An energy-saving and environmentally friendly thermosiphon system
By installing an adjustment device on the surface of the thermosiphon system, the problem of excessive heat loss is solved, the operating cost is reduced, the energy saving and environmental protection of the system is improved, and more efficient heat circulation and transmission is achieved.
Patent Information
- Application Number
- CN202411765553.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-04
- Publication Date
- 2025-06-10
- Estimated Expiration
- 2044-12-04
AI Technical Summary
Due to the lack of thermal insulation function, the existing thermosiphon system has a rapid loss of heat energy, high operating costs, reduced system performance, increased failure risk, and does not have the advantages of energy conservation and environmental protection.
By installing adjustment devices on the surface of the thermosiphon system, including connecting plates, rotating rods, protective shells and thermal insulation cotton, it reduces heat energy loss, reduces operating costs, and improves the energy-saving and environmental protection of the system.
It effectively reduces the thermal energy loss rate of the thermosiphon system, reduces operating costs, improves the energy saving and environmental protection of the system, and reduces the risk of failure.
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Figure CN119245416B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of thermosiphon systems, and in particular to an energy-saving and environment-friendly thermosiphon system. Background Art
[0002] A thermosiphon system is a system that heats a fluid to reduce its density, causing the hot fluid to rise to the high part of the system, while the cooled fluid descends to the low part due to increased density, thereby realizing the circulation and transfer of heat.
[0003] The utility model with the publication number CN103177840A discloses a thermosiphon cooling system. The key points of its technical solution include a reservoir which has a first part configured to store a liquid coolant. The thermosiphon cooling system further includes a pipe unit which is coupled to the reservoir and arranged adjacent to at least one superconducting unit to be cooled, and is configured to receive the liquid coolant from the first part of the reservoir and circulate the received liquid coolant in the pipe unit to dissipate the heat generated by at least one superconducting unit, and circulate the received liquid coolant in the pipe unit by changing the density of the received liquid coolant at different parts of the pipe unit.
[0004] Regarding the above related content, there are the following technical defects: A thermosiphon system is a system for realizing heat transfer and circulation. A thermosiphon system generally consists of a support device, a fluid, a collector, a drain valve, a heat storage device, etc. However, the surface of the thermosiphon system does not have any heat insulation function, which also leads to too fast heat energy loss of the entire thermosiphon system, resulting in too high operating costs during the operation of the entire thermosiphon system, as well as a decline in the system performance of the entire thermosiphon system and an increase in the failure risk, and it does not have the advantages of energy conservation and environmental protection. Summary of the Invention
[0005] The purpose of the present invention is to solve the disadvantages existing in the prior art, and to propose an energy-saving and environment-friendly thermosiphon system.
[0006] To achieve the above object, the present invention adopts the following technical solution: It includes a support column and an adjusting device. The upper surface of the support column is provided with a thermosyphon system body. A drain valve is installed at the arc-shaped drainage port of the thermosyphon system body. Two pressure gauges are installed at one end of the arc surface of the thermosyphon system body. An adjusting device is provided on the arc surface of the thermosyphon system body. The adjusting device includes a connecting plate, which is fixedly connected to the thermosyphon system body. One end of the arc surface of the connecting plate is fixedly connected to a support plate. A fixing block is fixedly connected to the side of the support plate away from the thermosyphon system body. An electric push rod is fixedly connected to the side of the fixing block close to the support plate. The output end of the electric push rod is fixedly connected to a limiting block. Two rotating rods are rotatably connected to both sides of the inner wall of the connecting plate. Every two of the four rotating rods form a group. The same adjusting plate is fixedly connected to the arc surface of each group of rotating rods. Limiting grooves are provided on the side of each of the two adjusting plates close to the limiting block. A protective shell is slidably connected to the side of each of the two adjusting plates close to the thermosyphon system body. A heat insulation cotton is fixedly connected to the side of the protective shell close to the thermosyphon system body. A fixing plate is fixedly connected to the arc surface of the thermosyphon system body. A limiting frame is fixedly connected to the side of the fixing plate close to the protective shell. The inner wall of the limiting frame is slidably connected to the two protective shells.
