A water chiller with automatic dehumidification and temperature regulation functions
Patent Information
- Application Number
- CN202410158454.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-02-04
- Publication Date
- 2026-08-18
- Estimated Expiration
- 2044-02-04
AI Technical Summary
[0005]因此,本发明要解决的技术问题在于克服现有技术中,无法在合理利用空间,达到结合实际的气候环境温度和湿度进行自动调节的效果
[0024] 1. Its liquid cooling function can reduce the temperature of the high-temperature coolant at the equipment end to the required low-temperature coolant.
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Figure CN117870185B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of indoor air dehumidification, and more specifically to a chiller with automatic dehumidification and temperature regulation functions. Background Technology
[0002] In existing industrial and commercial liquid-cooled energy storage cabinets or other equipment, the coolant provided by the chiller can only cool the battery pack. When the humidity inside the cabinet is high and the temperature drops, condensation is easy to form, which can damage the electrical equipment. The conventional solution is to install a dehumidifier in the cabinet. However, in this solution, the dehumidifier occupies valuable space inside the energy storage cabinet or container.
[0003] In winter, when temperatures are low, heating systems such as air conditioners or electric heaters are needed to maintain the ambient temperature inside containers, adding extra equipment. Similar to the chiller control system, method, and chiller unit described in patent number CN201811391622.6, which relates to the field of chiller control technology, the system includes multiple chiller units. Each chiller unit includes a control module, a MAC address chip, and a CAN communication module. The control module sends the first MAC address from the MAC address chip to other chiller units via the CAN communication module. This system can automatically provide a unique MAC address to each chiller unit, eliminating the need for manual address allocation by the commissioning operator, thus improving the reliability and stability of system communication. Furthermore, it reduces manual intervention and increases the automation level of the network during the chiller unit networking process.
[0004] Therefore, the existing technical solutions have shortcomings. When used in containerized energy storage cabinets, they cannot make reasonable use of space and achieve the effect of automatic adjustment based on the actual climate environment temperature and humidity. Summary of the Invention
[0005] Therefore, the technical problem to be solved by the present invention is to overcome the inability of the prior art to achieve the effect of automatic adjustment in combination with the actual climate environment temperature and humidity by making reasonable use of space.
[0006] Therefore, the technical solution adopted is a chiller with automatic dehumidification and temperature regulation functions, comprising:
[0007] Environmental data acquisition module: Used to collect data from various sensors regarding the operating conditions of the environment in which the chiller operates;
[0008] Data analysis module: Intelligently analyzes various sensor data through the server to match the optimal control data;
[0009] The integrated control module controls the operation of the chiller, generates control commands based on control data, and controls and adjusts the operating status of corresponding equipment in the chiller's operating system.
[0010] Preferably, the environmental data acquisition module includes a humidity sensor for acquiring ambient humidity and a temperature sensor for acquiring ambient temperature; when the ambient humidity and temperature reach preset thresholds, the data analysis module that receives the signals drives the integrated control module to adjust the humidity and temperature of the chiller.
[0011] Preferably, the integrated control module includes a circulating heat exchange module, a condensation module, a valve switching module, and a dehumidification module; the circulating heat exchange module is used to absorb ambient heat for heat transfer; the condensation module is used to condense and cool the absorbed heat; the valve switching module controls the switching between cooling and dehumidification based on the different uses of the condensation module for temperature and humidity; and the dehumidification module is used to dehumidify the ambient humidity.
[0012] Preferably, the circulating heat exchange module includes a circulating pump and an automatically adaptable plate heat exchanger, wherein the circulating pump is connected to the automatically adaptable plate heat exchanger through inlet and outlet water pipes.
[0013] Preferably, the condensing module includes a compressor, a first condenser, and a fan. An automatic adapter plate heat exchanger is connected to the compressor and the first condenser via inlet and outlet water pipes. A fan for cooling is fixed on the first condenser.
[0014] Preferably, the valve switching module includes an automatic valve one, an electronic expansion valve one, an automatic valve two, and an electronic expansion valve two. The inlet and outlet water pipes of the condenser one connecting to the automatic adapter plate heat exchanger are equipped with the automatic valve one and the electronic expansion valve one; the inlet and outlet water pipes of the condenser one connecting to the dehumidification module are equipped with the automatic valve two and the electronic expansion valve two.
