Air cooling equipment with heat dissipation device
By introducing a combined design of connecting conducting components and heat dissipation treatment components in the air-cooling equipment, the multi-stage cooling conduction of air and refrigerant is used to solve the problem of inconvenient cooling adjustment in the air-cooling equipment, and efficient heat dissipation effect and cooling optimization are achieved.
Patent Information
- Application Number
- CN202510596770.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-09
- Publication Date
- 2025-08-12
AI Technical Summary
When used, existing air-cooling equipment is inconvenient to internal cooling and adjustment, and cannot efficiently dissipate heat.
Using a design including a first sealing plate, a vent hole, an air-cooled heat dissipation structure and a pressure monitoring tube, multi-stage cooling is performed by connecting the combination of the conduction and heat dissipation treatment components, and the conduction of air and refrigerant is carried out, and the pressure monitoring is combined to optimize the heat dissipation effect.
It realizes efficient heat dissipation of air-cooling equipment, expands the heat dissipation surface, improves cooling efficiency, and optimizes the cooling effect through real-time pressure monitoring.
Smart Images

Figure CN120467068A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of air cooling equipment, in particular to an air cooling equipment with a heat dissipation device. Background Art
[0002] Air cooling equipment is the abbreviation of air cooler. It is the most widely used heat exchange equipment for condensation and cooling in processing and production. Air cooling equipment is generally composed of main parts such as tube bundles, tube boxes, fans, shutters and frames.
[0003] According to Chinese patent publication number CN108759500B, an air cooling device with a heat dissipation device is disclosed, whose structure includes a blower cover, a blower assembly, a water inlet channel, a threaded fixing seat, a heat sink, an air cooling box, an observation panel, and a control panel. In this way, the transmission of the stirring mechanism is driven by the water flow brake mechanism, so that heating can be carried out more quickly and evenly, and the speed of water liquefaction is improved. Due to the presence of the cooling chamber, the distilled water obtained by liquefying water vapor is prepared for cooling air under the action of the water absorption honeycomb plate. The motor device can drive the rotating mechanism and the fan transmission mechanism. Due to the connection between the fan and the honeycomb plate, the fan can cool the air when it is running. The use of distilled water increases the service life and cooling effect of the device, while accelerating the cooling speed and reducing the number of maintenance times.
[0004] At present, the existing air cooling equipment and the above-mentioned cases are not convenient for internal cooling adjustment during use, and cannot achieve the purpose of efficient heat dissipation. Therefore, improvements are made to address the above-mentioned problems. Summary of the Invention
[0005] In view of the problems in the prior art, the present invention provides an air cooling device with a heat dissipation device.
[0006] The technical solution adopted by the present invention to solve its technical problem is: an air cooling device with a heat dissipation device, including a first sealing plate, a vent, an air cooling heat dissipation structure and a pressure monitoring tube, the lower end of the first sealing plate is fixedly connected to the second sealing plate, and the first sealing plate is connected to the vent, the air cooling heat dissipation structure is installed in the internal limit of the first sealing plate and the second sealing plate, the first sealing plate and the side end of the pressure monitoring tube are connected to each other with a docking communication nozzle, and the pressure monitoring tube is installed on the docking communication nozzle; The air-cooling heat dissipation structure is used for cooling processing. The first connecting pipe, the second connecting pipe and the fourth connecting pipe are connected, and the fourth connecting pipe guides the cooling liquid through the second connecting pipe, the first connecting pipe and the third connecting pipe. The second electrically controlled hydraulic telescopic rod drives the second adjustment plate to rotate around the bottom through extension and contraction, thereby changing the position of the cooling pipe. The second refrigerant conduit is connected to the cooling pipe for refrigerant conduction, and air is introduced through the docking connecting nozzle for transmission and guidance within the first sealing plate and the second sealing plate.