[0007] By adopting the above technical solution, it is achieved that the thermosyphon system is a system for realizing heat transfer and circulation. The thermosyphon system generally consists of a support device, a fluid, a collector, a drain valve, a heat storage device, etc. However, the surface of the thermosyphon system body does not have any heat insulation function, which also leads to too fast heat energy loss of the entire thermosyphon system body, resulting in too high operating costs when operating the entire thermosyphon system body, as well as a decline in the system performance of the entire thermosyphon system body and an increase in the failure risk, and it does not have the advantages of energy conservation and environmental protection. At this time, the surface of the thermosyphon system body can be protected through the adjusting device, so as to avoid heat energy loss of the thermosyphon system body through the adjusting device, reduce the operating costs when operating the thermosyphon system body, and improve the energy conservation and environmental protection of the entire thermosyphon system body.
[0008] Preferably, two limiting rods are fixedly connected to the side of the limiting block close to the electric push rod. Connecting holes are provided on the side of each of the two adjusting plates close to the limiting rods. The two limiting rods are respectively slidably connected to the inner walls of the two connecting holes.
[0009] By adopting this preferred solution, it is achieved that when the electric push rod drives the limiting block to come into contact with the limiting groove, the limiting rods installed on the limiting block will be connected to the connecting holes under the action of the electric push rod, so that the connection between the limiting rod and the connecting hole can be used to improve the contact stability between the limiting block and the limiting groove.
[0010] Preferably, a clamping groove is formed on one side of the protective shell away from the heat siphon system body, and a connecting block is slidably connected to the inner wall of the clamping groove. The connecting block is fixedly connected to the adjusting plate.
[0011] By adopting the above technical solution, when the adjusting plate comes into contact with the protective shell, the connecting block installed on the adjusting plate will come into contact with the clamping groove formed on the protective shell. Therefore, under the action of the connecting block and the clamping groove, the stability of the contact between the adjusting plate and the protective shell can be improved.
[0012] Preferably, the rotating rod is made of titanium alloy.
[0013] By adopting the above technical solution, the surface of the rotating rod made of titanium alloy is relatively hard, which also makes the rotating rod made of titanium alloy have a good use effect after long-term use.
[0014] Preferably, a connecting device is provided on one side of the drain valve close to the heat siphon system body. The connecting device includes two connecting rods. Both of the two connecting rods are fixedly connected to the heat siphon system body. The ends of the two connecting rods away from the heat siphon system body are fixedly connected to the same adjusting frame. Three adjusting holes are formed on both sides of the adjusting frame. Positioning blocks are slidably connected to the inner walls of two of the adjusting holes. One end of each positioning block is fixedly connected to the same elastic rod. One end of the elastic rod is fixedly connected to the drain valve. A pressing rod is fixedly connected to the arc surface of one end of the elastic rod. A positioning rod is fixedly connected to the arc surface of the other end of the elastic rod. An auxiliary valve is fixedly connected to the end of the positioning rod away from the elastic rod. A connecting ring is slidably connected to the arc surface of the auxiliary valve. One end of the arc surface of the connecting ring is fixedly connected to a fixing rod. The end of the fixing rod away from the connecting ring is fixedly connected to the adjusting frame. A screw rod is threadedly penetrated through the inner wall of the connecting ring.
[0015] By adopting the above technical solution, when the drain valve is blocked or the valve port is damaged after long-term use, the blocked or damaged valve port can be replaced through the connecting device. Therefore, the speed of replacing the new drain valve can be increased through the connecting device, and the downtime of the entire heat siphon system body during the replacement of the drain valve can be reduced, enabling the heat siphon system body to quickly resume operation.
[0016] Preferably, a plurality of anti-slip grooves are formed on the arc surface of the screw rod, and the plurality of anti-slip grooves are evenly distributed on the arc surface of the screw rod.
[0017] By adopting the above technical solution, when the screw rod is rotated in the connecting ring, the anti-slip grooves formed on the surface of the screw rod can increase the friction between the screw rod and the worker's hand, thereby improving the rotation speed of the screw rod in the connecting ring through the anti-slip grooves.
[0018] Preferably, a guiding block is fixedly connected to one end of the arc surface of the auxiliary valve, and the guiding block is slidably connected to the inner wall of the connecting ring.
[0019] By adopting the above technical solution, when the auxiliary valve slides in the connecting ring, the guiding block installed on the auxiliary valve can improve the sliding stability of the auxiliary valve in the connecting ring and enhance the sliding effect of the auxiliary valve in the connecting ring.