[0015] Preferably, the dehumidification module includes a second condenser, a condensate drain outlet, an exhaust fan, and a PTC electric heater. The first condenser is connected to the second condenser via inlet and outlet water pipes. An automatic valve and an electronic expansion valve are installed on the inlet and outlet water pipes. The second condenser is equipped with a condensate drain outlet, and the drain pipe of the second condenser is connected to the compressor. The second condenser is equipped with an exhaust fan, and the exhaust fan blows flowing air through the PTC electric heater.
[0016] Preferably, the automatic adaptable plate heat exchanger includes a central fixed shaft, a liquid inlet system, a liquid return system, a deployment system, and an extension system. The liquid inlet system is fixed at the upper end of the central fixed shaft, and the liquid return system is longitudinally slidably arranged at the lower end of the central fixed shaft. Both the liquid inlet system and the liquid return system are connected to the inlet and outlet water pipes. The deployment system is rotatably arranged on the central fixed shaft, and the extension system is arranged on the deployment system.
[0017] Preferably, a fixed support plate is fixed to the upper end of the central fixed shaft, and a fixed threaded hole is provided in the fixed support plate; the unfolding system includes two unfolding frames and an unfolding driver, and two unfolding frames are symmetrically rotated on the central fixed shaft, and the two unfolding frames are driven to unfold on the central fixed shaft by a hinged unfolding driver;
[0018] The unfolding actuator includes an unfolding drive motor, a fixed base, a drive rack, an unfolding hinge shaft, and two extension hinge rods. The unfolding drive motor is fixed on the central fixed shaft through the fixed base. The unfolding drive motor drives one end of the drive rack through gear meshing. The drive rack slides transversely through the limiting mechanism within the central fixed shaft. The other end of the drive rack is hinged to the two extension hinge rods through the unfolding hinge shaft. The two extension hinge rods are respectively hinged to two unfolding frames.
[0019] The two display frames are combined and interlocked.
[0020] Preferably, the liquid inlet system includes a connecting hose and a heat exchange water inlet pipe, and the heat exchange water inlet pipe is provided with a connecting hose for easy turning and connection; the liquid return system is similar.
[0021] Multiple rotating heat exchange plates are rotatably arranged inside the unfolding frame. Each rotating heat exchange plate includes a side-expansion driver, an upper rotating shaft, a heat exchange outer shell, an inner upper heat exchange shell, a connecting outer sleeve, an inner lower heat exchange shell, and an inner heat exchange tube. The side-expansion driver is fixed on the unfolding frame and drives the rotating heat exchange plates through gear meshing. Multiple rotating heat exchange plates are connected to each other through gear belt meshing. The side-expansion driver drives the upper rotating shaft to rotate inside the unfolding frame through gear meshing. The upper rotating shaft is connected to and connected to the heat exchange inlet pipe through a rotary joint. The outer wall of the upper rotating shaft is fixed to the heat exchange outer shell. The upper rotating shaft is fixed to and connected to the inner upper heat exchange shell. Both the inner upper heat exchange shell and the inner lower heat exchange shell are provided with coiled tubes. The lower end of the inner upper heat exchange shell is fixed to and connected to the connecting outer sleeve through the coiled tubes. The inner heat exchange tube is slidably and sealed inside the connecting outer sleeve. The inner heat exchange tube is fixed to and connected to the inner lower heat exchange shell through the coiled tubes. The inner lower heat exchange shell is inserted into the lower end of the heat exchange outer shell.
[0022] The lower end of the heat exchanger inner shell is fixed and connected to the lower connecting seat via a spiral tube. A hinged slide rod is hinged to the lower connecting seat, and multiple displacement rollers are installed on the hinged slide rod. The hinged slide rod slides laterally within the extension drive seat via the multiple displacement rollers. The two ends of the extension drive seat slide longitudinally within the unfolding frame and the fixed support slide rod, respectively. The extension drive seat drives the extension driver through gear and rack meshing. The extension driver is fixed to the side of the unfolding frame.
[0023] The beneficial effects of this invention are as follows:
[0024] 1. Its liquid cooling function can reduce the temperature of the high-temperature coolant at the equipment end to the required low-temperature coolant.
[0025] 2. Its liquid cooling heating function can quickly heat the low-temperature coolant of external equipment, raising its temperature and thus achieving the function of heating the equipment;
[0026] 3. Its dehumidification and cooling function: when the PTC electric heating is turned off, the high-temperature and humid air inside the cabinet can pass through the condenser in the dehumidification module, thereby reducing the dew point temperature and removing moisture from the air inside the cabinet, and lowering the ambient temperature.
