Control cabinet provided with heat dissipation structure and used for geothermal energy heating device
By designing a dynamically adjusted heat dissipation mechanism and installation adjustment mechanism in the control cabinet of the geothermal energy heating device, the heat accumulation problem caused by the inability to adjust the installation position of the water pump control element is solved, and more efficient heat dissipation effect and energy saving are achieved.
Patent Information
- Application Number
- CN202510671017.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-23
- Publication Date
- 2025-06-20
- Estimated Expiration
- 2045-05-23
AI Technical Summary
In the geothermal energy central heating device, the installation position of the water pump control element cannot be adjusted, resulting in the heat being unable to be discharged quickly during heat dissipation, resulting in heat accumulation, inability to cool down and increase the risk of overheating and damage to the component, affecting the heat dissipation effect.
A control cabinet for geothermal energy heating device equipped with a heat dissipation structure is designed, including a heat dissipation mechanism and an installation and adjustment mechanism. The heat dissipation mechanism includes a ventilation base, a first and a second heat dissipation fan, a dustproof net and an adjustable windshield plate, and dynamic adjustment of the fan and windshield plate is achieved by adjusting the motor and sprocket transmission assembly to improve heat dissipation efficiency. The installation adjustment mechanism realizes the height adjustment and fixation of the heat dissipation plate and components through the lifting and lowering sliding sleeve and locking gear, ensuring the rapid discharge of air and heat.
By dynamically adjusting the fan and windshield, the rapid discharge of air and heat is achieved, the heat dissipation effect of the control cabinet is improved, the service life of the components is extended, and natural wind is used to dissipate heat when there is no need for blowing and cooling, achieving the effect of saving energy.
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Figure CN120186980A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of geothermal heating, and specifically to a control cabinet for a geothermal energy heating device provided with a heat dissipation structure. Background Art
[0002] At present, most heating projects are large-scale municipal pipe network projects, mainly using the waste heat of power plants in combination with fossil fuels such as coal and natural gas. With the improvement of environmental awareness, geothermal heating is receiving increasing attention. Geothermal heating mostly uses two wells, one production well and one reinjection well. Therefore, geothermal heating requires the use of production well pumps, circulation pumps, reinjection booster pumps, and re-lift pumps. These pumps are all controlled by control components installed in the pump control cabinet.
[0003] Publication No. CN215446611U discloses a geothermal energy central heating device, which can install pump control components for different purposes on mounting plates at different positions, avoiding confusion caused by installing them together, facilitating later maintenance. At the same time, before installation, the mounting plate can be slid outwards for easy installation, and the mounting plate can be fixed by tightening bolts. The internal temperature of the control cabinet can be monitored by a temperature sensor. When the control components inside the control cabinet generate heat during operation, causing the internal temperature of the control cabinet to rise to the set value, the controller will automatically start the electric fan to cool the inside of the control cabinet by air cooling, reducing the internal temperature of the control cabinet and prolonging the service life of the control components. By setting moving wheels, the control cabinet is easy to move and convenient to transfer to the required position. At the same time, after transferring to the required position, the pressure plate can be pressed against the ground and tightened by rotating the threaded rod, making the control cabinet more stable and not easy to shake when stationary. However, the following problems still exist in the actual use of this patent: Although this geothermal energy central heating device can install pump control components for different purposes on mounting plates at different positions, avoiding confusion caused by installing them together and facilitating later maintenance, the installation positions of the pump control components cannot be adjusted. As a result, when the control cabinet dissipates heat, the internal heat cannot be quickly discharged, resulting in heat accumulation. This not only fails to achieve the cooling effect but also increases the risk of component overheating and damage, thus affecting the heat dissipation effect of the control cabinet.
[0004] Therefore, a control cabinet for a geothermal energy heating device provided with a heat dissipation structure is proposed to solve the problems raised above. Summary of the Invention
[0005] The purpose of the present invention is to provide a control cabinet for a geothermal energy heating device with a heat dissipation structure, so as to solve the problem that the installation position of the water pump control element cannot be adjusted in the above-mentioned background technology, resulting in the inability to quickly discharge the internal heat during the heat dissipation of the control cabinet, causing heat accumulation. This not only fails to achieve the cooling effect but also increases the risk of component overheating and damage, thus affecting the heat dissipation effect of the control cabinet.
[0006] To achieve the above purpose, the present invention provides the following technical solution: A control cabinet for a geothermal energy heating device with a heat dissipation structure, including a heat dissipation mechanism, and first heat dissipation brackets installed on both sides of the heat dissipation mechanism; An installation and adjustment mechanism is arranged inside the heat dissipation mechanism, and a support base is arranged at the top of the installation and adjustment mechanism; It also includes: The heat dissipation mechanism includes a control cabinet body. On both sides inside the control cabinet body, first dust-proof nets are symmetrically installed. On the front of the control cabinet body, cabinet doors are symmetrically rotatably connected. At the bottom of the control cabinet body, a ventilation base is fixedly installed; Among them, through holes are opened at the bottom of the control cabinet body and the top of the ventilation base. On both sides inside the ventilation base, a number of first heat dissipation boxes are fixedly installed. The number of the first heat dissipation boxes is six; Among them, a second dust-proof net is fixedly installed on the outside of the first heat dissipation box, and a first heat dissipation fan is fixedly installed inside the first heat dissipation box.