[0020] Preferably, an auxiliary device is provided on the side surface of the adjusting frame. The auxiliary device includes two load-bearing rods, and the two load-bearing rods are respectively fixedly connected to both sides of the adjusting frame. The same connecting frame is fixedly connected to one ends of the two load-bearing rods close to each other. A storage box is slidably connected to one inner wall of the connecting frame. One side of the storage box is fixedly connected to a connecting block, and a plug rod slidably penetrates through the inner wall of the connecting block. The plug rod also slidably penetrates through the other inner wall of the connecting frame. A spring is sleeved on the arc surface of the plug rod, and both ends of the spring are respectively fixedly connected to the plug rod and the connecting frame.
[0021] By adopting the above technical solution, when replacing the drain valve, the auxiliary device can collect the liquid flowing out during the replacement process, so that the liquid can be prevented from flowing out of the drain valve port through the auxiliary device, and the entire working environment can be prevented from being polluted by the liquid.
[0022] Preferably, an auxiliary block is fixedly connected to the end of the plug rod away from the spring, and the auxiliary block is conical.
[0023] By adopting the above technical solution, when the plug rod contacts the connecting block under the action of the spring, the auxiliary block installed on the plug rod can reduce the angle between the plug rod and the connecting block during connection, so that the connection efficiency between the plug rod and the connecting block can be improved through the auxiliary block.
[0024] Preferably, a pull ring is rotatably connected to the inner wall of the plug rod.
[0025] By adopting the above technical solution, when it is necessary to move the plug rod out of the connecting block, the pull ring installed on the plug rod can be used to move the plug rod, so that the speed of moving the plug rod can be increased through the pull ring.
[0026] Compared with the prior art, the advantages and positive effects of the present invention are as follows:
[0027] 1. In the present invention, by setting the adjusting device, when using the thermosyphon system, the adjusting device can be installed on the surface of the thermosyphon system, so that the heat energy loss speed of the entire thermosyphon system can be reduced through the adjusting device, the movement cost of the entire thermosyphon system can be reduced, and the energy conservation and environmental protection advantages of the thermosyphon system can be increased.
[0028] 2. In the present invention, by providing a connection device, when the drain valve is blocked or damaged after long-term use, the blocked or damaged drain valve can be quickly replaced through the connection device, thereby improving the speed of replacing the drain valve through the connection device and reducing the downtime of the thermosiphon system due to replacing the drain valve.
[0029] 3. In the present invention, by providing an auxiliary device, when replacing the drain valve through the connection device, the auxiliary device can collect the liquid flowing out during the drainage process, thereby avoiding the liquid dripping onto the ground and damaging the working environment through the auxiliary device. The auxiliary device can collect the liquid flowing out from the drain valve and avoid the liquid damaging the working environment. BRIEF DESCRIPTION OF THE DRAWINGS
[0030] Figure 1 is a schematic three-dimensional structure diagram of an energy-saving and environment-friendly thermosiphon system proposed by the present invention;
[0031] Figure 2 is a schematic structural diagram of an adjusting device of an energy-saving and environment-friendly thermosiphon system proposed by the present invention;
[0032] Figure 3 is an enlarged view of part A of an energy-saving and environment-friendly thermosiphon system proposed by the present invention Figure 2 ;
[0033] Figure 4 is a schematic exploded structural diagram of an adjusting device of an energy-saving and environment-friendly thermosiphon system proposed by the present invention;
[0034] Figure 5 is an enlarged view of part B of an energy-saving and environment-friendly thermosiphon system proposed by the present invention Figure 4 ;
[0035] Figure 6 is a schematic structural diagram of a connection device of an energy-saving and environment-friendly thermosiphon system proposed by the present invention;
[0036] Figure 7 is an enlarged view of part C of an energy-saving and environment-friendly thermosiphon system proposed by the present invention Figure 6 ;
[0037] Figure 8 is a schematic partial structural diagram of a connection device of an energy-saving and environment-friendly thermosiphon system proposed by the present invention;
[0038] Figure 9 is a schematic structural diagram of an auxiliary device of an energy-saving and environment-friendly thermosiphon system proposed by the present invention;
[0039] Figure 10 is a schematic partial structural diagram of an auxiliary device of an energy-saving and environment-friendly thermosiphon system proposed by the present invention.
