and an exhaust extension pipe 108. The piston cylinders 102 are respectively fixedly installed on both sides of the engine body 101. There are multiple heat sinks 103, and the multiple heat sinks 103 are integrally installed on the surface of two piston cylinders 102. The generator body 104 is fixedly installed on one side of the engine body 101, and the input end of the generator body 104 is fixedly connected to the output end of the engine body 101 through a coupling. The air intake 105 and the exhaust port 106 are connected to the engine body 101. The inlet 106 is integrally set on the surface of the piston cylinder 102. The intake extension pipe 107 and the exhaust extension pipe 108 are respectively fixedly installed at one end of the intake port 105 and one end of the exhaust port 106. The air collection and guiding mechanism includes a guide cylinder 201, and there are two guide cylinders 201. The two guide cylinders 201 are respectively fixedly sleeved on the surface of the two piston cylinders 102. The heat sink 103 is located inside the guide cylinder 201. The air intake guiding mechanism includes a cooling fan 301, and there are two cooling fans 301. The two cooling fans 301 are respectively located on one side of the two guide cylinders 201. The two cooling fans 301 are electrically connected to the generator body 104. One end of the intake extension pipe 107 and one end of the exhaust extension pipe 108 both penetrate the interior of the guide cylinder 201 and extend to the exterior of the guide cylinder 201.
[0024] In this first embodiment: both air-collecting and air-guiding mechanisms are equipped with water mist spraying and cooling mechanisms, and both air-collecting and air-guiding mechanisms are equipped with water seepage collection mechanisms. The water mist spraying and cooling mechanisms are located above the air-guiding cylinder 201, and the water seepage collection mechanisms are located below the air-guiding cylinder 201. Through the power generation body mechanism, air-collecting and air-guiding mechanism, air-inlet guiding mechanism, water mist spraying and cooling mechanism, and water seepage collection mechanism, active spray cooling technology can be used during use. The water mist spraying mechanism uniformly sprays micron-level water mist onto the surface of the power generation unit. At the same time, combined with the air-inlet guiding structure, a directional airflow is formed to accelerate the evaporation of droplets, thereby efficiently removing heat. Compared with the traditional passive heat dissipation method, this solution significantly improves heat dissipation efficiency and reduces dependence on ambient wind speed.
[0025] The generator body mechanism also includes a water-absorbing sleeve 109 and a turbulence-dissipating hole 110. The water-absorbing sleeve 109 is fixedly sleeved on the surface of the heat sink 103, and the turbulence-dissipating hole 110 is opened on the surface of the water-absorbing sleeve 109. Through the engine body 101, piston cylinder 102, heat sink 103, generator body 104, air inlet 105, exhaust port 106, air inlet extension pipe 107, exhaust extension pipe 108, water-absorbing sleeve 109 and turbulence-dissipating hole 110, water mist can be evenly distributed on the surface of the heat sink 103 through the water-absorbing sleeve 109 during use, ensuring that the water mist can evaporate and carry away heat more quickly. At the same time, the turbulence-dissipating hole 110 turbulents the airflow passing over the surface of the water-absorbing sleeve 109, thereby further improving the heat dissipation effect.
[0026] The airflow guiding mechanism also includes a heat dissipation exhaust mesh 202, an air inlet connector 203, a buffer pad 204, an end plate 205, a guide strip 206, a seepage port 207, and a seepage mesh 208. A heat dissipation exhaust port is provided on the surface of the guide cylinder 201. The heat dissipation exhaust mesh 202 is fixedly installed inside the heat dissipation exhaust port. The air inlet connector 203 is integrally set on the surface of the guide cylinder 201, and the air inlet connector 203 and the heat dissipation exhaust mesh 202 are distributed opposite to each other. The buffer pad 204 is fixedly connected to one end of the guide cylinder 201, and the surface of the buffer pad 204 is in contact with the surface of the piston cylinder 102. The end plate 205 is fixed... A guide strip 206 is integrally set on the inner wall of the guide tube 201, and a seepage port 207 is integrally set on the bottom of the guide tube 201. A seepage mesh 208 is fixedly connected to the inner wall of the seepage port 207. Through the guide tube 201, heat dissipation and exhaust mesh 202, air inlet connector 203, buffer pad 204, end plate 205, guide strip 206, seepage port 207 and seepage mesh 208, the airflow can be gathered through the guide tube 201 during use, reducing the airflow dispersion effect, and ensuring improved water mist evaporation efficiency in Embodiment 1 and improved heat exchange efficiency in Embodiment 2.