[0027] 4. Heating function for the air inside the cabinet: In this case, only the exhaust fan and PTC electric heater in the dehumidification module are turned on to heat the air inside the cabinet.
[0028] This solution and product enable temperature regulation functions, allowing liquid coolant to be cooled from high to low temperatures and heated from low to high temperatures. Simultaneously, it provides cooling, dehumidification, and heating functions for the air inside the cabinet, thus eliminating the need for traditional dehumidifiers and air conditioners. This not only reduces costs but also significantly saves space inside the cabinet.
[0029] Other features and advantages of the invention will be set forth in the description which follows, and will be apparent in part from the description, or may be learned by practicing the invention. The objects and other advantages of the invention may be realized and obtained by means of the structures particularly pointed out in this application.
[0030] The technical solution of the present invention will be further described in detail below with reference to the accompanying drawings and embodiments. Attached Figure Description
[0031] The accompanying drawings are provided to further illustrate the invention and form part of the specification. They are used in conjunction with embodiments of the invention to explain the invention and do not constitute a limitation thereof. In the drawings:
[0032] Figure 1 This is a schematic diagram of the pipe connections for the chiller of this invention;
[0033] Figure 2 This is a schematic diagram of the structure of the automatic adapting plate heat exchanger of the present invention. Figure 1 ;
[0034] Figure 3 This is a schematic diagram of the structure of the automatic adapting plate heat exchanger of the present invention. Figure 2 ;
[0035] Figure 4 This is a schematic diagram of the unfolding structure of the unfolding frame of the present invention;
[0036] Figure 5 This is a schematic diagram of the structure of the deployment driver of the present invention. Figure 1 ;
[0037] Figure 6This is a schematic diagram of the structure of the deployment driver of the present invention. Figure 2 ;
[0038] Figure 7 This is a schematic diagram of the inlet and outlet water pipes of the automatic adapting plate heat exchanger of the present invention.
[0039] Figure 8 This is a schematic diagram of the structure of the rotary heat exchanger of the present invention;
[0040] Figure 9 This is an enlarged structural schematic diagram of the rotary heat exchange plate of the present invention;
[0041] Figure 10 This is a schematic diagram of the internal structure of the rotary heat exchanger plate of the present invention. Figure 1 ;
[0042] Figure 11 This is a schematic diagram of the internal structure of the rotary heat exchanger plate of the present invention. Figure 2 ;
[0043] Figure 12 This is a schematic diagram of the structure of the extended system of the present invention.
[0044] In the diagram: 1. Circulating pump; 2. Automatically adaptable plate heat exchanger; 3. Compressor; 4. Condenser I; 5. Fan; 6. Automatic valve I; 7. Electronic expansion valve I; 8. Automatic valve II; 9. Electronic expansion valve II; 10. Condenser II; 11. Condensate drain; 12. Exhaust fan; 13. PTC electric heater; 14. Dehumidification module; 15. Central fixed shaft; 16. Liquid inlet system; 17. Liquid return system; 18. Deployment system; 19. Extension system; 20. Fixed support plate; 21. Deployment frame; 22. Deployment drive. Components: 22; 23; 24; 25; 26; 27; 28; 29; 20; 31; 32; 33; 34; 35; 36; 37; 38; 39; 40; 40; 41; 42; 43; 44; 35; 36; 37; 38; 39; 40; 41; 42; 43; 44; 35; 36; 37; 38; 39; 40; 41; 42; 40; 41; 42. Detailed Implementation
[0045] To make the above-mentioned objects, features and advantages of the present invention more apparent and understandable, the present invention will be further described in detail below with reference to the accompanying drawings and specific embodiments.
[0046] In the description of this application, it should be understood that the terms "middle," "top," "bottom," "inner," and "outer," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, and are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this application. The terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of indicated technical features. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this application, "a plurality of" means two or more, unless otherwise explicitly specified.
[0047] Furthermore, unless otherwise explicitly specified and limited, the terms "installation," "connection," "linking," and "fixing," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection between two components. Those skilled in the art can understand the specific meaning of the above terms in this application based on the specific circumstances.
