Separating type efficient temperature adjusting system

Through the separate high-efficiency temperature control system, the use of synchronous adjustment components and filtering components solves the energy efficiency, adjustment accuracy and structural complexity problems of the existing temperature control system, achieves efficient and stable temperature control and dirt filtration, reduces energy consumption and reduces space occupation.

CN223388782UActive Publication Date: 2025-09-26SHANGHAI LINPIN INSTR
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Patent Information

Application Number
CN202422739536.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-11
Publication Date
2025-09-26
Estimated Expiration
2034-11-11

AI Technical Summary

Technical Problem

Existing temperature control systems have shortcomings in energy efficiency, adjustment accuracy and structural complexity. In addition, the heat exchanger is easily clogged by dirt and takes up a lot of space.

Method used

A separate and efficient temperature control system was designed, including temperature control equipment, heat pump and separate heat exchanger. Synchronous adjustment components and filter components were used to achieve precise control of the heat exchanger and dirt filtration, ensuring efficient and stable operation of the system in different environments.

Benefits of technology

By real-time monitoring of temperature and humidity, precise control is achieved, energy consumption is reduced, dirt blockage is avoided, system space is reduced, and the normal use of heat exchangers is ensured.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a separating type efficient temperature regulating system, which belongs to the technical field of temperature regulation and comprises temperature regulating equipment and a heat pump, and the output end of the temperature regulating equipment is fixedly connected with the input end of the heat pump through a pipeline; the output end of the heat pump is connected with a separated heat exchanger through a pipeline; the separated heat exchanger comprises a fixed plate, a movable pressing plate, a synchronous adjusting assembly, heat exchange pieces, a cold outlet, a heat inlet, a filtering assembly, a heat outlet and a cold inlet, the fixed plate is provided with the cold outlet, the heat inlet, the heat outlet and the cold inlet, the fixed plate is connected with the synchronous adjusting assembly used for synchronous driving, and multiple sets of heat exchange pieces (24) are arranged between the movable pressing plate and the fixed plate; the synchronous adjusting assembly, the filtering assembly, the temperature adjusting device and the heat pump are all electrically connected with the control system. By means of the mode, it is ensured that the system can operate efficiently and stably under different environment conditions, and the temperature adjusting system can remarkably reduce energy consumption while ensuring the temperature adjusting effect.
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Description

[Technical field]

[0001] The utility model relates to the technical field of temperature regulation, in particular to a separate high-efficiency temperature regulation system. [Background Technology]

[0002] At present, temperature control systems have been widely used in the industrial field, mainly through compressors, heaters, heat exchangers and other equipment to achieve temperature regulation. These traditional systems still have many shortcomings in energy efficiency, adjustment accuracy, structural complexity, etc. At the same time, the existing heat exchangers have dirt remaining in the heat exchange plate, and the dirt will affect the conductivity of the heat exchange plate. In addition, the overall structure of the existing heat exchanger assembly is large and occupies a large space.

[0003] For example, Chinese patent CN114199051B discloses a plate-type heat exchanger comprising a base, vertical plates slidably mounted on the top ends of the base, side plates slidably mounted on one side wall of the two vertical plates, a limiting assembly for limiting and fixing the two vertical plates and the side plates, a support plate disposed within the space enclosed by the two vertical plates and the side plates on the base, a plurality of stacked corrugated heat exchange plates attached to the top of the support plate, the corrugated heat exchange plates slidably connected to the side plates, a pressing plate slidably connected to the front of the side plate for squeezing and fixing the corrugated heat exchange plates, the pressing plate slidably attached to the support plate, and a detachable positioning assembly disposed between the pressing plate and the adjacent vertical plates. The present invention allows for quick and easy assembly of the entire unit, or for easy transport.

[0004] Based on this, the utility model designs a separate high-efficiency temperature control system to solve the above problems. [Utility Model Content]

[0005] In view of the above-mentioned shortcomings of the prior art, the utility model provides a separate high-efficiency temperature control system.