[0040] Legend: 1. Support column; 2. Adjusting device; 201. Connecting plate; 202. Support plate; 203. Fixed block; 204. Electric push rod; 205. Limiting block; 206. Adjusting plate; 207. Limiting groove; 208. Rotating rod; 209. Protective shell; 210. Fixed plate; 211. Limiting frame; 212. Limiting rod; 213. Connecting hole; 214. Connecting block; 215. Card slot; 3. Connecting device; 301. Adjusting frame; 302. Connecting rod; 303. Adjusting hole; 304. Elastic rod; 305. Positioning block; 306. Pressing rod; 307. Positioning rod; 308. Auxiliary valve; 309. Connecting ring; 310. Fixed rod; 311. Screw; 312. Anti-slip groove; 313. Guide block; 4. Auxiliary device; 41. Load-bearing rod; 42. Connecting frame; 43. Connecting block; 44. Insert rod; 45. Spring; 46. Storage box; 47. Pull ring; 48. Auxiliary block; 5. Pressure gauge; 6. Drain valve; 7. Thermosyphon system body. Detailed implementation mode
[0041] In order to more clearly understand the above-mentioned objects, features and advantages of the present invention, the present invention will be further described below with reference to the drawings and embodiments. It should be noted that, without conflict, the embodiments of the present application and the features in the embodiments can be combined with each other.
[0042] In the following description, many specific details are set forth in order to fully understand the present invention. However, the present invention can also be implemented in other ways different from those described herein. Therefore, the present invention is not limited by the specific embodiments disclosed in the following specification.
[0043] Embodiment 1, as Figures 1 - 10 shown, the present invention provides an energy-saving and environment-friendly thermosyphon system, including a support column 1 and an adjusting device 2. The upper surface of the support column 1 is provided with a thermosyphon system body 7. A drain valve 6 is installed at the arc-shaped drainage port of the thermosyphon system body 7. Two pressure gauges 5 are installed at one end of the arc-shaped surface of the thermosyphon system body 7. An adjusting device 2 is provided on the arc-shaped surface of the thermosyphon system body 7. A connecting device 3 is provided on one side of the drain valve 6 close to the thermosyphon system body 7. An auxiliary device 4 is provided on the side surface of the adjusting frame 301.
[0044] The following specifically describes the specific settings and functions of its adjusting device 2, connecting device 3 and auxiliary device 4.
[0045] As Figures 1 - 5As shown, the adjusting device 2 includes a connecting disk 201 which is fixedly connected to the heat siphon system body 7. One end of the arc surface of the connecting disk 201 is fixedly connected to a support plate 202. On the side of the support plate 202 away from the heat siphon system body 7, a fixed block 203 is fixedly connected. On the side of the fixed block 203 close to the support plate 202, an electric push rod 204 is fixedly connected. The output end of the electric push rod 204 is fixedly connected to a limiting block 205. On both sides of the inner wall of the connecting disk 201, two rotating rods 208 are rotatably connected. Every two of the four rotating rods 208 form a group. On the arc surface of each group of rotating rods 208, the same adjusting plate 206 is fixedly connected. On the side of each of the two adjusting plates 206 close to the limiting block 205, a limiting groove 207 is opened. On the side of each of the two adjusting plates 206 close to the heat siphon system body 7, a protective shell 209 is slidably connected. On the side of the protective shell 209 close to the heat siphon system body 7, heat insulation cotton is fixedly connected. On the arc surface of the heat siphon system body 7, a fixed disk 210 is fixedly connected. On the side of the fixed disk 210 close to the protective shell 209, a limiting frame 211 is fixedly connected. The inner wall of the limiting frame 211 is slidably connected to the two protective shells 209. The heat siphon system is a system that realizes heat transfer and circulation. The heat siphon system generally consists of a support device, a fluid, a collector, a drain valve 6, and a heat storage device, etc. However, the surface of the heat siphon system body 7 does not have any heat insulation function, which also leads to too fast heat energy loss of the entire heat siphon system body 7, resulting in too high operating costs when operating the entire heat siphon system body 7, leading to a decline in the system performance of the entire heat siphon system body 7, an increase in the risk of failure, and not having the advantages of energy conservation and environmental protection. At this time, the adjusting device 2 can be used to protect the surface of the heat siphon system body 7, so as to avoid the heat energy loss of the heat siphon system body 7 through the adjusting device 2, reduce the operating costs when operating the heat siphon system body 7, and improve the energy conservation and environmental protection of the entire heat siphon system body 7. On the side of the limiting block 205 close to the electric push rod 204, two limiting rods 212 are fixedly connected. On the side of each of the two adjusting plates 206 close to the limiting rods 212, a connecting hole 213 is opened. The two limiting rods 212 are respectively slidably connected to the inner walls of the two connecting holes 213. When the electric push rod 204 drives the limiting block 205 to come into contact with the limiting groove 207, the limiting rods 212 installed on the limiting block 205 will be connected to the connecting holes 213 under the action of the electric push rod 204, so as to improve the contact stability between the limiting block 205 and the limiting groove 207 through the connection between the limiting rods 212 and the connecting holes 213. On the side of the protective shell 209 away from the heat siphon system body 7, a clamping groove 215 is opened. The inner wall of the clamping groove 215 is slidably connected to a connecting block 214. The connecting block 214 is fixedly connected to the adjusting plate 206. When the adjusting plate 206 comes into contact with the protective shell 209, the connecting block 214 installed on the adjusting plate 206 will come into contact with the clamping groove 215 opened on the protective shell 209, so that under the action of the connecting block 214 and the clamping groove 215,To improve the stability when the adjusting plate 206 contacts the protective shell 209, the rotating rod 208 is made of titanium alloy. The surface of the rod body of the rotating rod 208 made of titanium alloy is relatively hard, which also makes the rotating rod 208 made of titanium alloy have a good use effect under long-term use.