[0048] In this application, unless otherwise expressly specified and limited, "above" or "below" the second feature can include direct contact between the first and second features, or contact between the first and second features through another feature between them. Furthermore, "above," "over," and "on top" of the second feature includes the first feature being directly above or diagonally above the second feature, or simply indicates that the first feature is at a higher horizontal level than the second feature. "Below," "below," and "under" the second feature includes the first feature being directly below or diagonally below the second feature, or simply indicates that the first feature is at a lower horizontal level than the second feature. Specific implementation method one:
[0050] like Figure 1 As shown, a chiller with automatic dehumidification and temperature control functions includes...
[0051] Environmental data acquisition module: Used to collect data from various sensors regarding the operating conditions of the environment in which the chiller operates;
[0052] Data analysis module: Intelligently analyzes various sensor data through the server to match the optimal control data;
[0053] The integrated control module controls the operation of the chiller, generates control commands based on control data, and controls and adjusts the operating status of corresponding equipment in the chiller's operating system.
[0054] The working principle and beneficial effects of this embodiment are as follows: A chiller is installed inside the containerized energy storage cabinet. Temperature and humidity data are collected via an environmental data acquisition module and analyzed by a data analysis module. When specified temperature and humidity values are reached, the integrated control module controls and drives the chiller. Simultaneously, in conjunction with condensation and dehumidification, the chiller's automatic adaptable plate heat exchanger 2 expands and extends accordingly, increasing the contact area within a limited space and improving heat recovery efficiency. This accelerates temperature regulation within the containerized energy storage cabinet. Combined with dehumidification, this achieves its liquid cooling function, reducing the temperature of the high-temperature coolant at the equipment end to the required low-temperature coolant. Its liquid cooling heating function rapidly heats the low-temperature coolant of external equipment, raising its temperature to heat the equipment. Its dehumidification and cooling function, with the PTC electric heating off, allows the high-temperature, humid air inside the cabinet to pass through the condenser in the dehumidification module, thereby lowering the dew point temperature, removing moisture from the air inside the cabinet, and reducing the ambient temperature. It also provides heating for the air inside the cabinet. At this time, only the exhaust fan and PTC electric heater in the dehumidification module are turned on to heat the air inside the cabinet. Specific Implementation Method Two:
[0056] like Figure 2 -and Figure 12 As shown, a chiller with automatic dehumidification and temperature regulation functions is described. The environmental data acquisition module includes a humidity sensor for acquiring ambient humidity and a temperature sensor for acquiring ambient temperature. When the ambient humidity and temperature reach preset thresholds, the data analysis module that receives the signals drives the integrated control module to regulate the humidity and temperature of the chiller.
[0057] The working principle and beneficial effects of this embodiment are as follows: By setting multiple temperature and humidity sensors, the temperature and humidity inside the container energy storage cabinet are determined, avoiding excessively high or low temperatures and taking into account the influence of climate and environment on humidity, so as to avoid affecting the equipment and products inside the container energy storage cabinet. Then, the temperature and humidity inside the container energy storage cabinet are regulated and controlled by this chiller, thereby stabilizing the temperature and humidity conditions, effectively saving space while ensuring the environment inside the container energy storage cabinet and the transportation of products and equipment. Specific implementation method three:
[0059] like Figure 2 -and Figure 12As shown, a chiller with automatic dehumidification and temperature regulation functions is disclosed. The integrated control module includes a circulating heat exchange module, a condensing module, a valve switching module, and a dehumidification module 14. The circulating heat exchange module is used to absorb ambient heat and transfer it. The condensing module is used to condense and cool the absorbed heat. The valve switching module controls the switching between cooling and dehumidification based on the different uses of the condensing module for temperature and humidity. The dehumidification module 14 is used to dehumidify the ambient humidity.