[0007] Preferably, support springs are symmetrically installed on both sides inside the ventilation base. At the top of the two support springs, support plates are fixedly installed. On the top of the two support plates, first racks are symmetrically installed. On one side of the first rack, a number of first gears are meshed. A rotating connection shaft is fixedly connected between the two first gears.
[0008] Preferably, rotating louvers are symmetrically installed on both sides of the rotating connection shaft. The rotating connection shaft is rotatably connected to the first heat dissipation bracket. The first heat dissipation brackets are symmetrically installed on the outside of the control cabinet body close to the first dust-proof net. A support block is fixedly installed at the central position inside the ventilation base, and an adjustment motor is fixedly installed at the bottom of the ventilation base close to the support block.
[0009] Preferably, the output end of the adjustment motor is fixedly connected to a first sprocket transmission component. On the top of the first sprocket transmission component, second sprocket transmission components are symmetrically installed. On the top of the two second sprocket transmission components, adjustment threaded rods are symmetrically installed. An adjustment threaded sleeve is threadedly connected to the outside of the adjustment threaded rod. One side of the adjustment threaded sleeve is rotatably connected to a first adjustment rotating rod.
[0010] Preferably, a first wind deflector is rotatably connected to the top of the first adjustment rotating rod. Second adjustment rotating rods are symmetrically and rotatably connected to one side of the first wind deflector. A second wind deflector is rotatably connected to the tops of the two second adjustment rotating rods. Third adjustment rotating rods are symmetrically and rotatably connected to one side of the second wind deflector. A third wind deflector is rotatably connected to the tops of the two third adjustment rotating rods. The first wind deflector, the second wind deflector, and the third wind deflector are all rotatably connected to the ventilation base. A second heat dissipation bracket is fixedly installed on the top of the control cabinet body.
[0011] Preferably, a third dust-proof net is fixedly installed on the inner side of the bottom of the second heat dissipation bracket. A second heat dissipation fan is fixedly installed inside the second heat dissipation bracket. A motor cover is fixedly installed on one side of the top of the second heat dissipation bracket. An opening and closing motor is fixedly installed on one side inside the motor cover. The output end of the opening and closing motor is fixedly connected to a third sprocket transmission assembly. Opening and closing bidirectional threaded rods are symmetrically connected to one side of the third sprocket transmission assembly. Opening and closing threaded sleeves are symmetrically threaded on the outer sides of the two opening and closing bidirectional threaded rods. An opening and closing baffle is fixedly installed on the tops of the two opening and closing threaded sleeves. Support columns are fixedly installed around the top of the control cabinet body. A protective ceiling is fixedly installed on the top of the support columns.
[0012] Preferably, the installation adjustment mechanism includes an installation heat dissipation plate. Lifting sliding sleeves are symmetrically installed on both sides of the installation heat dissipation plate. A lifting sliding rod is slidably connected inside the lifting sliding sleeve. A fixed bracket is arranged on the outer side of the lifting sliding rod. The lifting sliding rod and the fixed bracket are both fixedly installed on the inner periphery of the control cabinet body. A number of fixing holes are provided inside the fixed bracket. Locking brackets are fixedly installed on the front and back of the installation heat dissipation plate. A locking knob is rotatably connected to the center position of the front locking bracket.
[0013] Preferably, a locking connection shaft is fixedly installed inside the locking knob. Locking gears are fixedly installed at both ends of the locking connection shaft. Locking racks are meshed with the top and bottom of the two locking gears. The locking racks are snap-connected to the fixed bracket through the fixing holes. Adjustment chutes are symmetrically provided inside the installation heat dissipation plate. A number of adjustment sliders are slidably connected inside the adjustment chutes. A clamping bracket is fixedly installed on the tops of the two adjustment sliders. A clamping knob is rotatably connected to the front of the clamping bracket. A clamping bidirectional threaded rod is fixedly installed at the end of the clamping knob. Clamping threaded sleeves are symmetrically threaded on the outer side of the clamping bidirectional threaded rod. A clamping plate is fixedly installed on the top of the clamping threaded sleeve. Spring clamping blocks are arranged on the outer side of the clamping plate.
[0014] Preferably, the support base is symmetrically installed on one side of the top of the clamping bracket. Connecting springs are fixedly installed around the top of the support base. A positioning bracket is fixedly installed at the top of the connecting springs. Positioning sliding rods are symmetrically installed inside the positioning bracket. Positioning sliding sleeves are slidably connected to the outer sides of the two positioning sliding rods. A positioning rotating rod is rotatably connected to the bottom of the positioning sliding sleeve. A positioning spring is fixedly installed on one side of the positioning sliding sleeve. A positioning ring is fixedly installed at the top of the positioning sliding sleeve.