[0046] The overall effect achieved by the entire adjusting device 2 is that when using the thermosyphon system, the adjusting device 2 can be installed on the surface of the thermosyphon system, so as to reduce the heat energy loss rate of the entire thermosyphon system through the adjusting device 2, reduce the operation cost of the entire thermosyphon system, and increase the energy conservation and environmental protection advantages of the thermosyphon system.
[0047] As Figures 6 - 8 shown, the connecting device 3 includes two connecting rods 302. Both of the two connecting rods 302 are fixedly connected to the thermosyphon system body 7. One end of the two connecting rods 302 far from the thermosyphon system body 7 is fixedly connected to the same adjusting frame 301. Three adjusting holes 303 are opened on both sides of the adjusting frame 301. The inner walls of two of the adjusting holes 303 are both slidably connected with positioning blocks 305. One end of the positioning block 305 is fixedly connected to the same elastic rod 304. One end of the elastic rod 304 is fixedly connected to the drain valve 6. One end of the arc surface of the elastic rod 304 is fixedly connected to a pressing rod 306. The other end of the arc surface of the elastic rod 304 is fixedly connected to a positioning rod 307. One end of the positioning rod 307 far from the elastic rod 304 is fixedly connected to an auxiliary valve 308. The arc surface of the auxiliary valve 308 is slidably connected with a connecting ring 309. One end of the arc surface of the connecting ring 309 is fixedly connected to a fixing rod 310. One end of the fixing rod 310 far from the connecting ring 309 is fixedly connected to the adjusting frame 301. A screw rod 311 is threadedly penetrated through the inner wall of the connecting ring 309. When the drain valve 6 is blocked after long-term use or the valve port is damaged, the connecting device 3 can be used to replace the blocked or damaged valve port, so as to improve the speed of replacing the new drain valve 6 through the connecting device 3, and can also reduce the downtime of the entire thermosyphon system body 7 when replacing the drain valve 6, so that the thermosyphon system body 7 can quickly resume work. A number of anti-slip grooves 312 are opened on the arc surface of the screw rod 311. The number of anti-slip grooves 312 is evenly distributed on the arc surface of the screw rod 311. When the screw rod 311 is rotated in the connecting ring 309, the anti-slip grooves 312 formed on the surface of the screw rod 311 can increase the friction between the screw rod 311 and the worker's hand, so as to improve the rotation speed of the screw rod 311 in the connecting ring 309 through the anti-slip grooves 312. One end of the arc surface of the auxiliary valve 308 is fixedly connected to a guiding block 313. The guiding block 313 is slidably connected to the inner wall of the connecting ring 309. When the auxiliary valve 308 slides in the connecting ring 309, the guiding block 313 installed on the auxiliary valve 308 can improve the sliding stability of the auxiliary valve 308 in the connecting ring 309 and improve the sliding effect of the auxiliary valve 308 sliding in the connecting ring 309.
[0048] The effect achieved by the entire connecting device 3 is that when the drain valve 6 is blocked or damaged after long-term use, the blocked or damaged drain valve 6 can be quickly replaced through the connecting device 3, so that the speed of replacing the drain valve 6 can be increased through the connecting device 3, and the downtime of the thermosiphon system due to replacing the drain valve 6 can be reduced.