[0006] To achieve the above purpose, a separate high-efficiency temperature control system is designed, including temperature control equipment and heat pump:

[0007] The output end of the temperature control device is fixedly connected to the input end of the heat pump through a pipeline;

[0008] The output end of the heat pump is connected to a separate heat exchanger via a pipeline;

[0009] The separate heat exchanger comprises a fixed plate, a movable pressure plate, a synchronous adjustment component, a heat exchange fin, a cold outlet, a heat inlet, a filter component, a heat outlet and a cold inlet, the fixed plate is provided with a cold outlet, a heat inlet, a heat outlet and a cold inlet, the fixed plate is connected with a synchronous adjustment component for synchronous driving, the end of the synchronous adjustment component away from the fixed plate is fixedly connected to the upper and lower ends of the movable pressure plate, a plurality of groups of heat exchange fins are provided between the movable pressure plate and the fixed plate, the plurality of groups of heat exchange fins are communicated with the cold outlet, the heat inlet, the heat outlet and the cold inlet, the bottom of the heat exchange fin is limitedly plugged with the synchronous adjustment component, the top of the heat exchange fin is in contact with the synchronous adjustment component, the heat inlet and the cold outlet are both connected with a filter component for filtering, the filter component connected to the heat inlet is connected to the output end of the heat pump through a pipeline, and the heat outlet is connected to the input end of the heat pump through a pipeline;

[0010] The synchronous adjustment component, the filtering component, the temperature adjustment device and the heat pump are all electrically connected to the control system.

[0011] Furthermore, the synchronous adjustment component includes a drive component, an upper limit component and a lower support component. The drive component is fixedly connected to the fixed plate. The upper and lower ends of the drive component are respectively connected to the upper limit component and the lower support component. The two ends of the upper limit component are respectively connected to the fixed plate and the movable pressure plate. The two ends of the lower support component are respectively connected to the fixed plate and the movable pressure plate.

[0012] Furthermore, the drive assembly includes a synchronous belt, a motor, a synchronous wheel and a threaded rod. The side wall of the fixed plate is fixedly connected to the motor. The synchronous belt is rotatably connected to two sets of synchronous wheels. Threaded rods are installed in the mounting holes of the synchronous wheels. One set of synchronous wheels is fixedly connected to the driving end of the motor, the upper threaded rod is connected to the upper limit assembly, and the lower threaded rod is connected to the lower support assembly. The bottom of the first set of plates is in the groove opened on the top of the heat exchange plate.

[0013] Furthermore, the threaded rod is rotatably connected to the fixed plate via a bearing.

[0014] Furthermore, the upper limit assembly includes a first set of plates and a first slide, the first set of plates is fixedly connected to the side wall of the fixed plate, the side wall of the movable pressure plate is fixedly connected to the first slide, the outer wall of the first slide is slidingly connected to the inner wall of the first set of plates, and the upper threaded rod is threadedly connected to the first slide.

[0015] Furthermore, the lower support assembly includes a second slide and a second set of plates, the second set of plates is fixedly connected to the side wall of the fixed plate, the side wall of the movable pressure plate is fixedly connected to the second slide, the second set of plates is slidingly connected to the second slide via a limiting sliding groove, the second slide is threadedly connected to the threaded rod below, and the top of the second slide is flush with the top of the second set of plates, and the bottom of the heat exchange plate is plugged into the second set of plates through a slot.