[0060] The working principle and beneficial effects of this embodiment are as follows: The integrated control module integrates and controls the circulating heat exchange module, condensation module, and valve switching module for automated control. Combined with the collection and automatic analysis of actual container energy storage cabinet air temperature and humidity data, automatic adjustment and control are performed. The circulating heat exchange module is used to absorb ambient heat for heat transfer; the condensation module is used to condense and cool the absorbed heat; the valve switching module controls the cooling and dehumidification switching according to the different uses of the condensation module for temperature and humidity; and the dehumidification module 14 is used to dehumidify the ambient humidity. Specific implementation method four:
[0062] like Figure 2 -and Figure 12 As shown, a chiller with automatic dehumidification and temperature regulation functions is disclosed. The circulating heat exchange module includes a circulating pump 1 and an automatically adaptable plate heat exchanger 2. The circulating pump 1 is connected to the automatically adaptable plate heat exchanger 2 through inlet and outlet water pipes. The condensing module includes a compressor 3, a condenser 4, and a fan 5. The automatically adaptable plate heat exchanger 2 is connected to the compressor 3 and the condenser 4 through inlet and outlet water pipes. The fan 5 for cooling is fixed on the condenser 4. The valve switching module includes an automatic valve 6, an electronic expansion valve 7, an automatic valve 8, and an electronic expansion valve 9. Automatic valves are installed on the inlet and outlet water pipes connecting the condenser 4 to the automatically adaptable plate heat exchanger 2. The condenser 10 is connected to the dehumidification module 14 via an inlet and outlet water pipe, which is equipped with an automatic valve 8 and an electronic expansion valve 9. The dehumidification module 14 includes a condenser 10, a condensate drain outlet 11, an exhaust fan 12, a PTC electric heater 13, and the dehumidification module 14. The condenser 10 is connected to the condenser 10 via an inlet and outlet water pipe, which is equipped with an automatic valve 8 and an electronic expansion valve 9. The condenser 10 is equipped with a condensate drain outlet 11, and the drain pipe of the condenser 10 is connected to the compressor 3. The condenser 10 is equipped with an exhaust fan 12, which blows flowing air through the PTC electric heater 13.
[0063] The working principle and beneficial effects of this embodiment are as follows: The circulating pump 1 drives the water used in the chiller system to circulate, so that it passes through the automatic adaptable plate heat exchanger 2 and absorbs heat in the container energy storage cabinet where the automatic adaptable plate heat exchanger 2 is located. After the heat is absorbed, it is driven by the compressor 3 into the condenser 4, where it is cooled by the blowing of the fan 5 and the circulation. The cooled coolant then flows back into the automatic adaptable plate heat exchanger 2 for further cooling and heat removal. The valve switching module, including the automatic valve 6, electronic expansion valve 7, automatic valve 8, and electronic expansion valve 9, controls the valves when humidity needs to be adjusted. This allows the cooled liquid to flow into the condenser 10 for further cooling, while the condensed water is discharged through the condensate drain 11. The water is then blown by the exhaust fan 12 and heated by the PTC electric heater 13 before flowing into the container energy storage cabinet, thus completing the dehumidification process. Specific implementation method five:
[0065] like Figure 2 -and Figure 12 As shown, a chiller with automatic dehumidification and temperature regulation functions is disclosed. The automatic adaptable plate heat exchanger 2 includes a central fixed shaft 15, a liquid inlet system 16, a liquid return system 17, an expansion system 18, and an extension system 19. The liquid inlet system 16 is fixed at the upper end of the central fixed shaft 15, and the liquid return system 17 is longitudinally slidably arranged at the lower end of the central fixed shaft 15. Both the liquid inlet system 16 and the liquid return system 17 are connected to the inlet and outlet water pipes. The expansion system 18 is rotatably arranged on the central fixed shaft 15, and the extension system 19 is arranged on the expansion system 18.
[0066] The working principle and beneficial effects of this embodiment are as follows: When the automatic adaptable plate heat exchanger 2 is used normally, the upper end of the central fixed shaft 15 is fixed inside the container energy storage cabinet for retraction, avoiding excessive space occupation. The temperature is regulated and controlled by the circulating coolant through the liquid inlet system 16 and the liquid return system 17. When it is necessary to improve the temperature control efficiency, and the corresponding cooling and dehumidification efficiency does not meet expectations, further control of the integrated control module is required to control the unfolding system 18 and the extension system 19, thereby increasing the contact area, improving the temperature regulation and control efficiency, and improving the dehumidification efficiency. As a result, the automatic adaptable plate heat exchanger 2 can be further matched and used in the environmental data acquisition module, data analysis module and integrated control module of the chiller. Specific implementation method six:
[0068] like Figure 2 -and Figure 12As shown, a chiller with automatic dehumidification and temperature regulation functions is provided. The upper end of the central fixed shaft 15 is fixed with a fixed support plate 20, and the fixed support plate 20 is provided with a fixed threaded hole. The unfolding system 18 includes two unfolding frames 21 and an unfolding driver 22. Two unfolding frames 21 are symmetrically rotated on the central fixed shaft 15. The two unfolding frames 21 are driven to unfold on the central fixed shaft 15 by the hinged unfolding driver 22.