[0049] As Figure 9 and Figure 10 shown, the auxiliary device 4 includes two load-bearing rods 41. The two load-bearing rods 41 are respectively fixedly connected to both sides of the adjustment frame 301. One end of the two load-bearing rods 41 close to each other is fixedly connected to the same connecting frame 42. A storage box 46 is slidably connected to one inner wall of the connecting frame 42. One side of the storage box 46 is fixedly connected to an adapter block 43. A plug rod 44 slidably penetrates through the inner wall of the adapter block 43. The plug rod 44 also slidably penetrates through the other inner wall of the connecting frame 42. A spring 45 is sleeved on the arc surface of the plug rod 44. The two ends of the spring 45 are respectively fixedly connected to the plug rod 44 and the connecting frame 42. When replacing the drain valve 6, the auxiliary device 4 can collect the liquid flowing out during the replacement process, so that the liquid can be prevented from flowing out of the valve port of the drain valve 6 through the auxiliary device 4, and the entire working environment can be prevented from being polluted by the liquid. One end of the plug rod 44 away from the spring 45 is fixedly connected to an auxiliary block 48. The auxiliary block 48 is conical. When the plug rod 44 contacts the adapter block 43 under the action of the spring 45, the auxiliary block 48 installed on the plug rod 44 can reduce the angle between the plug rod 44 and the adapter block 43 during connection, so that the connection efficiency between the plug rod 44 and the adapter block 43 can be improved through the auxiliary block 48. A pull ring 47 is rotatably connected to the inner wall of the plug rod 44. When it is necessary to move the plug rod 44 out of the adapter block 43, the pull ring 47 installed on the plug rod 44 can be used to move the plug rod 44, so that the speed of moving the plug rod 44 can be increased through the pull ring 47.
[0050] The effect achieved by the entire auxiliary device 4 is that when the drain valve 6 is replaced through the connecting device 3, the auxiliary device 4 can collect the liquid flowing out during the drainage process, so that the liquid can be prevented from dripping on the ground and damaging the working environment through the auxiliary device 4. The auxiliary device 4 can collect the liquid flowing out of the drain valve 6 and prevent the liquid from damaging the working environment.
[0051] Its overall working principle is that when it is necessary to reduce the heat energy loss of the entire heat siphon system body 7 and increase the operating cost of the heat siphon system body 7, the protective shell 209 is brought into contact with the fixed disk 210 through the limit frame 211. The lower surface of the protective shell 209 will come into contact with the connecting disk 201. At this time, the heat insulation cotton installed on the protective shell 209 can come into contact with the heat siphon system body 7. At this time, the rotating rod 208 can be rotated on the connecting disk 201. The rotation of the rotating rod 208 can drive the adjusting plate 206 to move. The movement of the adjusting plate 206 will come into contact with the protective shell 209. At this time, the electric push rod 204 installed on the fixed block 203 can be started. The movement of the electric push rod 204 will drive the limit block 205 to move. The movement of the limit block 205 will be connected to the limit groove 207 opened on the adjusting plate 206. Thus, under the action of the electric push rod 204 and the limit block 205, the angles of the two adjusting plates 206 can be fixed through the limit groove 207. Thus, by fixing the angle of the adjusting plate 206, the protective shell 209 can be fixed on the surface of the heat siphon system body 7. When the electric push rod 204 drives the limit block 205 to come into contact with the limit groove 207, the limit rod 212 installed on the limit block 205 will be connected to the connection hole 213 under the action of the electric push rod 204. Thus, by connecting the limit rod 212 to the connection hole 213, the contact stability between the limit block 205 and the limit groove 207 can be improved. When the adjusting plate 206 comes into contact with the protective shell 209, the connecting block 214 installed on the adjusting plate 206 will come into contact with the card slot 215 opened on the protective shell 209. Thus, under the action of the connecting block 214 and the card slot 215, the contact stability between the adjusting plate 206 and the protective shell 209 can be improved. The surface of the rod body of the rotating rod 208 made of titanium alloy is relatively hard, which also makes the rotating rod 208 made of titanium alloy have a good use effect after long-term use.