[0007] Specifically, the air-cooling heat dissipation structure includes a connecting guide component and a heat dissipation processing component. The lower end of the connecting guide component is fixedly connected with a first connecting tube and a second connecting tube. The centers of the first connecting tube and the second connecting tube are fixedly provided with a heat dissipation processing component. The heat dissipation processing component is used for cooling treatment. Through the setting of the docking connecting nozzle, air can be introduced to perform cooling work, and the pressure monitoring tube is used for real-time internal pressure detection work. The air flow is transmitted in the first sealing plate and the second sealing plate, which can blow away heat, and the air vents can also introduce air flow, thereby accelerating the internal cooling work. This structure can be combined in multiple sections to uniformly guide and discharge air. The setting of the air-cooling heat dissipation structure is used for cooling and transmission of the coolant to be cooled. At the same time, the setting of the heat dissipation processing component can accelerate the internal heat dissipation effect.
[0008] Specifically, the connecting guide component includes a supporting grid frame, a first connecting pipe and a second connecting pipe. The lower end of the supporting grid frame is fixedly connected to a fixed bottom block. The upper end of the third connecting pipe is connected to the first connecting pipe, the upper end of the first connecting pipe is connected to the second connecting pipe, and the front end of the second connecting pipe is connected to the fourth connecting pipe.
[0009] Specifically, the heat dissipation processing component includes a first hinge block, a second electro-hydraulic telescopic rod is hingedly provided on the first hinge block, the side end of the second electro-hydraulic telescopic rod is hingedly provided to the fourth hinge block, the lower end of the fourth hinge block is fixedly connected to the second adjustment plate, a cooling pipe is provided on the second adjustment plate, and the side end of the cooling pipe is connected to the second refrigerant conduit, and the lower end of the second adjustment plate is supported by a support partition plate.
[0010] Specifically, the first refrigerant conduit is arranged at the lower end of the second refrigerant conduit, the side end of the first refrigerant conduit is connected to the first adjustment plate, and the first adjustment plate is provided with symmetrical cooling pipes, the lower end of the first adjustment plate is fixedly connected to the third hinge block, the side end of the third hinge block is hingedly provided with a first electro-hydraulic telescopic rod, the side end of the first electro-hydraulic telescopic rod is hingedly provided with the second hinge block, and the first hinge block and the second hinge block are fixedly connected.
[0011] Specifically, the supporting partition plate, the first hinge block, and the second hinge block are all fixedly connected to the second sealing plate, and the pressure monitoring tube is used for pressure detection at the position of the connecting nozzle.
[0012] Specifically, a limit frame is provided at the side end of the second adjustment plate, the limit frame is fixed to the first hinge block and the second hinge block, and the limit frame is hinged to the second adjustment plate. The second electrically-controlled hydraulic telescopic rod changes the position of the second adjustment plate, the fourth hinge block and the cooling pipe by telescoping, so that the second adjustment plate, the fourth hinge block and the cooling pipe rotate around the limit frame.
[0013] Specifically, the first refrigerant conduit and the second refrigerant conduit are designed with a hose and can be deformed, and the docking connecting nozzle adopts a duckbill structure design. Through the structural setting of the connecting guide component, it is convenient to guide the coolant to be cooled. The coolant is introduced through the first connecting pipe and the second connecting pipe, and then guided through the fourth connecting pipe, the second connecting pipe, the first connecting pipe, and the third connecting pipe, which is convenient for expanding the heat dissipation surface and accelerating the heat dissipation effect. The second electrically controlled hydraulic telescopic rod can change the position of the first refrigerant conduit through the fourth hinge block, so that the second adjustment plate rotates around the limit frame and changes the inclination, so as to better contact with the transmitted air and perform internal heat absorption work. The first refrigerant conduit and the second refrigerant conduit can both be adjusted in coordination.
[0014] Specifically, an adjustment structure is provided in the docking connecting nozzle, which is used to adjust the wind direction and change the air inlet pressure. The rotating guide plate is connected to the matching hinge shaft through a rotating block, and can be swung and adjusted under the push of the third electrically controlled hydraulic telescopic rod.