[0069] The unfolding actuator 22 includes an unfolding drive motor 23, a fixed base 24, a drive rack 25, an unfolding hinge shaft 26, and two extension hinge rods 27. The unfolding drive motor 23 is fixed to the central fixed shaft 15 through the fixed base 24. The unfolding drive motor 23 drives one end of the drive rack 25 through gear meshing. The drive rack 25 slides transversely within the central fixed shaft 15. The other end of the drive rack 25 is hinged to the two extension hinge rods 27 through the unfolding hinge shaft 26. The two extension hinge rods 27 are respectively hinged to the two unfolding frames 21. The two unfolding frames 21 are interlocked and combined with each other.
[0070] The working principle and beneficial effects of this embodiment are as follows: the two unfolding frames 21 are cross-combined to facilitate the combination and unfolding of the space, effectively saving space inside the container energy storage cabinet; the position of the central fixed shaft 15 is fixed by the threads on the fixed support plate 20; when it is necessary to further improve the temperature control and dehumidification effect, the unfolding driver 22 is driven by the integrated control module, and then the unfolding drive motor 23 drives the drive rack 25 to drive the unfolding hinge shaft 26 and the two extension hinge rods 27 to unfold outward, so that the two unfolding frames 21 that are combined and inserted gradually unfold and gradually enlarge at a specified angle, thereby increasing the contact area of the space; after completing dehumidification and temperature control, it is retracted, effectively combining the use of space to perform corresponding matching temperature control and dehumidification inside the container energy storage cabinet. Specific implementation method seven:
[0072] like Figure 2 -and Figure 12 As shown, a chiller with automatic dehumidification and temperature regulation functions is described. The liquid inlet system 16 includes a connecting hose 28 and a heat exchange water inlet pipe 29. The heat exchange water inlet pipe 29 is provided with a connecting hose 28 for easy turning and connection. The liquid return system 17 is similar.
[0073] Multiple rotating heat exchange plates are rotatably arranged inside the unfolding frame 21. Each rotating heat exchange plate includes a side-mounted driver 30, an upper rotating shaft 31, a heat exchange outer shell 32, an inner upper heat exchange shell 33, a connecting outer sleeve 34, an inner lower heat exchange shell 35, and an inner heat exchange tube 36. The side-mounted driver 30 is fixed to the unfolding frame 21 and drives the rotating heat exchange plates via gear meshing. The multiple rotating heat exchange plates are connected by gear belt meshing. The side-mounted driver 30 drives the upper rotating shaft 31 to rotate within the unfolding frame 21 via gear meshing. A rotary joint connects to and is connected to the heat exchange inlet pipe 29. The outer wall of the upper rotating shaft 31 is fixed to the heat exchange outer shell 32. The upper rotating shaft 31 is fixed to and connected to the heat exchange inner upper shell 33. Both the heat exchange inner upper shell 33 and the heat exchange inner lower shell 35 are provided with coiled tubes. The lower end of the heat exchange inner upper shell 33 is fixed to and connected to the connecting outer shell 34 through the coiled tube. The heat exchange inner tube 36 is provided in a sealed sliding manner inside the connecting outer shell 34. The heat exchange inner tube 36 is fixed to and connected to the heat exchange inner lower shell 35 through the coiled tube. The heat exchange inner lower shell 35 is inserted into the lower end of the heat exchange outer shell 32.
[0074] The lower end of the heat exchange inner shell 35 is fixed and connected to the lower connecting seat 37 by a spiral tube. A hinged slide rod 38 is hinged on the lower connecting seat 37. Multiple displacement wheels 39 are provided on the hinged slide rod 38. The hinged slide rod 38 slides laterally in the extension drive seat 40 through the multiple displacement wheels 39. The two ends of the extension drive seat 40 are respectively longitudinally limited and slid in the unfolding frame 21 and the fixed support slide rod 41. The extension drive seat 40 drives the extension driver 42 through gear and rack meshing. The extension driver 42 is fixed to the side end of the unfolding frame 21.