[0015] Compared with the prior art, the beneficial effects of the present invention are as follows: For this control cabinet for a geothermal heating device provided with a heat dissipation structure, by the third wind deflector squeezing the support plate, the support plate drives the first rack to descend. Utilizing the meshing connection between the first rack and the first gear, the rotation of the rotating connecting shaft and the rotating louvers can be realized, and the first heat dissipation bracket can be closed, facilitating the blowing and heat dissipation of the control cabinet body. When it is necessary to remove the connecting wire, by pressing the positioning bracket, under the action of the positioning rotating rod, the positioning sliding sleeve drives the positioning ring to move relatively, facilitating the removal of the connecting wire from the inside of the positioning ring. The specific content is as follows: 1. By setting up a heat dissipation mechanism, not only can the first dust-proof nets on both sides inside the control cabinet body be used for dust prevention, but also the first heat dissipation fans on both sides of the ventilation base cooperate with the second heat dissipation fan on the top to blow air for heat dissipation. While blowing air for heat dissipation, start the adjustment motor to drive the first sprocket transmission assembly and the second sprocket transmission assembly to rotate. At the same time, the second sprocket transmission assembly drives the adjustment screw rod to rotate, so that the adjustment thread sleeve moves up and down on the outside of the adjustment screw rod while driving the first adjustment rotating rod and the first wind deflector to rotate. Under the action of the second adjustment rotating rod, the second wind deflector can be rotated. At the same time, under the action of the third adjustment rotating rod, the third wind deflector is rotated. By adjusting the first wind deflector, the second wind deflector and the third wind deflector to an inclined position, it is convenient for the air and heat inside to quickly pass through the ventilation base through the first wind deflector, the second wind deflector and the third wind deflector, thereby improving the heat dissipation effect of the entire control cabinet body. At the same time, by the third wind deflector squeezing the support plate, the support plate drives the first rack to descend. Utilizing the meshing connection between the first rack and the first gear, the rotation of the rotating connecting shaft and the rotating louvers can be realized, and the first heat dissipation bracket can be closed, which is convenient for blowing air for heat dissipation of the control cabinet body. When it is not necessary to blow air for heat dissipation of the control cabinet body, under the action of the support spring, the support plate rises, and the rotating louvers rotate to a horizontal position, and the control cabinet body can be cooled by natural wind, thereby achieving the effect of energy conservation. By rotating the first wind deflector, the second wind deflector and the third wind deflector to a horizontal position, the through holes can be blocked, so that the ventilation base and the control cabinet body can be partitioned, thus avoiding the phenomenon that the internal components of the control cabinet body are short-circuited due to ground moisture return, which is convenient for the safety protection of the control cabinet body. By starting the opening and closing motor to drive the rotation of the third sprocket transmission assembly and the opening and closing bidirectional screw rod, the opening and closing thread sleeve drives the opening and closing baffle to move relatively, and the opening and closing baffle can be unfolded when blowing air for heat dissipation, and the opening and closing baffle can be closed when dissipating heat by natural wind, thereby improving the heat dissipation effect under different heat dissipation conditions. At the same time, when the outside temperature is too high, the control cabinet body can be quickly cooled by cold air through an external refrigeration device; 2. By setting up the installation and adjustment mechanism, not only can the locking knob be rotated to drive the locking connecting shaft and the locking gear to rotate, but also, taking advantage of the meshing connection between the locking gear and the locking rack, the relative movement of the locking rack can be achieved. By virtue of the clamping connection between the locking rack and the fixing hole, the fixation of the entire installation heat dissipation plate can be realized, facilitating the height adjustment of the installation heat dissipation plate. Meanwhile, by taking advantage of the sliding connection between the adjustment chute and the adjustment slider, the horizontal adjustment of the clamping bracket can be achieved. When blowing air for heat dissipation, by adjusting the relative position of the clamping bracket, the accumulation of heat inside the control cabinet body can be avoided, thus affecting the heat dissipation of the entire control cabinet body. At the same time, the positions of various components can be adjusted, thereby improving the heat dissipation effect of the control cabinet body. By rotating the clamping knob to drive the clamping bidirectional threaded rod to rotate, the clamping thread sleeve drives the clamping plate to move relatively. With the spring clip, the components can be clamped and fixed, facilitating the installation of the components. Meanwhile, by pressing down the connecting wire of the component on the top of the positioning ring, and taking advantage of the structural characteristics of the positioning ring, the positioning ring moves relatively, facilitating the installation of the connecting wire into the inside of the positioning ring, thereby realizing the fixation of the connecting wire and avoiding the mess of the lines, which may affect the installation and maintenance of the entire control cabinet body. When it is necessary to remove the connecting wire, the connecting wire can be taken out of the inside of the positioning ring by pressing the positioning bracket, and under the action of the positioning rotating rod, the positioning sliding sleeve drives the positioning ring to move relatively. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 is a three-dimensional structural schematic diagram of the whole invention; Figure 2 is a three-dimensional structural schematic diagram of the heat dissipation mechanism in the invention; Figure 3 is a three-dimensional sectional structural schematic diagram of the ventilation base in the invention; Figure 4 is a three-dimensional structural schematic diagram of the rotating connecting shaft and the rotating louvers in the invention; Figure 5 is a three-dimensional structural schematic diagram of the first sprocket drive assembly, the second sprocket drive assembly and the adjustment threaded rod in the invention; Figure 6 is a three-dimensional structural schematic diagram of the first wind baffle, the second wind baffle and the third wind baffle in the invention; Figure 7 is a three-dimensional structural schematic diagram of the support column and the protective ceiling in the invention; Figure 8 is a three-dimensional structural schematic diagram of the opening and closing bidirectional threaded rod, the opening and closing thread sleeve and the opening and closing baffle in the invention; Figure 9 is a three-dimensional structural schematic diagram of the installation and adjustment mechanism in the invention; Figure 10 is a three-dimensional structural schematic diagram of the installation heat dissipation plate in the invention; Figure 11Schematic diagram of the three-dimensional structure of the positioning ring in the present invention; Figure 12 In the present invention Figure 10 Schematic diagram of the enlarged structure of area A; Figure 13 In the present invention Figure 10 Schematic diagram of the enlarged structure of area B; Figure 14 In the present invention Figure 10 Schematic diagram of the enlarged structure of area C.