[0015] Specifically, the adjustment structure includes a rotating guide plate, a rotating block, a fifth hinge block, a third electro-hydraulic telescopic rod, a sixth hinge block, a matching hinge shaft, a center connecting rod and a sleeve, the center side end of the sleeve is fixedly connected to the center connecting rod, the sleeve is fixedly provided with a matching hinge shaft near the position of the center connecting rod, the side end of the matching hinge shaft is hingedly provided with a rotating block, the side end of the rotating block is hingedly provided with a rotating guide plate, the lower end of the rotating guide plate is fixedly connected to the sixth hinge block, the lower end of the sixth hinge block is hingedly provided with the third electro-hydraulic telescopic rod, the lower end of the third electro-hydraulic telescopic rod is hingedly provided with the fifth hinge block, the lower end of the fifth hinge block is fixedly provided with a plate body, and the plate body is fixedly connected to the docking connecting nozzle.
[0016] Beneficial effects of the present invention: First, the present invention can introduce air through the setting of the docking connecting nozzle, thereby performing cooling work, and the pressure monitoring tube is used for real-time internal pressure detection work. The air flow is transmitted in the first sealing plate and the second sealing plate, which can blow away the heat, and the vent can also introduce air flow, thereby accelerating the internal cooling work. This structure can be combined in multiple sections to uniformly guide and discharge air. The setting of the air-cooled heat dissipation structure is used for cooling and transmitting the coolant to be cooled. At the same time, the setting of the heat dissipation processing component can accelerate the internal heat dissipation effect.
[0017] Second, the present invention facilitates the guidance of the cooling liquid through the structural setting of the connecting guide component. The cooling liquid is introduced through the first connecting pipe and the second connecting pipe, and then guided through the fourth connecting pipe, the second connecting pipe, the first connecting pipe, and the third connecting pipe, which facilitates the expansion of the heat dissipation surface and accelerates the heat dissipation effect. The second electrically controlled hydraulic telescopic rod can change the position of the first refrigerant conduit through the fourth hinge block, so that the second adjustment plate rotates around the limiting frame and changes the inclination, so as to better contact with the transmitted air and perform internal heat absorption work. The first refrigerant conduit and the second refrigerant conduit can both be adjusted in coordination. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] The present invention will be further described below with reference to the accompanying drawings and examples.
[0019] Figure 1 This is a schematic diagram of the three-dimensional structure of the main body of the present invention from the front perspective; Figure 2 This is a schematic diagram of the three-dimensional structure of the main body of the present invention from a side perspective; Figure 3 This is a schematic diagram of the three-dimensional structure of the main body of the present invention from a rear perspective; Figure 4 This is a schematic diagram of the three-dimensional structure of the air-cooling heat dissipation structure of the present invention from a front perspective; Figure 5 This is a disassembled diagram of the air-cooling heat dissipation structure of the present invention; Figure 6 Schematic diagram of the front perspective three-dimensional structure of the connecting guide component in the present invention; Figure 7 A three-dimensional diagram of the heat dissipation processing component of the present invention; Figure 8 is a perspective view of a second embodiment of the main body of the present invention; Figure 9 This is a split diagram of the regulating structure in the present invention.
[0020] In the figure: 1-first sealing plate, 2-vent, 3-air cooling structure, 4-pressure monitoring tube, 5-butting connecting nozzle, 6-second sealing plate, 7-connecting guide component, 8-heat treatment component, 9-first connecting pipe, 10-second connecting pipe, 11-support grid frame, 12-first connecting pipe, 13-second connecting pipe, 14-third connecting pipe, 15-fourth connecting pipe, 16-fixed bottom block, 17-first hinge block, 18-second hinge block, 19-support partition plate, 20-first electrically-controlled hydraulic telescopic rod, 21-third hinge block, 22-first adjusting plate, 23-first refrigerant conduit, 24-second refrigerant conduit, 25-second adjusting plate, 26-fourth hinge block, 27-cooling pipe, 28-second electrically-controlled hydraulic telescopic rod, 29-adjusting structure, 30-rotating guide plate, 31-rotating block, 32-fifth hinge block, 33-third electrically-controlled hydraulic telescopic rod, 34-sixth hinge block, 35-cooperating articulated shaft, 36-center connecting rod, 37-sleeve. DETAILED DESCRIPTION
[0021] In order to enable those skilled in the art to better understand the present invention, the following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments in the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts should fall within the scope of protection of this application.