[0016] The filter assembly further comprises a first control valve, a cover, a tank body, a first pipe, a second control valve, a second pipe, a third control valve, a fourth control valve, a third pipe, an annular plate, a limiting ring, a filter barrel and a support frame, wherein the first pipe is fixedly connected to the tank body, the first pipe is fixedly connected to one end of the second pipe, the other end of the second pipe is fixedly connected to the top of the tank body, the third control valve is installed on the second pipe, the second control valve is installed on the first pipe at a position between the second pipe and the tank body, the third pipe is fixedly connected to the side wall of the tank body, and the fourth control valve is installed on the third pipe, the inner wall of the tank body is fixedly connected to the annular plate, the bottom of the annular plate is fixedly connected to the limiting ring, the filter barrel is plugged into the inner wall of the limiting ring, the bottom of the tank body is threadedly connected to the cover body, the first control valve is installed on the cover body, the cover body is fixedly connected to the support frame, the top of the support frame is in contact with the bottom of the filter barrel, and the contact portion of the third pipe with the tank body is higher than the annular plate, and the contact portion of the first pipe with the tank body is lower than the annular plate;

[0017] The third pipe at the heat inlet is fixedly connected to the heat inlet, and the third pipe at the cold outlet is fixedly connected to the cold outlet.

[0018] Furthermore, the first pipe at the heat inlet is connected to the output end of the heat pump.

[0019] Compared with the prior art, the utility model has the following advantages:

[0020] (1) The control system of this utility model monitors key parameters such as air temperature and humidity in real time and automatically adjusts the working state of the heat pump according to preset conditions. Through precise control strategies, it ensures that the system can maintain efficient and stable operation under different environmental conditions. The temperature control system can significantly reduce energy consumption while maintaining the temperature control effect.

[0021] (2) The utility model designs a filter assembly at the cold outlet and the hot inlet, which can filter the liquid entering the heat exchange plate, prevent dirt from entering the heat exchange plate, and prevent dirt from clogging the heat exchange plate, thereby ensuring the normal use of the heat exchange plate. At the same time, the synchronous adjustment assembly can synchronously drive the upper and lower ends of the movable pressure plate to move synchronously, which is beneficial for the fixed plate and the movable pressure plate to clamp multiple groups of heat exchange plates, and the overall structure is small and occupies little space. [Brief Description of the Drawings]

[0022] Figure 1 It is a structural diagram of the utility model;

[0023] Figure 2 The utility model is a three-dimensional separate heat exchanger Figure 1 ;

[0024] Figure 3This is the left side view of the front view of the separate heat exchanger of the present utility model;

[0025] Figure 4 The utility model is a three-dimensional separate heat exchanger Figure 3 ;

[0026] Figure 5 The utility model is a three-dimensional separate heat exchanger Figure 2 ;

[0027] Figure 6 To follow Figure 2 AA direction cross-sectional view;

[0028] Figure 7 To follow Figure 3 BB direction cross-sectional view;

[0029] In the figure: 1. Temperature control equipment; 2. Separate heat exchanger; 21. Fixed plate; 22. Movable pressure plate; 23. Synchronous adjustment component; 231. Synchronous belt; 232. Motor; 233. First set of plates; 234. Synchronous pulley; 235. First slide plate; 236. Second slide plate; 237. Second set of plates; 238. Threaded rod; 24. Heat exchanger; 25. Cold outlet; 26. Hot inlet; 27. Filter component; 271. First control valve; 272. Cover; 273. Tank; 274. First pipeline; 275. Second control valve; 276. Second pipeline; 277. Third control valve; 278. Fourth control valve; 279. Third pipeline; 2710. Ring plate; 2711. Limiting ring; 2712. Filter barrel; 2713. Support frame; 28. Hot outlet; 29. ​​Cold inlet; 3. Heat pump; 4. Control system. [Specific implementation method]

[0030] The present invention will be further described below with reference to the accompanying drawings and specific embodiments:

[0031] Example 1: Please refer to the accompanying drawings of the specification Figures 1 to 7 The utility model separate high-efficiency temperature control system includes a temperature control device 1 and a heat pump 3:

[0032] Temperature control equipment 1 uses cooling and heating systems;

[0033] The output end of the temperature control device 1 is fixedly connected to the input end of the heat pump 3 through a pipeline;