[0017] In the figure: 1. Heat dissipation mechanism; 101. Control cabinet body; 102. First dust-proof net; 103. Cabinet door; 104. Ventilation base; 105. Through hole; 106. First heat dissipation box; 107. Second dust-proof net; 108. First heat dissipation fan; 109. Support spring; 110. Support plate; 111. First rack; 112. First gear; 113. Rotating connection shaft; 114. Rotating louvers; 115. First heat dissipation bracket; 116. Support block; 117. Adjusting motor; 118. First sprocket transmission component; 119. Second sprocket transmission component; 120. Adjusting threaded rod; 121. Adjusting threaded sleeve; 122. First adjusting rotating rod; 123. First wind baffle; 124. Second adjusting rotating rod; 125. Second wind baffle; 126. Third adjusting rotating rod; 127. Third wind baffle; 128. Second heat dissipation bracket; 129. Third dust-proof net; 130. Second heat dissipation fan; 131. Motor cover; 132. Opening and closing motor; 133. Third sprocket transmission component; 134. Opening and closing bidirectional threaded rod; 135. Opening and closing threaded sleeve; 136. Opening and closing baffle; 137. Support column; 138. Protective ceiling; 2. Installation and adjustment mechanism; 201. Installation heat dissipation plate; 202. Lifting sliding sleeve; 203. Lifting sliding rod; 204. Fixed bracket; 205. Fixed hole; 206. Locking bracket; 207. Locking knob; 208. Locking connection shaft; 209. Locking gear; 210. Locking rack; 211. Adjusting chute; 212. Adjusting slider; 213. Clamping bracket; 214. Clamping knob; 215. Clamping bidirectional threaded rod; 216. Clamping threaded sleeve; 217. Clamping plate; 218. Spring clamping block; 219. Support base; 220. Connecting spring; 221. Positioning bracket; 222. Positioning sliding rod; 223. Positioning sliding sleeve; 224. Positioning rotating rod; 225. Positioning spring; 226. Positioning ring. Detailed implementation manners
[0018] The following will clearly and completely describe the technical solutions in the embodiments of the present invention with reference to 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 of the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.
[0019] Please refer to Figures 1-6, the present invention provides a technical solution: a control cabinet for a geothermal heating device with a heat dissipation structure, including a heat dissipation mechanism 1 and first heat dissipation brackets 115 installed on both sides of the heat dissipation mechanism 1. An installation and adjustment mechanism 2 is arranged inside the heat dissipation mechanism 1, and a support base 219 is arranged on the top of the installation and adjustment mechanism 2. The heat dissipation mechanism 1 includes a control cabinet body 101. First dust-proof nets 102 are symmetrically installed on both sides inside the control cabinet body 101. Cabinet doors 103 are symmetrically rotatably connected to the front of the control cabinet body 101. A ventilation base 104 is fixedly installed at the bottom of the control cabinet body 101. Among them, through holes 105 are opened at the bottom of the control cabinet body 101 and the top of the ventilation base 104. A number of first heat dissipation boxes 106 are fixedly installed on both sides inside the ventilation base 104. The number of the first heat dissipation boxes 106 is six. Among them, a second dust-proof net 107 is fixedly installed on the outside of the first heat dissipation box 106. A first heat dissipation fan 108 is fixedly installed inside the first heat dissipation box 106. Support springs 109 are symmetrically installed on both sides inside the ventilation base 104. The tops of the two support springs 109 are fixedly installed with support plates 110. First racks 111 are symmetrically installed on the tops of the two support plates 110. A number of first gears 112 are meshed with one side of the first rack 111. A rotating connection shaft 113 is fixedly connected between the two first gears 112. Rotating louvers 114 are symmetrically installed on both sides of the rotating connection shaft 113. The rotating connection shaft 113 is rotatably connected to the first heat dissipation bracket 115. The first heat dissipation brackets 115 are symmetrically installed on the outside of the control cabinet body 101 close to the first dust-proof net 102. A support block 116 is fixedly installed at the central position inside the ventilation base 104. An adjustment motor 117 is fixedly installed at the bottom of the ventilation base 104 close to the support block 116. The output end of the adjustment motor 117 is fixedly connected with a first sprocket transmission assembly 118. Second sprocket transmission assemblies 119 are symmetrically installed on the top of the first sprocket transmission assembly 118. Adjustment threaded rods 120 are symmetrically installed on the tops of the two second sprocket transmission assemblies 119. An adjustment threaded sleeve 121 is threadedly connected to the outside of the adjustment threaded rod 120. One side of the adjustment threaded sleeve 121 is rotatably connected with a first adjustment rotating rod 122. The top of the first adjustment rotating rod 122 is rotatably connected with a first wind deflector 123. Second adjustment rotating rods 124 