[0022] The present invention will be further described below with reference to the accompanying drawings.
[0023] Example 1 Figure 1-7 As shown, an air cooling device with a heat dissipation device of the present invention includes a first sealing plate 1, a vent 2, an air cooling heat dissipation structure 3 and a pressure monitoring tube 4. The lower end of the first sealing plate 1 is fixedly connected to the second sealing plate 6, and the first sealing plate 1 is connected to the vent 2. The air cooling heat dissipation structure 3 is installed in the internal limit of the first sealing plate 1 and the second sealing plate 6. The side end of the first sealing plate 1 and the pressure monitoring tube 4 is connected to the butt connection nozzle 5, and the pressure monitoring tube 4 is installed on the butt connection nozzle 5; The air-cooling heat dissipation structure 3 is used for cooling processing. The first connecting pipe 9 and the second connecting pipe 10 are connected to the fourth connecting pipe 15, and the fourth connecting pipe 15 guides the cooling liquid through the second connecting pipe 13, the first connecting pipe 12, and the third connecting pipe 14. The second electrically controlled hydraulic telescopic rod 28 drives the second adjustment plate 25 to rotate around the bottom by telescoping, changing the position of the cooling pipe 27, and the second refrigerant conduit 24 is connected to the cooling pipe 27 for refrigerant conduction, and air is introduced through the docking connecting nozzle 5 for transmission and guidance within the first sealing plate 1 and the second sealing plate 6.
[0024] The air-cooling heat dissipation structure 3 includes a connecting guide component 7 and a heat dissipation processing component 8. The lower end of the connecting guide component 7 is fixedly connected with a first connecting pipe 9 and a second connecting pipe 10. The center of the first connecting pipe 9 and the second connecting pipe 10 is fixed with a heat dissipation processing component 8. The heat dissipation processing component 8 is used for cooling treatment. Through the setting of the docking connecting nozzle 5, air can be introduced to perform cooling work, and the pressure monitoring tube 4 is used for real-time internal pressure detection work. The air flow is transmitted in the first sealing plate 1 and the second sealing plate 6, which can blow away heat, and the air vent 2 can also introduce air flow, thereby accelerating the internal cooling work, and this structure can be combined in multiple sections to uniformly guide and discharge air. The setting of the air-cooling heat dissipation structure 3 is used for cooling and transmission of the coolant to be cooled. At the same time, the setting of the heat dissipation processing component 8 can accelerate the internal heat dissipation effect.
[0025] The connecting and guiding component 7 includes a supporting grid frame 11, a first connecting pipe 12 and a second connecting pipe 13. The lower end of the supporting grid frame 11 is fixedly connected to a fixed bottom block 16. The upper end of the third connecting pipe 14 is connected to the first connecting pipe 12, and the upper end of the first connecting pipe 12 is connected to the second connecting pipe 13. The front end of the second connecting pipe 13 is connected to the fourth connecting pipe 15. The connecting and guiding component 7 is connected to the first connecting pipe 9 and the second connecting pipe 10. The first connecting pipe 9 and the second connecting pipe 10 introduce the cooling liquid, so that the cooling liquid is conducted to the fourth connecting pipe 15, and then transmitted through the second connecting pipe 13 and guided to the first connecting pipe 12 and the third connecting pipe 14 for centralized drainage processing. During the transmission process, heat dissipation processing is performed. The supporting grid frame 11 and the fixed bottom block 16 are fixed, thereby facilitating support and protection work.