[0027] The air intake guiding mechanism also includes a heat dissipation shroud 302 and an air intake baffle 303. The heat dissipation shroud 302 is fixedly installed on the surface of the air intake connector 203, and the cooling fan 301 is fixedly installed inside the heat dissipation shroud 302. The air inlet of the heat dissipation shroud 302 is larger than the air outlet. The air intake baffle 303 is fixedly connected to the inner wall of the heat dissipation shroud 302 so that the cooling fan 301 can improve the evaporation efficiency of the cooling water and assist in heat dissipation.
[0028] The water mist spraying cooling mechanism includes a switching valve 401, a manifold 402, a water pump 403, atomizing nozzles 404, a connecting pipe 405, and a recovery pipe 406. The switching valve 401 is fixedly installed on the surface of the guide tube 201. The manifold 402 is fixedly connected to the inner wall of the switching valve 401. The water pump 403 is fixedly installed on the surface of the manifold 402, and the output end of the water pump 403 is connected to the interior of the manifold 402. There are multiple atomizing nozzles 404. All components are fixedly installed on the lower surface of the manifold 402. The connecting pipe 405 is fixedly connected between the input end of the water pump 403 and the switching valve 401. The recovery pipe 406 is fixedly connected to one end of the switching valve 401. Through the switching valve 401, manifold 402, water pump 403, atomizing nozzle 404, connecting pipe 405 and recovery pipe 406, cold water can be atomized through the atomizing nozzle 404 during use, increasing the surface area of the cooling water, improving its evaporation efficiency, and thus improving the effect of evaporative heat dissipation.
[0029] The seepage collection mechanism includes a seepage collection tank 501, a base plate 502, a light-transmitting plate 503, and a water level sensor 504. The seepage collection tank 501 is fixedly connected to the surface of the seepage outlet 207, the base plate 502 is fixedly connected to the bottom of the seepage collection tank 501, the light-transmitting plate 503 is fixedly installed on the surface of the seepage collection tank 501, and the water level sensor 504 is fixedly installed inside the base plate 502. The water level sensor 504 is a device used to measure the height of liquid water level and is widely used in places such as water tanks, ponds, rivers, and lakes. Its working principle is to convert water level changes into electrical signals so that the monitoring and control system can perform corresponding operations.
[0030] The seepage collection mechanism also includes a connecting seat 505, a guide hose 506, a counterweight 507, and a buffer sleeve 508. The guide hose 506 is fixedly connected to the inner wall of the seepage collection tank 501 through the connecting seat 505, and the guide hose 506 is connected to the recovery pipe 406. The counterweight 507 is fixedly connected to one end of the guide hose 506, and the buffer sleeve 508 is fixedly sleeved on the surface of the counterweight 507. Through the seepage collection tank 501, the base plate 502, the light-transmitting plate 503, the water level sensor 504, the connecting seat 505, the guide hose 506, the counterweight 507, and the buffer sleeve 508, seepage water that has not evaporated in time can be collected during use, ensuring recycling and reuse during subsequent heat dissipation.
[0031] Working principle: In use, first connect the input end of the switching valve 401 to the water tank. During heat dissipation, start the water pump 403 and cooling fan 301. Connect the water tank to the connecting pipe 405 via the switching valve 401, and close the recovery pipe 406. The water pump 403 draws cold water from the water tank along the switching valve 401 and connecting pipe 405, then pumps it into the manifold 402. After entering the manifold 402, the cold water is atomized and sprayed from the bottom of the atomizing nozzle 404. Simultaneously, the cooling fan 301 pumps in cold air, which enters the guide tube 201 along the cooling shroud 302. The cold air then merges with the water mist, causing the water mist to be blown onto the water suction sleeve 109 on the surface of the heat sink 103. At this time, the heat generated by the piston cylinder 102 and the cold air accelerate the evaporation of the water mist. The air is heated into hot air. After the water mist evaporates, it carries away a large amount of heat and merges with the hot air. Then it passes through the heat dissipation exhaust mesh 202 and is discharged, thereby cooling the piston cylinder 102. When some water mist does not have time to evaporate, the water droplets formed by the water mist on the surface of the water suction jacket 109 fall into the bottom plate 502. When the water level inside the bottom plate 502 is too high, it will trigger the water level sensor 504, causing the switching valve 401 to switch. The switching valve 401 switches and shuts off the cold water in the water tank, connecting the connecting pipe 405 and the recovery pipe 406. This allows the seepage water collected inside the seepage collection tank 501 to be guided into the switching valve 401 along the guide hose 506 and the recovery pipe 406, and then pumped into the manifold 402 along the connecting pipe 405 for atomization and heat dissipation again.