are symmetrically rotatably connected to one side of the first wind deflector 123. The tops of the two second adjustment rotating rods 124 are rotatably connected with a second wind deflector 125. Third adjustment rotating rods 126 are symmetrically rotatably connected to one side of the second wind deflector 125. The tops of the two third adjustment rotating rods 126 are rotatably connected with a third wind deflector 127. Dust is prevented by the first dust-proof nets 102 on both sides inside the control cabinet body 101. At the same time, the first heat dissipation fans 108 on both sides of the ventilation base 104 cooperate with the second heat dissipation fans 130 on the top to blow and dissipate heat. While blowing and dissipating heat, the adjustment motor 117 is started to drive the first sprocket transmission assembly 118 and the second sprocket transmission assembly 119 to rotate.Meanwhile, the second sprocket drive assembly 119 drives the adjusting threaded rod 120 to rotate, causing the adjusting threaded sleeve 121 to move up and down on the outside of the adjusting threaded rod 120 while driving the first adjusting rotating rod 122 and the first wind deflector 123 to rotate. Under the action of the second adjusting rotating rod 124, the second wind deflector 125 can be rotated, and at the same time, under the action of the third adjusting rotating rod 126, the third wind deflector 127 can be rotated. By adjusting the first wind deflector 123, the second wind deflector 125, and the third wind deflector 127 to an inclined position, it is convenient for the air and heat inside to quickly pass through the ventilation base 104 through the first wind deflector 123, the second wind deflector 125, and the third wind deflector 127, thereby improving the heat dissipation effect of the entire control cabinet body 101.,
[0020] Please refer to Figures 6-8, the first wind deflector 123, the second wind deflector 125, and the third wind deflector 127 are all rotatably connected to the ventilation base 104. A second heat dissipation bracket 128 is fixedly installed on the top of the control cabinet body 101. A third dust-proof net 129 is fixedly installed on the inner side of the bottom of the second heat dissipation bracket 128. A second heat dissipation fan 130 is fixedly installed on the inner side of the second heat dissipation bracket 128. A motor cover 131 is fixedly installed on one side of the top of the second heat dissipation bracket 128. An opening and closing motor 132 is fixedly installed on the inner side of the motor cover 131. The output end of the opening and closing motor 132 is fixedly connected to a third sprocket transmission assembly 133. A pair of opening and closing bidirectional threaded rods 134 are symmetrically connected to one side of the third sprocket transmission assembly 133. A pair of opening and closing threaded sleeves 135 are symmetrically and threadedly connected to the outer sides of the two opening and closing bidirectional threaded rods 134. An opening and closing baffle 136 is fixedly installed on the top of the two opening and closing threaded sleeves 135. Support columns 137 are fixedly installed around the top of the control cabinet body 101. A protective ceiling 138 is fixedly installed on the top of the support columns 137. By the third wind deflector 127 pressing against the support plate 110, the support plate 110 drives the first rack 111 to descend. Utilizing the meshing connection between the first rack 111 and the first gear 112, the rotation of the rotating connection shaft 113 and the rotating louvers 114 can be realized, and the first heat dissipation bracket 115 can be closed, facilitating the blowing heat dissipation of the control cabinet body 101. When the blowing heat dissipation of the control cabinet body 101 is not required, under the action of the support spring 109, the support plate 110 rises, causing the rotating louvers 114 to rotate to the horizontal position, enabling the control cabinet body 101 to be cooled by natural wind, thereby achieving the effect of energy conservation. By rotating the first wind deflector 123, the second wind deflector 125, and the third wind deflector 127 to the horizontal position, the through hole 105 can be blocked, thereby enabling the partition between the ventilation base 104 and the control cabinet body 101, avoiding the phenomenon of short circuits in the internal components of the control cabinet body 101 caused by ground moisture return, and facilitating the safety protection of the control cabinet body 101. By starting the opening and closing motor 132 to drive the rotation of the third sprocket transmission assembly 133 and the opening and closing bidirectional threaded rods 134, the opening and closing threaded sleeves 135 drive the opening and closing baffle 136 to move relatively, enabling the opening and closing baffle 136 to be unfolded during blowing heat dissipation and closed during natural wind heat dissipation, thereby improving the heat dissipation effect under different heat dissipation conditions. At the same time, when the external temperature is too high, the control cabinet body 101 can be quickly cooled by using cold air through external refrigeration equipment.