[0026] The heat dissipation treatment component 8 includes a first hinge block 17, on which a second electro-hydraulic telescopic rod 28 is hingedly provided. The side end of the second electro-hydraulic telescopic rod 28 is hingedly provided to the fourth hinge block 26. The lower end of the fourth hinge block 26 is fixedly connected to a second adjustment plate 25. A cooling pipe 27 is provided on the second adjustment plate 25, and the side end of the cooling pipe 27 is connected to the second refrigerant conduit 24. The lower end of the second adjustment plate 25 is supported by a support partition plate 19.
[0027] The first refrigerant conduit 23 is arranged at the lower end of the second refrigerant conduit 24, the side end of the first refrigerant conduit 23 is connected to the first adjustment plate 22, and the first adjustment plate 22 is provided with a symmetrical cooling pipe 27, the lower end of the first adjustment plate 22 is fixedly connected to the third hinge block 21, the side end of the third hinge block 21 is hinged with a first electro-hydraulic telescopic rod 20, the side end of the first electro-hydraulic telescopic rod 20 is hinged to the second hinge block 18, the first hinge block 17 and the second hinge block 18 are fixedly connected, and the structural setting of the connecting guide component 7 is convenient for guiding the coolant to be cooled. The cooling liquid is introduced through the first connecting pipe 9 and the second connecting pipe 10, and then guided through the fourth connecting pipe 15, the second connecting pipe 13, the first connecting pipe 12, and the third connecting pipe 14, so as to expand the heat dissipation surface and accelerate the heat dissipation effect. The second electrically controlled hydraulic telescopic rod 28 can change the position of the first refrigerant conduit 23 through the fourth hinge block 26, so that the second adjustment plate 25 rotates around the limiting frame and changes the inclination, so as to better contact with the transmitted air and perform internal heat absorption work. The first refrigerant conduit 23 and the second refrigerant conduit 24 can both be adjusted in coordination.
[0028] The supporting partition plate 19 , the first hinge block 17 and the second hinge block 18 are all fixedly connected to the second sealing plate 6 , and the pressure monitoring tube 4 is used for pressure detection at the position of the connecting nozzle 5 .
[0029] The side end of the second adjustment plate 25 is provided with a limiting frame, which is fixed to the first hinge block 17 and the second hinge block 18, and the limiting frame is hinged to the second adjustment plate 25. The second electrically controlled hydraulic telescopic rod 28 changes the position of the second adjustment plate 25, the fourth hinge block 26 and the cooling pipe 27 by telescoping, so that the second adjustment plate 25, the fourth hinge block 26 and the cooling pipe 27 rotate around the limiting frame. The heat dissipation treatment component 8 is provided with two groups. The second refrigerant conduit 24 can be connected to the cooling pipe 27 to introduce refrigerant, and then drained through the other end to realize circulation conduction. The first refrigerant conduit 23 has the same structure as the second refrigerant conduit 24, and is used for connecting the cooling pipes 27 symmetrically in the first adjustment plate 22. The first hinge block 17 performs hinged support on the second electro-hydraulic telescopic rod 28. The second electro-hydraulic telescopic rod 28 changes the position of the fourth hinge block 26 by extension and retraction, so that the fourth hinge block 26 drives the second adjustment plate 25 to rotate and adjust on the limit frame, thereby changing the position angle of the second adjustment plate 25 and the limit frame. The support partition plate 19 plays a supporting and protective role. The first electro-hydraulic telescopic rod 20 is hingedly arranged with the second hinge block 18. The extension and retraction of the first electro-hydraulic telescopic rod 20 changes the position of the third hinge block 21, so that the first adjustment plate 22 can also be rotated and adjusted, thereby changing the angles of the first adjustment plates 22 and the second adjustment plates 25 at the upper and lower ends, thereby changing the contact area with the air, thereby changing the cooling effect.
[0030] The first refrigerant conduit 23 and the second refrigerant conduit 24 are designed as hoses and can be deformed, and the connecting nozzle 5 is designed as a duckbill structure.