[0075] The working principle and beneficial effects of this embodiment are as follows: the liquid inlet system 16 and the liquid return system 17 facilitate the recovery of the added coolant after it absorbs heat, and then cool it before recirculating it to achieve temperature control; at the same time, it works in conjunction with the dehumidification module 14 to dehumidify; the heat exchange water inlet pipe 29 is connected to the upper rotating shaft 31 through a rotary joint to facilitate the rotation and unfolding of multiple rotating heat exchange plates; the use of the connecting hose 28 facilitates the folding and unfolding of the two unfolding frames 21;
[0076] When multiple rotating heat exchange plates need to be deployed simultaneously for increased temperature control and dehumidification, the side-expansion driver 30 drives all the upper rotating shafts 31 to rotate the heat exchange shell 32, causing the heat exchange shell 32 to expand and thus increasing the air area in the end space. The upper heat exchange shell 33 and the lower heat exchange shell 35 are connected by a sliding connection between the outer sleeve 34 and the inner heat exchange tube 36, facilitating the extension of the extension system 19 when extending its use. The connection within the spiral tube effectively increases the contact area. By synchronously driving the symmetrical extension driver 42, the extension drive seat 40 is driven to move up and down within the fixed support slide rod 41 and the unfolding frame 21. The hinge slide rod 38, which slides laterally within the extension drive seat 40, slides through multiple displacement wheels 39, effectively reducing interference when the corresponding heat exchange shell 32 is unfolded. Through the sliding of the hinge slide rod 38 within the extension drive seat 40 and the extension characteristics of the hinge slide rod 38 itself, rotational unfolding and matching extension are convenient during up and down displacement, thereby further increasing the contact area within the effective usable space.
[0077] The above description is not intended to limit the present invention, nor is the present invention limited to the examples given above. Any changes, modifications, additions, or substitutions made by those skilled in the art within the scope of the present invention are also within the protection scope of the present invention.
Claims
1. A water chiller with automatic dehumidification and temperature regulation, characterized in that: include Environmental data acquisition module: Used to collect data from various sensors regarding the operating conditions of the environment in which the chiller operates; Data analysis module: Intelligently analyzes various sensor data through the server to match the optimal control data; Integrated control module; Control the operation of the chiller, generate control commands based on control data, and control and adjust the operating status of the corresponding equipment in the chiller's operating system; The integrated control module includes a circulating heat exchange module, a condensation module, a valve switching module and a dehumidification module (14). The circulating heat exchange module includes an automatic adapter plate heat exchanger (2), and the circulating pump (1) is connected to the automatic adapter plate heat exchanger (2) through inlet and outlet water pipes. The automatic adaptable plate heat exchanger (2) includes a central fixed shaft (15), a liquid inlet system (16), a liquid return system (17), a deployment system (18), and an extension system (19). The liquid inlet system (16) is fixed at the upper end of the central fixed shaft (15), and the liquid return system (17) is longitudinally slidably arranged at the lower end of the central fixed shaft (15). The liquid inlet system (16) and the liquid return system (17) are both connected to the inlet and outlet water pipes. The deployment system (18) is rotatably arranged on the central fixed shaft (15), and the extension system (19) is arranged on the deployment system (18). The upper end of the central fixed shaft (15) is fixed with a fixed support plate (20), and the fixed support plate (20) is provided with a fixed threaded hole; the unfolding system (18) includes two unfolding frames (21) and an unfolding driver (22). Two unfolding frames (21) are symmetrically rotated on the central fixed shaft (15), and the two unfolding frames (21) are driven to unfold on the central fixed shaft (15) by the hinged unfolding driver (22); The unfolding driver (22) includes an unfolding drive motor (23), a fixed base (24), a drive rack (25), an unfolding hinge shaft (26), and two extension hinge rods (27). The unfolding drive motor (23) is fixed on the central fixed shaft (15) through the fixed base (24). The unfolding drive motor (23) meshes with one end of the drive rack (25) through a gear. The drive rack (25) slides across the limiting position within the central fixed shaft (15). The other end of the drive rack (25) is hinged to two extension hinge rods (27) through the unfolding hinge shaft (26). The two extension hinge rods (27) are respectively hinged to two unfolding frames (21). The two unfolding frames (21) are interlocked and combined; The liquid inlet system (16) includes a connecting hose (28) and a heat exchange water inlet pipe (29), and the heat exchange water inlet pipe (29) is