[0021] Please refer to Figures 9-10 , Figures 12-14, the installation and adjustment mechanism 2 includes an installation heat dissipation plate 201. Lifting sliding sleeves 202 are symmetrically installed on both sides of the installation heat dissipation plate 201. A lifting sliding rod 203 is slidably connected inside the lifting sliding sleeve 202. A fixed bracket 204 is installed on the outer side of the lifting sliding rod 203. The lifting sliding rod 203 and the fixed bracket 204 are both fixedly installed around the inside of the control cabinet body 101. A number of fixing holes 205 are provided inside the fixed bracket 204. Locking brackets 206 are fixedly installed on the front and back of the installation heat dissipation plate 201. A locking knob 207 is rotatably connected to the center position of the front locking bracket 206. A locking connection shaft 208 is fixedly installed inside the locking knob 207. Locking gears 209 are fixedly installed at both ends of the locking connection shaft 208. Locking racks 210 are meshed and connected to the top and bottom of the two locking gears 209. The locking racks 210 are snap-connected to the fixed bracket 204 through the fixing holes 205. Adjustment chutes 211 are symmetrically provided inside the installation heat dissipation plate 201. A number of adjustment sliders 212 are slidably connected inside the adjustment chutes 211. A clamping bracket 213 is fixedly installed on the top of the two adjustment sliders 212. Rotating the locking knob 207 drives the locking connection shaft 208 and the locking gears 209 to rotate. By using the characteristic of the meshing connection between the locking gears 209 and the locking racks 210, the relative movement of the locking racks 210 can be realized. By using the characteristic of the snap connection between the locking racks 210 and the fixing holes 205, the fixation of the entire installation heat dissipation plate 201 can be realized, facilitating the height adjustment of the installation heat dissipation plate 201. At the same time, by using the characteristic of the sliding connection between the adjustment chutes 211 and the adjustment sliders 212, the horizontal adjustment of the clamping bracket 213 can be realized. When blowing air for heat dissipation, by adjusting the relative position of the clamping bracket 213, the accumulation of heat inside the control cabinet body 101 can be avoided, thereby affecting the heat dissipation of the entire control cabinet body 101. At the same time, the positions of various components can be adjusted, thereby improving the heat dissipation effect of the control cabinet body 101.
[0022] Please refer to Figures 10-11, a clamping knob 214 is rotatably connected to the front of the clamping bracket 213. A clamping bidirectional threaded rod 215 is fixedly installed at the end of the clamping knob 214. Clamping threaded sleeves 216 are symmetrically threadedly connected to the outside of the clamping bidirectional threaded rod 215. A clamping plate 217 is fixedly installed at the top of the clamping threaded sleeve 216. A spring clip 218 is arranged on the outside of the clamping plate 217. Support bases 219 are symmetrically installed on one side of the top of the clamping bracket 213. Connecting springs 220 are fixedly installed around the top of the support base 219. A positioning bracket 221 is fixedly installed at the top of the connecting spring 220. Positioning sliding rods 222 are symmetrically installed inside the positioning bracket 221. Positioning sliding sleeves 223 are slidably connected to the outside of the two positioning sliding rods 222. A positioning rotating rod 224 is rotatably connected to the bottom of the positioning sliding sleeve 223. A positioning spring 225 is fixedly installed on one side of the positioning sliding sleeve 223. A positioning ring 226 is fixedly installed at the top of the positioning sliding sleeve 223. By rotating the clamping knob 214 to drive the clamping bidirectional threaded rod 215 to rotate, the clamping threaded sleeve 216 drives the clamping plate 217 to move relatively. The spring clip 218 can be used to clamp and fix the component, facilitating the installation of the component. At the same time, by pressing down the top of the connecting wire of the component on the positioning ring 226, using the structural characteristics of the positioning ring 226, the positioning ring 226 moves relatively, facilitating the installation of the connecting wire into the positioning ring 226, thereby realizing the fixation of the connecting wire and avoiding the mess of the lines, which affects the installation and maintenance of the entire control cabinet body 101. When the connecting wire needs to be removed, the positioning bracket 221 can be pressed. Under the action of the positioning rotating rod 224, the positioning sliding sleeve 223 drives the positioning ring 226 to move relatively, facilitating the removal of the connecting wire from the positioning ring 226.
[0023] Working principle: Before using the control cabinet for the geothermal energy heating device with a heat dissipation structure, it is necessary to first check the overall situation of the device to determine that it can work normally. According to Figure 1 - Figure 14As shown in the figure, first, by rotating the clamping knob 214, the clamping bidirectional threaded rod 215 is driven to rotate, so that the clamping threaded sleeve 216 drives the clamping plate 217 to move relatively. The spring clip 218 can be used to clamp and fix the component, which is convenient for the installation of the component. At the same time, by pressing down the connecting wire of the component on the top of the positioning ring 226, and using the structural characteristics of the positioning ring 226, the positioning ring 226 moves relatively, which is convenient for installing the connecting wire into the inside of the positioning ring 226, thereby realizing the fixation of the connecting wire and avoiding the mess of the circuit, which affects the installation and maintenance of the entire control cabinet body 101. When the connecting wire needs to be removed, the positioning bracket 221 can be pressed, and under the action of the positioning rotating rod 224, the positioning sliding sleeve 223 drives the positioning ring 226 to move relatively, which is convenient for taking out the connecting wire from the inside of the positioning ring 226. Rotating the locking knob 207 drives the locking connecting shaft 208 and the locking gear 209 to rotate. Using the meshing connection between the locking gear 209 and the locking rack 210, the relative movement of the locking rack 210 can be realized. Using the characteristic that the locking rack 210 is engaged with the fixing hole 205, the fixation of the entire installation heat dissipation plate 201 is realized, which is convenient for adjusting the height of the installation heat dissipation plate 201. At the same time, by using the characteristic of the sliding connection between the adjustment chute 211 and the adjustment slider 212, the horizontal adjustment of the clamping bracket 213 can be realized. When blowing and dissipating heat, the relative position of the clamping bracket 213 can be adjusted to avoid the accumulation of heat inside the control cabinet body 101, which affects the heat dissipation of the entire control cabinet body 101. At the same time, the positions of each component can be adjusted, thereby improving the heat dissipation effect of the control cabinet body 101.