[0032] In this second embodiment, the air collection and guiding mechanism also includes a heat dissipation and exhaust mesh 202, an air inlet connector 203, a buffer pad 204, and an end cap 205. The surface of the guide tube 201 is provided with a heat dissipation and exhaust port. The heat dissipation and exhaust mesh 202 is fixedly installed inside the heat dissipation and exhaust port. The air inlet connector 203 is integrally set on the surface of the guide tube 201, and the air inlet connector 203 and the heat dissipation and exhaust mesh 202 are distributed opposite to each other. The buffer pad 204 is fixedly connected to one end of the guide tube 201, and the surface of the buffer pad 204 is in contact with the surface of the piston cylinder 102. The end cap 205 is fixedly connected to the inner wall of the guide tube 201.
[0033] The air intake guiding mechanism also includes a heat dissipation shroud 302 and an air intake baffle 303. The heat dissipation shroud 302 is fixedly installed on the surface of the air intake connector 203, and the cooling fan 301 is fixedly installed inside the heat dissipation shroud 302. The air inlet of the heat dissipation shroud 302 is larger than the air outlet. The air intake baffle 303 is fixedly connected to the inner wall of the heat dissipation shroud 302 so that the airflow actively pumped by the cooling fan 301 can be guided into the guide tube 201 to achieve heat dissipation, thereby improving the concentration of airflow and the stability of heat dissipation.
[0034] Working principle: When in use, the cooling fan 301 is turned on, and the cooling fan 301 pumps in cold air. The cold air enters the guide tube 201 along the cooling shroud 302. Then, when the cold air passes through the exhaust extension pipe 108, it carries away the heat on its surface. Then, the hot air passes through the cooling exhaust mesh 202 and is discharged, thereby accelerating the heat dissipation of the piston cylinder 102.
[0035] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A piston generator with high heat dissipation efficiency, characterized in that, include: The generator body is equipped with air collecting and guiding mechanisms on both sides, and an air inlet guiding mechanism is provided on one side of the air collecting and guiding mechanism. The generator body includes an engine body (101), piston cylinders (102), heat sinks (103), a generator body (104), an air inlet (105), an exhaust port (106), an intake extension pipe (107), and an exhaust extension pipe (108). The piston cylinders (102) are fixedly installed on both sides of the engine body (101). There are multiple heat sinks (103), and the multiple heat sinks (103) are integrally set on the surface of two piston cylinders (102). The generator body (104) is fixedly installed on one side of the engine body (101), and the input end of the generator body (104) is fixedly connected to the output end of the engine body (101) through a coupling. The air inlet (105) and the exhaust port (106) are both integrally set on the surface of the piston cylinders (102). The intake extension pipe (107) is fixedly set on the surface of the piston cylinders (108). 07) and the exhaust gas extension pipe (108) are respectively fixedly installed at one end of the air inlet (105) and one end of the exhaust gas outlet (106). The air collection and guiding mechanism includes a guide cylinder (201), and there are two guide cylinders (201). The two guide cylinders (201) are respectively fixedly sleeved on the surface of the two piston cylinders (102). The heat sink (103) is located inside the guide cylinder (201). The air intake guiding mechanism includes a cooling fan (301), and there are two cooling fans (301). The two cooling fans (301) are respectively located on one side of the two guide cylinders (201). The two cooling fans (301) are electrically connected to the generator body (104). One end of the air intake extension pipe (107) and one end of the exhaust gas extension pipe (108) both penetrate the interior of the guide cylinder (201) and extend to the outside of the guide cylinder (201). Both of the aforementioned air-collecting and guiding mechanisms are equipped with water mist spraying and cooling mechanisms, and both of the air-collecting and guiding mechanisms are equipped with water seepage collection mechanisms. The water mist spraying and cooling mechanisms are located above the guide tube (201), and the water seepage collection mechanisms are located below the guide tube (201). The air intake guiding mechanism also includes a heat dissipation shroud (302) and an air intake baffle (303). The heat dissipation shroud (302) is fixedly installed on the surface of the air intake connector (203) of the air intake guiding mechanism. The heat dissipation fan (301) is fixedly installed inside the heat dissipation shroud (302), and the air inlet of the heat dissipation shroud (302) is larger than the air outlet. The air intake baffle (303) is fixedly connected to the inner wall of the heat dissipation shroud (302). The water mist spraying cooling mechanism includes a switching valve (401), a manifold (402), a water pump (403), atomizing nozzles (404), a connecting pipe (405), and a recovery pipe (406). The switching valve (401) is fixedly installed on the surface of the guide tube (201). The manifold (402) is fixedly connected to the inner wall of the switching valve (401). The water pump (403) is fixedly installed on the surface of the manifold (402), and the output end of the water pump (403) is connected to the interior of the manifold (402). There are multiple atomizing nozzles (404), and all multiple atomizing nozzles (404) are fixedly installed on the lower surface of the manifold (402). The connecting pipe (405) is fixedly connected between the input end of the water pump (403) and the switching valve (401). The recovery pipe (406) is fixedly connected to one end of the switching valve (401).