[0031] The working principle is as follows: when in use, the user can introduce air through the vent hole 2 and the docking connection nozzle 5 to dissipate heat for the internal structure. The pressure monitoring tube 4 is used to monitor the internal pressure. The air-cooling heat dissipation structure 3 is set to introduce the cooling liquid to facilitate the cooling process. The connecting guide component 7 is connected to the first connecting pipe 9 and the second connecting pipe 10. The first connecting pipe 9 and the second connecting pipe 10 introduce the coolant to be cooled, so that the coolant is conducted to the fourth connecting pipe 15, and then transmitted through the second connecting pipe 13 and guided to the first connecting pipe 12 and the third connecting pipe 14 for centralized drainage processing. During the transmission process, heat dissipation processing is performed, and the support grid frame 11 and the fixed bottom block 16 are fixed, thereby facilitating support and protection work; Among them, the heat dissipation processing component 8 is provided with two groups, the second refrigerant conduit 24 can be connected to the cooling pipe 27 to introduce refrigerant, and then discharged through the other end to realize circulation conduction. The first refrigerant conduit 23 and the second refrigerant conduit 24 have the same structure, and are used for connecting the cooling pipes 27 symmetrically in the first adjustment plate 22. The first hinge block 17 performs hinged support on the second electro-hydraulic telescopic rod 28. The second electro-hydraulic telescopic rod 28 changes the position of the fourth hinge block 26 by extension, so that the fourth hinge block 26 drives the second adjustment plate 25 to rotate and adjust on the limit frame, changing the position angle of the second adjustment plate 25 and the limit frame. The supporting partition plate 19 plays a supporting and protective role. The first electro-hydraulic telescopic rod 20 is hingedly set to the second hinge block 18. The extension and contraction of the first electro-hydraulic telescopic rod 20 changes the position of the third hinge block 21, so that the first adjustment plate 22 can also be rotated and adjusted, thereby changing the angle of the first adjustment plate 22 and the second adjustment plate 25 at the upper and lower ends, thereby changing the contact area with the air, thereby changing the cooling effect and completing the work.
[0032] Example 2 Based on Example 1, Figure 8-9 As shown, an adjustment structure 29 is provided in the docking connecting nozzle 5. The adjustment structure 29 is used to adjust the wind direction and change the air inlet pressure. The rotating guide plate 30 is connected to the matching hinge shaft 35 through the rotating block 31, and can be swung and adjusted under the push of the third electrically controlled hydraulic telescopic rod 33.
[0033] The adjusting structure 29 includes a rotating guide plate 30, a rotating block 31, a fifth hinge block 32, a third electrically-controlled hydraulic telescopic rod 33, a sixth hinge block 34, a matching hinge shaft 35, a central connecting rod 36 and a sleeve 37. The adjusting structure 29 is installed on the docking communication nozzle 5 to change the wind direction. The central connecting rod 36, the sleeve 37 and the matching hinge shaft 35 are fixed. The sleeve 37 is fixed to the docking communication nozzle 5 through the central connecting rod 36. The matching hinge shaft 35 is hingedly arranged with the rotating block 31. The third electrically-controlled hydraulic telescopic rod 33 can change the position of the rotating guide plate 30 by telescoping, so that the rotating guide plate 30 is rotated through the rotating block 31 and the connection position of the matching hinge shaft 35, thereby changing the tilt position of the rotating guide plate 30. The lower end of the fifth hinge block 32 is fixed to the plate body, and the fifth hinge block 32 is also The support of the third electro-hydraulic telescopic rod 33, the upper end of the third electro-hydraulic telescopic rod 33 is hinged with the sixth hinge block 34, and the sixth hinge block 34 is fixed to the rotating guide plate 30, so as to facilitate the connection and combination work. The central side end of the sleeve 37 is fixedly connected to the central connecting rod 36, and the sleeve 37 is fixedly provided with a matching hinge shaft 35 near the position of the central connecting rod 36. The side end of the matching hinge shaft 35 is hinged with a rotating block 31, and the side end of the rotating block 31 is hinged with a rotating guide plate 30. The lower end of the rotating guide plate 30 is fixedly connected with the sixth hinge block 34, and the lower end of the sixth hinge block 34 is hinged with the third electro-hydraulic telescopic rod 33. The lower end of the third electro-hydraulic telescopic rod 33 is hinged with the fifth hinge block 32. The lower end of the fifth hinge block 32 is fixed with a plate body, and the plate body is fixedly connected to the docking connecting nozzle 5.