[0034] The output end of the heat pump 3 is connected to the separate heat exchanger 2 through a pipeline;

[0035] The separate heat exchanger 2 includes a fixed plate 21, a movable pressure plate 22, a synchronous adjustment component 23, a heat exchange plate 24, a cold outlet 25, a heat inlet 26, a filter component 27, a heat outlet 28 and a cold inlet 29. The fixed plate 21 is provided with a cold outlet 25, a heat inlet 26, a heat outlet 28 and a cold inlet 29. The fixed plate 21 is connected to a synchronous adjustment component 23 for synchronous drive. The end of the synchronous adjustment component 23 away from the fixed plate 21 is fixedly connected to the upper and lower ends of the movable pressure plate 22. The movable pressure plate 22 and the fixed plate Multiple groups of heat exchange fins 24 are provided between the fixed plates 21. The multiple groups of heat exchange fins 24 are connected to the cold outlet 25, the heat inlet 26, the heat outlet 28 and the cold inlet 29. The bottom of the heat exchange fins 24 is limitedly plugged with the synchronous adjustment component 23, and the top of the heat exchange fins 24 is in contact with the synchronous adjustment component 23. The heat inlet 26 and the cold outlet 25 are both connected to a filter component 27 for filtering. The filter component 27 connected to the heat inlet 26 is connected to the output end of the heat pump 3 through a pipeline, and the heat outlet 28 is connected to the input end of the heat pump 3 through a pipeline.

[0036] The synchronous adjustment component 23 , the filtering component 27 , the temperature control device 1 and the heat pump 3 are all electrically connected to the control system 4 .

[0037] Control system 4 monitors key parameters such as temperature and humidity of the air;

[0038] Control system 4 monitors key parameters such as air temperature and humidity in real time and automatically adjusts the operating state of heat pump 3 based on preset conditions. This precise control strategy ensures efficient and stable operation under varying environmental conditions. The temperature control system significantly reduces energy consumption while maintaining effective temperature regulation.

[0039] A filter assembly 27 is designed at the cold outlet 25 and the hot inlet 26 to filter the liquid entering the heat exchanger fin 24, preventing dirt from entering the heat exchanger fin 24 and clogging the heat exchanger fin 24 with dirt, thereby ensuring the normal use of the heat exchanger fin 24. At the same time, the synchronous adjustment assembly 23 can synchronously drive the upper and lower ends of the movable pressure plate 22 to move synchronously, which is beneficial for the fixed plate 21 and the movable pressure plate 22 to clamp multiple groups of heat exchanger fins 24, and the overall structure is small, occupying little space.

[0040] The synchronous adjustment assembly 23 includes a drive assembly, an upper limit assembly and a lower support assembly. The drive assembly is fixedly connected to the fixed plate 21. The upper and lower ends of the drive assembly are respectively connected to the upper limit assembly and the lower support assembly. The two ends of the upper limit assembly are respectively connected to the fixed plate 21 and the movable pressure plate 22. The two ends of the lower support assembly are respectively connected to the fixed plate 21 and the movable pressure plate 22.

[0041] The drive assembly includes a synchronous belt 231, a motor 232, a synchronous wheel 234 and a threaded rod 238. The motor 232 is fixedly connected to the side wall of the fixed plate 21. The synchronous belt 231 is rotatably connected to two sets of synchronous wheels 234. Threaded rods 238 are installed in the mounting holes of the synchronous wheels 234. One set of synchronous wheels 234 is fixedly connected to the driving end of the motor 232. The upper threaded rod 238 is connected to the upper limit assembly, and the lower threaded rod 238 is connected to the lower support assembly. The bottom of the first set of plates 233 is in the groove opened at the top of the heat exchange plate 24.