[0052] When the drain valve 6 is blocked or damaged and needs to be replaced, rotate the screw rod 311 in the connecting ring 309. The rotation of the screw rod 311 will release the fixing effect on the auxiliary valve 308. At this time, the pressing rod 306 can be pulled. The movement of the pressing rod 306 will drive the elastic rod 304 to deform. The deformation of the elastic rod 304 will drive the positioning block 305 to be taken out from the adjustment hole 303. At this time, the drain valve 6 can be driven to move through the elastic rod 304. While the elastic rod 304 drives the drain valve 6 to move, the elastic rod 304 will synchronously drive the auxiliary valve 308 to slide in the connecting ring 309 through the positioning rod 307, so that the auxiliary valve 308 can be driven by the elastic rod 304 to be connected to the drain port of the thermosiphon system body 7. At this time, the pressing rod 306 can be released. The reset of the elastic rod 304 will drive the positioning block 305 to be connected to the two adjustment holes 303 at the lowermost end of the adjustment frame 301, so that the positioning block 305 can be connected to the adjustment hole 303, and the positions of the drain valve 6 and the auxiliary valve 308 can be fixed again. At this time, the screw rod 311 can be rotated in the connecting ring 309, and the auxiliary valve 308 can be extruded by the screw rod 311, so that the stability of the auxiliary valve 308 in the connecting ring 309 can be improved by the screw rod 311. When the screw rod 311 is rotated in the connecting ring 309, the anti-slip groove 312 formed on the surface of the screw rod 311 can increase the friction between the screw rod 311 and the worker's hand, so that the rotation speed of the screw rod 311 in the connecting ring 309 can be increased through the anti-slip groove 312. When the auxiliary valve 308 slides in the connecting ring 309, the guiding block 313 installed on the auxiliary valve 308 can improve the sliding stability of the auxiliary valve 308 in the connecting ring 309 and improve the sliding effect of the auxiliary valve 308 sliding in the connecting ring 309.
[0053] When the liquid flowing out during the replacement of the drain valve 6 needs to be collected through the auxiliary device 4, pull the insertion rod 44 out of the connecting frame 42. The movement of the insertion rod 44 will drive the spring 45 to stretch. At this time, the storage box 46 and the connecting block 43 can be placed in the connecting frame 42. Align the insertion rod 44 with the inner wall of the connecting block 43. At this time, release the insertion rod 44. The reset of the spring 45 will drive the insertion rod 44 to be connected to the inner wall of the connecting block 43, so that the connecting block 43 can be fixed in the connecting frame 42 through the insertion rod 44, so that the storage box 46 can be fixed in the connecting frame 42, and the liquid flowing out during the replacement of the drain valve 6 can be collected through the storage box 46. When the insertion rod 44 contacts the connecting block 43 under the action of the spring 45, the auxiliary block 48 installed on the insertion rod 44 can reduce the angle when the insertion rod 44 is connected to the connecting block 43, so that the connection efficiency between the insertion rod 44 and the connecting block 43 can be improved through the auxiliary block 48. When the insertion rod 44 needs to be moved out of the connecting block 43, the pull ring 47 installed on the insertion rod 44 can be used to move the insertion rod 44, so that the moving speed of the insertion rod 44 can be increased through the pull ring 47.
[0054] As described above, it is only the preferred embodiment of the present invention, and does not limit the present invention in other forms. Any person skilled in the art may use the technical content disclosed above to make changes or modifications into equivalent embodiments with equivalent changes and apply them to other fields. However, as long as it does not depart from the technical solution content of the present invention, any simple modification, equivalent change and modification made to the above embodiments based on the technical essence of the present invention still belong to the protection scope of the technical solution of the present invention.
Claims
1. An energy-saving and environment-friendly thermosiphon system, comprising a support column (1) and an adjustment device (2), characterized in that: A thermosiphon system body (7) is mounted on the upper surface of the support column (1); a drain valve (6) is mounted at the arc surface drain outlet of the thermosiphon system body (7); two pressure gauges (5) are mounted at one end of the arc surface of the thermosiphon system body (7); an adjustment device (2) is provided on the arc surface of the thermosiphon system body (7); the adjustment device (2) comprises a connecting plate (201); the connecting plate (201) is fixedly connected to the thermosiphon system body (7); a supporting plate (202) is fixedly connected to one end of the arc surface of the connecting plate (201); a fixing block (203) is fixedly connected to the side of the supporting plate (202) away from the thermosiphon system body (7); and the fixing block (203) is close to the supporting plate (202). ) is fixedly connected to one side of the connection disk (201) with an electric push rod (204), the output end of the electric push rod (204) is fixedly connected to a limit block (205), both sides of the inner wall of the connection disk (201) are rotatably connected to two rotating rods (208), four rotating rods (208) are grouped in pairs, and