provided with a connecting hose (28) for easy turning and connection; the liquid return system (17) is similar; Multiple rotating heat exchange plates are rotatably arranged inside the unfolding frame (21). Each rotating heat exchange plate includes a side-mounted driver (30), an upper rotating shaft (31), a heat exchange outer shell (32), an inner upper heat exchange shell (33), a connecting outer sleeve (34), an inner lower heat exchange shell (35), and an inner heat exchange tube (36). The side-mounted driver (30) is fixed on the unfolding frame (21) and drives the rotating heat exchange plates through gear meshing. Multiple rotating heat exchange plates are connected by gear belt meshing. The side-mounted driver (30) drives the upper rotating shaft (31) to rotate inside the unfolding frame (21) through gear meshing. The upper rotating shaft (31) is connected by gear meshing. A rotary joint is connected to and connected to the heat exchange inlet pipe (29). The outer wall of the upper rotating shaft (31) is fixed to the heat exchange shell (32). The upper rotating shaft (31) is fixed to and connected to the heat exchange inner upper shell (33). Both the heat exchange inner upper shell (33) and the heat exchange inner lower shell (35) are equipped with coiled tubes. The lower end of the heat exchange inner upper shell (33) is fixed to and connected to the connecting outer shell (34) through the coiled tube. The heat exchange inner tube (36) is sealed and slidably installed inside the connecting outer shell (34). The heat exchange inner tube (36) is fixed to and connected to the heat exchange inner lower shell (35) through the coiled tube. The heat exchange inner lower shell (35) is inserted into the lower end of the heat exchange shell (32). The lower end of the heat exchange inner shell (35) is fixed and connected to the lower connecting seat (37) by a spiral tube. The lower connecting seat (37) is connected to a hinge slide rod (38). Multiple displacement wheels (39) are provided on the hinge slide rod (38). The hinge slide rod (38) slides laterally in the extension drive seat (40) through multiple displacement wheels (39). The two ends of the extension drive seat (40) are respectively longitudinally limited and slid in the unfolding frame (21) and the fixed support slide rod (41). The extension drive seat (40) drives the extension driver (42) through gear and rack meshing. The extension driver (42) is fixed to the side end of the unfolding frame (21).
2. The water chiller with automatic dehumidification and temperature regulation function according to claim 1, characterized in that: The environmental data acquisition module includes a humidity sensor for acquiring ambient humidity and a temperature sensor for acquiring ambient temperature. When the ambient humidity and temperature reach preset thresholds, the data analysis module that receives the signals drives the integrated control module to adjust the humidity and temperature of the chiller.
3. A chiller with automatic dehumidification and temperature regulation functions according to claim 2, characterized in that: The circulating heat exchange module is used to absorb ambient heat for heat transfer; the condensing module is used to condense and cool the absorbed heat; the valve switching module controls the cooling and dehumidification switching for different uses of the condensing module for temperature and humidity; the dehumidification module (14) is used to dehumidify the ambient humidity.
4. A chiller with automatic dehumidification and temperature regulation functions according to claim 1, characterized in that: The condensing module includes a compressor (3), a condenser (4) and a fan (5). The automatic adapter plate heat exchanger (2) is connected to the compressor (3) and the condenser (4) through inlet and outlet water pipes. The condenser (4) is fixed with a fan (5) for cooling.
5. A chiller with automatic dehumidification and temperature regulation functions according to claim 1, characterized in that: The valve switching module includes automatic valve one (6), electronic expansion valve one (7), automatic valve two (8) and electronic expansion valve two (9). Automatic valve one (6) and electronic expansion valve one (7) are installed on the inlet and outlet water pipes of condenser one (4) connecting to the automatic adapter plate heat exchanger (2); automatic valve two (8) and electronic expansion valve two (9) are installed on the inlet and outlet water pipes of condenser one (4) connecting to the dehumidification module (14).
6. A chiller with automatic dehumidification and temperature regulation functions according to claim 5, characterized in that: The dehumidification module (14) includes a second condenser (10), a condensate drain port (11), an exhaust fan (12), and a PTC electric heater (13). The first condenser (4) is connected to the second condenser (10) through inlet and outlet water pipes. An automatic valve (8) and an electronic expansion valve (9) are installed on the inlet and outlet water pipes. The second condenser (10) is provided with a condensate drain port (11). The drain pipe of the second condenser (10) is connected to the compressor (3). The second condenser (10) is provided with an exhaust fan (12). The exhaust fan (12) blows the flowing air through the PTC electric heater (13).
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