[0042] The threaded rod 238 is rotatably connected to the fixed plate 21 via a bearing;

[0043] The upper limit assembly includes a first set plate 233 and a first slide 235. The first set plate 233 is fixedly connected to the side wall of the fixed plate 21, the side wall of the movable pressure plate 22 is fixedly connected to the first slide 235, the outer wall of the first slide 235 is slidably connected to the inner wall of the first set plate 233, and the upper threaded rod 238 is threadedly connected to the first slide 235;

[0044] The lower support assembly includes a second slide plate 236 and a second set plate 237. The second set plate 237 is fixedly connected to the side wall of the fixed plate 21. The side wall of the movable pressure plate 22 is fixedly connected to the second slide plate 236. The second set plate 237 is slidingly connected to the second slide plate 236 via a limiting sliding groove. The second slide plate 236 is threadedly connected to the threaded rod 238 below. The top of the second slide plate 236 is flush with the top of the second set plate 237. The bottom of the heat exchange plate 24 is plugged into the second set plate 237 through a slot.

[0045] The heat exchanger 24 is inserted into the second set of plates 237 of the lower support assembly of the synchronous adjustment assembly 23. The bottom of the first set of plates 233 is in the groove opened at the top of the heat exchanger 24. The motor 232 drives a set of synchronous wheels 234 to rotate. A set of synchronous wheels 234 drives another set of synchronous wheels 234 to rotate through the synchronous belt 231. The synchronous wheels 234 drive the threaded rod 238 to rotate. The threaded rod 238 drives the first slide 235 and the second slide 236 to drive the movable pressing plate 22 to move toward the fixed plate 21. After the movable pressing plate 22 moves toward the fixed plate 21, the movable pressing plate 22 and the fixed plate 21 cooperate to press the multiple groups of heat exchanger fins 24, which is convenient for driving the upper and lower ends of the movable pressing plate 22 at the same time. After the multiple groups of heat exchanger fins 24 are pressed, the overall structure is small and occupies little space.

[0046] The filter assembly 27 includes a first control valve 271, a cover 272, a tank body 273, a first pipe 274, a second control valve 275, a second pipe 276, a third control valve 277, a fourth control valve 278, a third pipe 279, an annular plate 2710, a limiting ring 2711, a filter barrel 2712 and a support frame 2713. The first pipe 274 is fixedly connected to the tank body 273, the first pipe 274 is fixedly connected to one end of the second pipe 276, the other end of the second pipe 276 is fixedly connected to the top of the tank body 273, the third control valve 277 is installed on the second pipe 276, the second control valve 275 is installed on the first pipe 274 between the second pipe 276 and the tank body 273, and the tank body 27 A third pipe 279 is fixedly connected to the side wall, and a fourth control valve 278 is installed on the third pipe 279. An annular plate 2710 is fixedly connected to the inner wall of the tank body 273. A limit ring 2711 is fixedly connected to the bottom of the annular plate 2710. A filter barrel 2712 is inserted into the inner wall of the limit ring 2711. The bottom of the tank body 273 is threadedly connected to the cover body 272. The first control valve 271 is installed on the cover body 272. A support frame 2713 is fixedly connected to the cover body 272. The top of the support frame 2713 is in contact with the bottom of the filter barrel 2712. The contact point between the third pipe 279 and the tank body 273 is higher than the annular plate 2710, and the contact point between the first pipe 274 and the tank body 273 is lower than the annular plate 2710.

[0047] The third pipe 279 at the heat inlet 26 is fixedly connected to the heat inlet 26 , and the third pipe 279 at the cold outlet 25 is fixedly connected to the cold outlet 25 ;

[0048] The first pipe 274 at the heat inlet 26 is connected to the output end of the heat pump 3;

[0049] The first pipe 274 at the cold outlet 25 is connected to the output end of the external device that needs temperature control, and the cold inlet 29 is connected to the input end of the external device that needs temperature control;

[0050] The third control valve 277 and the first control valve 271 are closed, and the second control valve 275 and the fourth control valve 278 are opened. The liquid output by the heat pump 3 or the liquid at the output end of the external device enters the tank body 273 through the first pipe 274, and is filtered by the filter barrel 2712. The filtered liquid passes through the annular plate 2710 and enters the cold inlet 29, and then enters the heat exchange plate 24. The liquid entering the heat exchange plate 24 can be filtered to prevent dirt from entering the heat exchange plate 24 and clogging the heat exchange plate 24, thereby ensuring the normal use of the heat exchange plate 24.