the arc surface of each group of rotating rods (208) is fixedly connected to the same adjustment plate (206), and the two adjustment plates (206) are provided with a limit groove (207) on one side close to the limit block (205), and the two adjustment plates (206) are slidably connected to a protective shell (209) on one side close to the thermosiphon system body (7), and the protective shell (209) is fixedly connected to a heat insulation cotton on one side close to the thermosiphon system body (7), and the thermosiphon system body (7) is fixedly connected to the protective shell (209). The arc surface of the siphon system body (7) is fixedly connected to a fixing plate (210), a side of the fixing plate (210) close to the protective shell (209) is fixedly connected to a limit frame (211), an inner wall of the limit frame (211) is slidably connected to the two protective shells (209), a side of the drain valve (6) close to the thermal siphon system body (7) is provided with a connecting device (3), the connecting device (3) comprises two connecting rods (302), both of the two connecting rods (302) are fixedly connected to the thermal siphon system body (7), one end of the two connecting rods (302) away from the thermal siphon system body (7) is fixedly connected to the same adjustment frame (301), and three adjustment holes (303) are provided on both sides of the adjustment frame (301). ), wherein the inner walls of the two adjustment holes (303) are both slidably connected to positioning blocks (305), one end of the positioning blocks (305) is fixedly connected to the same elastic rod (304), one end of the elastic rod (304) is fixedly connected to the drain valve (6), one end of the circular arc surface of the elastic rod (304) is fixedly connected to a pressing rod (306), the other end of the circular arc surface of the elastic rod (304) is fixedly connected to a positioning rod (307), one end of the positioning rod (307) away from the elastic rod (304) is fixedly connected to an auxiliary valve (308), the circular arc surface of the auxiliary valve (308) is slidably connected to a connecting ring (309), and one end of the circular arc surface of the connecting ring (309) is fixedly connected to a fixing rod (310),One end of the fixing rod (310) away from the connecting ring (309) is fixedly connected to the adjusting frame (301), and a screw rod (311) is threadedly penetrated through the inner wall of the connecting ring (309).
2. The energy-saving and environment-friendly thermosiphon system according to claim 1, characterized in that: Two limit rods (212) are fixedly connected to one side of the limit block (205) close to the electric push rod (204), and connection holes (213) are provided on one side of the two adjustment plates (206) close to the limit rods (212). The two limit rods (212) are slidably connected to the inner walls of the two connection holes (213) respectively.
3. The energy-saving and environment-friendly thermosiphon system according to claim 1, characterized in that: A slot (215) is provided on a side of the protective shell (209) away from the thermosyphon system body (7), and a connecting block (214) is slidably connected to the inner wall of the slot (215), and the connecting block (214) is fixedly connected to the adjustment plate (206).
4. The energy-saving and environment-friendly thermosyphon system according to claim 1, characterized in that: The rotating rod (208) is a titanium alloy rod.
5. The energy-saving and environment-friendly thermosyphon system according to claim 1, characterized in that: The arc surface of the screw rod (311) is provided with a plurality of anti-slip grooves (312), and the plurality of anti-slip grooves (312) are evenly distributed on the arc surface of the screw rod (311).
6. The energy-saving and environment-friendly thermosiphon system according to claim 1, characterized in that: A guide block (313) is fixedly connected to one end of the arc surface of the auxiliary valve (308), and the guide block (313) is slidably connected to the inner wall of the connecting ring (309).
7. The energy-saving and environment-friendly thermosyphon system according to claim 1, characterized in that: An auxiliary device (4) is provided on the side of the adjustment frame (301), and the auxiliary device (4) comprises two load-bearing rods (41), the two load-bearing rods (41) are respectively fixedly connected to the two sides of the adjustment frame (301), and the ends of the two load-bearing rods (41) close to each other are fixedly connected to the same connection frame (42), one inner wall of the connection frame (42) is slidably connected to a storage box (46), one side of the storage box (46) is fixedly connected to a connection block (43), the inner wall of the connection block (43) is slidably penetrated by an insertion rod (44), the insertion rod (44) and the other inner wall of the connection frame (42) are slidably penetrated, and the arc surface of the insertion rod (44) is sleeved with a spring (45), and the two ends of the spring (45) are respectively fixedly connected to the insertion rod (44) and the connection frame (42).
8. The energy-saving and environment-friendly thermosyphon system according to claim 7, characterized in that: One end of the insertion rod (44) away from the spring (45) is fixedly connected to an auxiliary block (48), and the auxiliary block (48) is conical.
9. The energy-saving and environment-friendly thermosiphon system according to claim 7, characterized in that: A pull ring (47) is rotatably connected to the inner wall of the insertion rod (44).
Citation Information
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