2. The piston generator with high heat dissipation efficiency according to claim 1, characterized in that, The power generation body mechanism also includes a water-absorbing sleeve (109) and a turbulence-dissipating hole (110). The water-absorbing sleeve (109) is fixedly sleeved on the surface of the heat sink (103), and the turbulence-dissipating hole (110) is opened on the surface of the water-absorbing sleeve (109).
3. The piston generator with high heat dissipation efficiency according to claim 1, characterized in that, The air collection and guiding mechanism also includes a heat dissipation exhaust mesh (202), a buffer pad (204), an end cap (205), a guide strip (206), a seepage port (207), and a seepage mesh (208). The surface of the guide cylinder (201) has a heat dissipation exhaust port. The heat dissipation exhaust mesh (202) is fixedly installed inside the heat dissipation exhaust port. The air inlet connector (203) is integrally disposed on the surface of the guide cylinder (201), and the air inlet connector (203) is connected to the heat dissipation exhaust mesh (202). For the distribution, the buffer pad (204) is fixedly connected to one end of the guide tube (201), and the surface of the buffer pad (204) is in contact with the surface of the piston cylinder (102). The end plate (205) is fixedly connected to the inner wall of the guide tube (201). The guide strip (206) is integrally set on the inner wall of the guide tube (201). The seepage port (207) is integrally set at the bottom of the guide tube (201). The seepage mesh (208) is fixedly connected to the inner wall of the seepage port (207).
4. The piston generator with high heat dissipation efficiency according to claim 1, characterized in that, The seepage collection mechanism includes a seepage collection tank (501), a base plate (502), a light-transmitting plate (503), and a water level sensor (504). The seepage collection tank (501) is fixedly connected to the surface of the seepage outlet (207), the base plate (502) is fixedly connected to the bottom of the seepage collection tank (501), the light-transmitting plate (503) is fixedly installed on the surface of the seepage collection tank (501), and the water level sensor (504) is fixedly installed inside the base plate (502).
5. A piston generator with high heat dissipation efficiency according to claim 4, characterized in that, The seepage collection mechanism also includes a connecting seat (505), a flow guide hose (506), a counterweight (507), and a buffer sleeve (508). The flow guide hose (506) is fixedly connected to the inner wall of the seepage collection tank (501) through the connecting seat (505), and the flow guide hose (506) is connected to the recovery pipe (406). The counterweight (507) is fixedly connected to one end of the flow guide hose (506), and the buffer sleeve (508) is fixedly sleeved on the surface of the counterweight (507).
6. A piston generator with high heat dissipation efficiency according to claim 1, characterized in that, The air collection and guiding mechanism also includes a heat dissipation exhaust mesh (202), a buffer pad (204), and an end plate (205). The surface of the guide tube (201) is provided with a heat dissipation exhaust port. The heat dissipation exhaust mesh (202) is fixedly installed inside the heat dissipation exhaust port. The air inlet connector (203) is integrally set on the surface of the guide tube (201) and the air inlet connector (203) is distributed opposite to the heat dissipation exhaust mesh (202). The buffer pad (204) is fixedly connected to one end of the guide tube (201) and the surface of the buffer pad (204) is in contact with the surface of the piston cylinder (102). The end plate (205) is fixedly connected to the inner wall of the guide tube (201).
Citation Information
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