[0051] When it is necessary to clean the dirt on the outer wall of the filter barrel 2712, the third control valve 277 and the first control valve 271 are opened, and the second control valve 275 and the fourth control valve 278 are closed. The liquid output by the heat pump 3 or the liquid at the output end of the external equipment enters the second pipe 276 through the first pipe 274, and enters the filter barrel 2712 through the annular plate 2710. The filter barrel 2712 is backflushed and then discharged through the bottom of the cover body 272, which is convenient for backflushing and collecting dirt, thereby ensuring the filtering performance of the filter barrel 2712.

[0052] The contents not described in detail in this specification belong to the existing technology known to professional and technical personnel in this field. The standard parts used can be purchased from the market, and special-shaped parts can be customized according to the description in the specification and drawings. The specific connection methods of each part adopt mature conventional means such as bolts, rivets, welding, etc. in the existing technology. The machinery, parts and equipment all adopt conventional models in the existing technology, and the circuit connections adopt conventional connection methods in the existing technology, which will not be described in detail here.

[0053] The present invention is not limited to the above-mentioned embodiments. Any other changes, modifications, substitutions, combinations, and simplifications that do not deviate from the spirit and principles of the present invention should be considered as equivalent replacement methods and are included in the scope of protection of the present invention.

Claims

1. A separate high-efficiency temperature control system, comprising a temperature control device (1) and a heat pump (3), characterized in that: The output end of the temperature control device (1) is fixedly connected to the input end of the heat pump (3) through a pipeline; The output end of the heat pump (3) is connected to a separate heat exchanger (2) via a pipeline; The separate heat exchanger (2) comprises a fixed plate (21), a movable pressure plate (22), a synchronous adjustment component (23), a heat exchange plate (24), a cold outlet (25), a heat inlet (26), a filter component (27), a heat outlet (28) and a cold inlet (29); the fixed plate (21) is provided with a cold outlet (25), a heat inlet (26), a heat outlet (28) and a cold inlet (29); the fixed plate (21) is connected to a synchronous adjustment component (23) for synchronous driving; the end of the synchronous adjustment component (23) away from the fixed plate (21) is fixedly connected to the upper and lower ends of the movable pressure plate (22); the movable pressure plate (22) and A plurality of heat exchange fins (24) are provided between the fixed plates (21), and the plurality of heat exchange fins (24) are communicated with the cold outlet (25), the heat inlet (26), the heat outlet (28) and the cold inlet (29). The bottom of the heat exchange fins (24) is limitedly plugged with the synchronous adjustment component (23), and the top of the heat exchange fins (24) is in contact with the synchronous adjustment component (23). The heat inlet (26) and the cold outlet (25) are both connected to a filter component (27) for filtering. The filter component (27) connected to the heat inlet (26) is connected to the output end of the heat pump (3) through a pipeline, and the heat outlet (28) is connected to the input end of the heat pump (3) through a pipeline. The synchronous adjustment component (23), the filtering component (27), the temperature adjustment device (1) and the heat pump (3) are all electrically connected to the control system (4).

2. The separate high-efficiency temperature control system according to claim 1, characterized in that: The synchronous adjustment component (23) includes a driving component, an upper limit component and a lower support component. The driving component is fixedly connected to the fixed plate (21). The upper and lower ends of the driving component are respectively connected to the upper limit component and the lower support component. The two ends of the upper limit component are respectively connected to the fixed plate (21) and the movable pressure plate (22). The two ends of the lower support component are respectively connected to the fixed plate (21) and the movable pressure plate (22).