[0024] Secondly, the first dust-proof net 102 on both sides inside the control cabinet body 101 is used for dust prevention. At the same time, the first heat dissipation fans 108 on both sides of the ventilation base 104 cooperate with the second heat dissipation fan 130 on the top for blowing and dissipating heat. While blowing and dissipating heat, the adjustment motor 117 is started to drive the first sprocket transmission assembly 118 and the second sprocket transmission assembly 119 to rotate. At the same time, the second sprocket transmission assembly 119 drives the adjustment threaded rod 120 to rotate, so that the adjustment threaded sleeve 121 moves up and down on the outside of the adjustment threaded rod 120 and drives the first adjustment rotating rod 122 and the first wind baffle 123 to rotate. Under the action of the second adjustment rotating rod 124, the rotation of the second wind baffle 125 can be realized. At the same time, under the action of the third adjustment rotating rod 126, the rotation of the third wind baffle 127 is realized. By adjusting the first wind baffle 123, the second wind baffle 125 and the third wind baffle 127 to an inclined position, it is convenient for the air and heat inside to quickly pass through the ventilation base 104 through the first wind baffle 123, the second wind baffle 125 and the third wind baffle 127, thereby improving the heat dissipation effect of the entire control cabinet body 101.
[0025] Finally, the third wind deflector 127 presses the support plate 110, causing the support plate 110 to drive the first rack 111 to descend. By utilizing the meshing connection between the first rack 111 and the first gear 112, the rotation of the rotating connection shaft 113 and the rotating louvers 114 can be achieved, and the first heat dissipation bracket 115 can be closed, facilitating the blowing heat dissipation of the control cabinet body 101. When the blowing heat dissipation of the control cabinet body 101 is not required, under the action of the support spring 109, the support plate 110 rises, causing the rotating louvers 114 to rotate to the horizontal position, enabling the control cabinet body 101 to dissipate heat using natural wind, thereby achieving the effect of energy conservation. By rotating the first wind deflector 123, the second wind deflector 125, and the third wind deflector 127 to the horizontal position, the through hole 105 can be blocked, thereby enabling the partition between the ventilation base 104 and the control cabinet body 101, avoiding the phenomenon of short - circuit of internal components of the control cabinet body 101 caused by ground moisture return, and facilitating the safety protection of the control cabinet body 101. By starting the opening - closing motor 132 to drive the rotation of the third sprocket transmission assembly 133 and the opening - closing bidirectional threaded rod 134, the opening - closing threaded sleeve 135 drives the opening - closing baffle 136 to move relatively. The opening - closing baffle 136 can be unfolded during blowing heat dissipation and closed during natural wind heat dissipation, thereby improving the heat dissipation effect under different heat dissipation conditions. At the same time, when the external temperature is too high, the control cabinet body 101 can be quickly cooled by external refrigeration equipment using cold air.
[0026] Although the present invention has been described in detail with reference to the foregoing embodiments, for those skilled in the art, they can still modify the technical solutions recorded in the foregoing embodiments, or perform equivalent replacements for some of the technical features. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included within the protection scope of the present invention.
Claims
1. A control cabinet for a geothermal heating device with a heat dissipation structure, comprising a heat dissipation mechanism (1), and first heat dissipation brackets (115) installed on both sides of the heat dissipation mechanism (1); An installation and adjustment mechanism (2) is arranged inside the heat dissipation mechanism (1), and a support base (219) is arranged on the top of the installation and adjustment mechanism (2); It is characterized in that It further includes: The heat dissipation mechanism (1) includes a control cabinet body (101). On both sides inside the control cabinet body (101), first dust-proof nets (102) are symmetrically installed. On the front of the control cabinet body (101), cabinet doors (103) are symmetrically and rotatably connected. At the bottom of the control cabinet body (101), a ventilation base (104) is fixedly installed. Among them, through holes (105) are provided at the bottom of the control cabinet body (101) and the top of the ventilation base (104). On both sides inside the ventilation base (104), a number of first heat dissipation boxes (106) are fixedly installed. The number of the first heat dissipation boxes (106) is six. Among them, a second dust-proof net (107) is fixedly installed on the outside of the first heat dissipation box (106), and a first heat dissipation fan (108) is fixedly installed inside the first heat dissipation box (106).
2. The control cabinet for a geothermal heating device with a heat dissipation structure according to claim 1, characterized in that: On both sides inside the ventilation base (104), support springs (109) are symmetrically installed. At the top of the two support springs (109), support plates (110) are fixedly installed. On the top of the two support plates (110), first racks (111) are symmetrically installed. On one side of the first rack (111), a number of first gears (112) are meshed. Between the two first gears (112), a rotating connection shaft (113) is fixedly connected.
3. The control cabinet for a geothermal heating device with a heat dissipation structure according to claim 2, characterized in that: On both sides of the rotating connection shaft (113), rotating louvers (114) are symmetrically installed. The rotating connection shaft (113) is rotatably connected to a first heat dissipation bracket (115). The first heat dissipation bracket (115) is symmetrically installed on the outside of the control cabinet body (101) close to the first dust-proof net (102). At the central position inside the ventilation base (104), a support block (116) is fixedly installed. At the bottom of the ventilation base (104) close to the support block (116), an adjustment motor (117) is fixedly installed.