[0034] When in use, the adjustment structure 29 is installed on the docking connecting nozzle 5 to change the wind direction. The central connecting rod 36, the sleeve 37, and the matching hinge shaft 35 are fixed. The sleeve 37 is fixed to the docking connecting nozzle 5 through the central connecting rod 36, and the matching hinge shaft 35 is hinged to the rotating block 31. The third electro-hydraulic telescopic rod 33 can change the position of the rotating guide plate 30 by telescoping, so that the rotating guide plate 30 is rotated through the rotating block 31 and the matching hinge shaft 35 connection position, thereby changing the inclination position of the rotating guide plate 30. The lower end of the fifth hinge block 32 is fixed to the plate body, and the fifth hinge block 32 also supports the third electro-hydraulic telescopic rod 33. The upper end of the third electro-hydraulic telescopic rod 33 is hinged to the sixth hinge block 34, and the sixth hinge block 34 is fixed to the rotating guide plate 30, thereby facilitating the connection and combination work.
[0035] While embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions, and variations may be made to these embodiments without departing from the principles and spirit of the invention, and that the scope of the invention is defined by the appended claims and their equivalents.
Claims
1. An air cooling device with a heat dissipation device, characterized in that: The invention comprises a first sealing plate (1), an air vent (2), an air cooling and heat dissipation structure (3) and a pressure monitoring tube (4); the lower end of the first sealing plate (1) is fixedly connected to the second sealing plate (6), and the first sealing plate (1) is connected to the air vent (2); the air cooling and heat dissipation structure (3) is installed in the inner limit of the first sealing plate (1) and the second sealing plate (6); the side ends of the first sealing plate (1) and the pressure monitoring tube (4) are connected to the butt connection nozzle (5), and the pressure monitoring tube (4) is installed on the butt connection nozzle (5); The air-cooling heat dissipation structure (3) is used for cooling processing. The first connecting pipe (9), the second connecting pipe (10) are connected to the fourth connecting pipe (15), and the fourth connecting pipe (15) guides the cooling liquid through the second connecting pipe (13), the first connecting pipe (12), and the third connecting pipe (14). The second electrically controlled hydraulic telescopic rod (28) drives the second adjustment plate (25) to rotate around the bottom by telescoping, thereby changing the position of the cooling pipe (27). The second refrigerant conduit (24) is connected to the cooling pipe (27) for refrigerant conduction, and air is introduced through the docking connecting nozzle (5) for transmission and guidance within the first sealing plate (1) and the second sealing plate (6).
2. The air cooling device with a heat dissipation device according to claim 1, characterized in that: The air-cooling heat dissipation structure (3) comprises a connecting guide component (7) and a heat dissipation processing component (8); a first connecting pipe (9) and a second connecting pipe (10) are fixedly connected at the lower end of the connecting guide component (7); a heat dissipation processing component (8) is fixedly provided at the center of the first connecting pipe (9) and the second connecting pipe (10); and the heat dissipation processing component (8) is used for cooling processing.
3. The air cooling device with a heat dissipation device according to claim 2, characterized in that: The connecting guide component (7) comprises a supporting grid frame (11), a first connecting pipe (12) and a second connecting pipe (13); the lower end of the supporting grid frame (11) is fixedly connected to a fixed bottom block (16); the upper end of the third connecting pipe (14) is connected to the first connecting pipe (12); the upper end of the first connecting pipe (12) is connected to the second connecting pipe (13); and the front end of the second connecting pipe (13) is connected to the fourth connecting pipe (15).