3. The separate high-efficiency temperature control system according to claim 2, characterized in that: The driving assembly comprises a synchronous belt (231), a motor (232), a synchronous wheel (234) and a threaded rod (238); the side wall of the fixed plate (21) is fixedly connected to the motor (232); the synchronous belt (231) is rotatably connected to two sets of synchronous wheels (234); threaded rods (238) are installed in the mounting holes of the synchronous wheels (234); one set of synchronous wheels (234) is fixedly connected to the driving end of the motor (232); the upper threaded rod (238) is connected to the upper limit assembly; the lower threaded rod (238) is connected to the lower support assembly; the bottom of the first set of plates (233) is in a groove opened at the top of the heat exchange plate (24).

4. The separate high-efficiency temperature control system according to claim 3, characterized in that: The threaded rod (238) is rotatably connected to the fixed plate (21) via a bearing.

5. The separate high-efficiency temperature control system according to claim 4, characterized in that: The upper limit assembly includes a first set of plates (233) and a first slide (235), wherein the first set of plates (233) is fixedly connected to the side wall of the fixed plate (21), the side wall of the movable pressure plate (22) is fixedly connected to the first slide (235), the outer wall of the first slide (235) is slidably connected to the inner wall of the first set of plates (233), and the upper threaded rod (238) is threadedly connected to the first slide (235).

6. The separate high-efficiency temperature control system according to claim 5, characterized in that: The lower support assembly includes a second slide plate (236) and a second set plate (237), the second set plate (237) is fixedly connected to the side wall of the fixed plate (21), the side wall of the movable pressure plate (22) is fixedly connected to the second slide plate (236), the second set plate (237) is slidingly connected to the second slide plate (236) through a limiting sliding groove, the second slide plate (236) is threadedly connected to the threaded rod (238) below, and the top of the second slide plate (236) is flush with the top of the second set plate (237), and the bottom of the heat exchange plate (24) is plugged into the second set plate (237) through a slot.

7. The separate high-efficiency temperature control system according to claim 6, characterized in that: The filter assembly (27) comprises a first control valve (271), a cover (272), a tank (273), a first pipe (274), a second control valve (275), a second pipe (276), a third control valve (277), a fourth control valve (278), a third pipe (279), an annular plate (2710), a limiting ring (2711), a filter barrel (2712) and a support frame (2713). The first pipe (274) is fixedly connected to the tank (273). The first pipe (274) is fixedly connected to one end of the second pipe (276). The other end of the second pipe (276) is fixedly connected to the top of the tank (273). The third control valve (277) is installed on the second pipe (276). The first pipe (274) is installed with a second control valve (275) at a position between the second pipe (276) and the tank (273). The tank (273) A third pipe (279) is fixedly connected to the side wall of the tank (273), and a fourth control valve (278) is installed on the third pipe (279). An annular plate (2710) is fixedly connected to the inner wall of the tank (273), and a limiting ring (2711) is fixedly connected to the bottom of the annular plate (2710). A filter barrel (2712) is inserted into the inner wall of the limiting ring (2711). The bottom of the tank (273) is threadedly connected to a cover (272). A first control valve (271) is installed on the cover (272), a support frame (2713) is fixedly connected inside the cover (272), the top of the support frame (2713) is in contact with the bottom of the filter barrel (2712), and the contact portion between the third pipe (279) and the tank body (273) is higher than the annular plate (2710), and the contact portion between the first pipe (274) and the tank body (273) is lower than the annular plate (2710); The third pipe (279) at the heat inlet (26) is fixedly connected to the heat inlet (26), and the third pipe (279) at the cold outlet (25) is fixedly connected to the cold outlet (25).

8. The separate high-efficiency temperature control system according to claim 7, characterized in that: The first pipe (274) at the heat inlet (26) is connected to the output end of the heat pump (3).

Citation Information

Patent Citations

  • A plate heat exchanger

    CN114199051B