4. The control cabinet for a geothermal heating device with a heat dissipation structure according to claim 3, characterized in that: The output end of the adjustment motor (117) is fixedly connected to a first sprocket transmission component (118). On the top of the first sprocket transmission component (118), second sprocket transmission components (119) are symmetrically installed. On the top of the two second sprocket transmission components (119), adjustment threaded rods (120) are symmetrically installed. On the outside of the adjustment threaded rod (120), an adjustment threaded sleeve (121) is threadedly connected. On one side of the adjustment threaded sleeve (121), a first adjustment rotating rod (122) is rotatably connected.
5. The control cabinet for a geothermal heating device with a heat dissipation structure according to claim 4, characterized in that: The top of the first adjustment rotating rod (122) is rotatably connected to a first wind baffle (123). On one side of the first wind baffle (123), second adjustment rotating rods (124) are symmetrically rotatably connected. The tops of the two second adjustment rotating rods (124) are rotatably connected to a second wind baffle (125). On one side of the second wind baffle (125), third adjustment rotating rods (126) are symmetrically rotatably connected. The tops of the two third adjustment rotating rods (126) are rotatably connected to a third wind baffle (127). The first wind baffle (123), the second wind baffle (125) and the third wind baffle (127) are all rotatably connected to the ventilation base (104). The top of the control cabinet body (101) is fixedly installed with a second heat dissipation bracket (128).
6. The control cabinet for a geothermal heating device with a heat dissipation structure according to claim 5, characterized in that: At the inner side of the bottom of the second heat dissipation bracket (128), a third dust-proof net (129) is fixedly installed. Inside the second heat dissipation bracket (128), a second heat dissipation fan (130) is fixedly installed. On one side of the top of the second heat dissipation bracket (128), a motor cover (131) is fixedly installed. Inside one side of the motor cover (131), an opening and closing motor (132) is fixedly installed. The output end of the opening and closing motor (132) is fixedly connected to a third sprocket transmission assembly (133). On one side of the third sprocket transmission assembly (133), opening and closing bidirectional threaded rods (134) are symmetrically connected. On the outer sides of the two opening and closing bidirectional threaded rods (134), opening and closing threaded sleeves (135) are symmetrically threadedly connected. The tops of the two opening and closing threaded sleeves (135) are fixedly installed with an opening and closing baffle (136). Around the top of the control cabinet body (101), support columns (137) are fixedly installed. The tops of the support columns (137) are fixedly installed with a protective ceiling (138).
7. The control cabinet for a geothermal heating device with a heat dissipation structure according to claim 1, characterized in that: The installation and adjustment mechanism (2) includes an installation heat dissipation plate (201). On both sides of the installation heat dissipation plate (201), lifting sliding sleeves (202) are symmetrically installed. Inside the lifting sliding sleeves (202), lifting sliding rods (203) are slidably connected. On the outer sides of the lifting sliding rods (203), fixed brackets (204) are arranged and installed. The lifting sliding rods (203) and the fixed brackets (204) are fixedly installed on the inner perimeters of the control cabinet body (101). Inside the fixed brackets (204), a number of fixing holes (205) are opened. In front and at the back of the installation heat dissipation plate (201), locking brackets (206) are fixedly installed. At the central position of the front locking bracket (206), a locking knob (207) is rotatably connected.
8. The control cabinet for a geothermal heating device with a heat dissipation structure according to claim 7, characterized in that: A locking connection shaft (208) is fixedly installed inside the locking knob (207). Locking gears (209) are fixedly installed at both ends of the locking connection shaft (208). Locking racks (210) are meshed and connected to the top and bottom of the two locking gears (209). The locking racks (210) are snap-connected to the fixed bracket (204) through the fixing holes (205). Adjusting chutes (211) are symmetrically formed inside the mounting heat dissipation plate (201). A number of adjusting sliders (212) are slidably connected inside the adjusting chutes (211). A clamping bracket (213) is fixedly installed at the top of the two adjusting sliders (212). A clamping knob (214) is rotatably connected to the front of the clamping bracket (213). A clamping double-threaded rod (215) is fixedly installed at the end of the clamping knob (214). Clamping thread sleeves (216) are symmetrically threadedly connected to the outside of the clamping double-threaded rod (215). A clamping plate (217) is fixedly installed at the top of the clamping thread sleeve (216). A spring clip block (218) is arranged on the outside of the clamping plate (217).
9. The control cabinet for a geothermal heating device with a heat dissipation structure according to claim 8, characterized in that: The support bases (219) are symmetrically installed on one side of the top of the clamping brackets (213). Connecting springs (220) are fixedly installed around the top of the support bases (219). A positioning bracket (221) is fixedly installed at the top of the connecting springs (220). Positioning sliding rods (222) are symmetrically installed inside the positioning bracket (221). Positioning sliding sleeves (223) are slidably connected to the outside of the two positioning sliding rods (222). A positioning rotating rod (224) is rotatably connected to the bottom of the positioning sliding sleeve (223). A positioning spring (225) is fixedly installed on one side of the positioning sliding sleeve (223). A positioning ring (226) is fixedly installed at the top of the positioning sliding sleeve (223).
Citation Information
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