4. The air cooling device with a heat dissipation device according to claim 3, characterized in that: The heat dissipation treatment component (8) includes a first hinge block (17), a second electrically controlled hydraulic telescopic rod (28) is hingedly provided on the first hinge block (17), a side end of the second electrically controlled hydraulic telescopic rod (28) is hingedly provided with a fourth hinge block (26), a second adjustment plate (25) is fixedly connected to the lower end of the fourth hinge block (26), a cooling pipe (27) is provided on the second adjustment plate (25), and a side end of the cooling pipe (27) is connected to the second refrigerant conduit (24), and the lower end of the second adjustment plate (25) is supported by a supporting partition plate (19).
5. The air cooling device with a heat dissipation device according to claim 4, characterized in that: The first refrigerant conduit (23) is arranged at the lower end of the second refrigerant conduit (24), the side end of the first refrigerant conduit (23) is connected to the first adjustment plate (22), and the first adjustment plate (22) is provided with a symmetrical cooling pipe (27), the lower end of the first adjustment plate (22) is fixedly connected to the third hinge block (21), the side end of the third hinge block (21) is hingedly provided with a first electrically controlled hydraulic telescopic rod (20), the side end of the first electrically controlled hydraulic telescopic rod (20) is hingedly provided with the second hinge block (18), and the first hinge block (17) and the second hinge block (18) are fixedly connected.
6. The air cooling device with a heat dissipation device according to claim 5, characterized in that: The supporting partition plate (19), the first hinge block (17), and the second hinge block (18) are all fixedly connected to the second sealing plate (6), and the pressure monitoring tube (4) is used for pressure detection at the position of the docking communication nozzle (5).
7. The air cooling device with a heat dissipation device according to claim 6, characterized in that: A limiting frame is provided at the side end of the second adjustment plate (25), the limiting frame is fixed to the first hinge block (17) and the second hinge block (18), and the limiting frame is hinged to the second adjustment plate (25). The second electrically controlled hydraulic telescopic rod (28) changes the position of the second adjustment plate (25), the fourth hinge block (26), and the cooling pipe (27) by telescoping, so that the second adjustment plate (25), the fourth hinge block (26), and the cooling pipe (27) rotate around the limiting frame.
8. The air cooling device with a heat dissipation device according to claim 7, characterized in that: The first refrigerant conduit (23) and the second refrigerant conduit (24) are designed as hoses and are capable of deformation, and the connecting nozzle (5) is designed as a duckbill structure.
9. The air cooling device with a heat dissipation device according to claim 8, characterized in that: The butt-jointed connecting nozzle (5) is provided with an adjusting structure (29) for adjusting the wind direction and changing the air inlet pressure. The rotating guide plate (30) is connected to the matching hinge shaft (35) through the rotating block (31) and can be swung and adjusted under the push of the third electrically controlled hydraulic telescopic rod (33).
10. The air cooling device with a heat dissipation device according to claim 9, characterized in that: The regulating structure (29) comprises a rotating guide plate (30), a rotating block (31), a fifth hinge block (32), a third electrically controlled hydraulic telescopic rod (33), a sixth hinge block (34), a matching hinge shaft (35), a central connecting rod (36) and a sleeve (37). The central side end of the sleeve (37) is fixedly connected to the central connecting rod (36). The sleeve (37) is fixedly provided with a matching hinge shaft (35) at a position close to the central connecting rod (36). The side end of the matching hinge shaft (35) is hingedly provided with a rotating block (31). The side end of the rotating block (31) is hingedly provided with a rotating guide plate (30). The lower end of the rotating guide plate (30) is fixedly connected to the sixth hinge block (34). The lower end of the sixth hinge block (34) is hingedly provided with the third electrically controlled hydraulic telescopic rod (33). The lower end of the third electrically controlled hydraulic telescopic rod (33) is hingedly provided with the fifth hinge block (32). The lower end of the fifth hinge block (32) is fixedly provided with a plate body, and the plate body is fixedly connected to the docking communication nozzle (5).
Citation Information
Patent Citations
An air-cooled device with a heat dissipation device
CN108759500B