Double-temperature water cooling system
The dual-temperature chilled water system uses high-temperature and low-temperature evaporators combined with regulating valves to control the refrigerant flow, solving the problems of system complexity and low efficiency caused by different water temperatures in air-cooled and liquid-cooled equipment, and achieving efficient chilled water supply.
Patent Information
- Application Number
- CN202422618880.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-29
- Publication Date
- 2025-09-09
- Estimated Expiration
- 2034-10-29
AI Technical Summary
In the prior art, air-cooled chillers and liquid cooling equipment used in data centers require different water temperatures, resulting in complex systems, large initial investments, or low efficiency.
A dual-temperature cold water system is adopted, through the high-temperature system evaporator and the low-temperature system evaporator, combined with a regulating valve to control the refrigerant flow, to achieve the distribution of high-temperature and low-temperature water and improve the overall efficiency.
While ensuring sufficient cold water supply, the overall efficiency of the dual-temperature cold water system is improved, and the system complexity and initial investment are reduced.
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Figure CN223322335U_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the field of refrigeration equipment, and in particular to a dual-temperature cold water system. Background Art
[0002] For air-cooled chillers used in data centers, the end products include air cooling (such as air walls) and liquid cooling (such as CDU). Since the water temperatures required by air-cooled equipment and liquid-cooled equipment are different, air walls require cold water with a lower temperature, while CDU uses cold water with a higher temperature.
[0003] In order to meet the two different water temperatures, one method in the prior art is to use two cold sources, high-temperature water is provided by a cooling tower, and low-temperature water is provided by a chiller, such as Figure 6 This method is relatively complex, requiring two sets of piping systems and cold sources, and the initial investment is also relatively large.
[0004] Another method in the prior art is to connect the chiller, wind wall and CDU in series. Figure 7 As shown, this method requires only one cooling source, the chiller. The low-temperature water from the chiller first passes through the wind wall. The intermediate-temperature water from the wind wall is then cooled by the CDU. The CDU outlet water returns to the chiller inlet, completing the cycle. However, its overall efficiency is lower than that of a solution using two cooling sources. Utility Model Content
[0005] In view of this, the present application provides a dual-temperature cold water system with higher efficiency, specifically including: a high-temperature system evaporator, including a first refrigerant flow path and a first cooling water flow path capable of heat exchange, the first refrigerant flow path being connected to the refrigerant circulation circuit of the first refrigeration equipment; a low-temperature system evaporator, including a second refrigerant flow path and a second cooling water flow path capable of heat exchange, the second refrigerant flow path being connected to the refrigerant circulation circuit of the second refrigeration equipment; the water outlet of the water cooling equipment is connected to the water inlet of the first cooling water flow path through a pipeline, the water outlet of the first cooling water flow path is connected to the water inlet of the water cooling equipment through a first pipeline, and a regulating valve is provided on the first pipeline; the water outlet of the air cooling equipment is connected to the water inlet of the first cooling water flow path through a pipeline, the water outlet of the first cooling water flow path is connected to the water inlet of the second cooling water flow path through a pipeline, and the water outlet of the second cooling water flow path is connected to the water inlet of the air cooling equipment through a pipeline.
[0006] With this specific structure, the regulating valve can be controlled to control the water flow in the first pipeline, thereby indirectly controlling the refrigerant flow in the second pipeline. This allows for control of the cooling capacity of both the high-temperature and low-temperature evaporators. By distributing cooling capacity, the overall efficiency of the dual-temperature chilled water system can be improved while ensuring an adequate cold water supply.
[0007] As a possible implementation, the first refrigeration equipment includes: a first compressor, the outlet of the first refrigerant flow path is connected to the inlet of the first compressor through a pipeline; a first condenser, the outlet of the first compressor is connected to the inlet of the first condenser through a pipeline; a first expansion valve, the outlet of the first condenser is connected to the inlet of the first expansion valve through a pipeline, and the outlet of the first expansion valve is connected to the inlet of the first refrigerant flow path through a pipeline.
[0008] As a possible implementation, the first condenser includes a plurality of first condensing tubes, and the plurality of first condensing tubes are connected in parallel to a connecting pipeline between the first compressor and the first expansion valve.
[0009] As a possible implementation, there are multiple first condensers, and the multiple first condensers are connected in parallel on the connecting pipeline between the first compressor and the first expansion valve.
[0010] As a possible implementation, the second refrigeration equipment includes: a second compressor, the outlet of the second refrigerant flow path is connected to the inlet of the second compressor through a pipeline; a second condenser, the outlet of the second compressor is connected to the inlet of the second condenser through a pipeline; a second expansion valve, the outlet of the second condenser is connected to the inlet of the second expansion valve through a pipeline, and the outlet of the second expansion valve is connected to the inlet of the second refrigerant flow path through a pipeline.
[0011] As a possible implementation, the second condenser includes a plurality of second condensing tubes, and the plurality of second condensing tubes are connected in parallel to the connecting pipeline between the second compressor and the second expansion valve.
[0012] As a possible implementation, there are multiple second condensers, and the multiple second condensers are connected in parallel on the connecting pipeline between the second compressor and the second expansion valve.
[0013] As a possible implementation, a water pump is provided on the pipeline connecting the water outlet of the water cooling device and the air cooling device with the water inlet of the first cooling water flow path.
[0014] As a possible implementation method, a three-way valve is provided at the outlet of the first cooling water flow path, and the three-way valve includes a first port, a second port and a third port. The first port is connected to the outlet of the first cooling water flow path, the second port is connected to the water inlet of the regulating valve through a pipeline, and the third port is connected to the water inlet of the second cooling water flow path through a pipeline.
[0015] As a possible implementation manner, the flow rate in the first pipeline is greater than the flow rate in the second pipeline. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] The following further illustrates the various technical features of the present application and the relationships between them with reference to the accompanying drawings. The accompanying drawings are exemplary, and some technical features are not shown in actual proportion. In addition, some drawings may omit technical features that are commonly used in the technical field to which the present application belongs and are not essential for understanding and implementing the present application, or additional technical features that are not essential for understanding and implementing the present application may be shown. In other words, the combination of the various technical features shown in the accompanying drawings is not intended to limit the present application. In addition, throughout the present application, the same figure numbers refer to the same content. The specific description of the drawings is as follows:
[0017] Figure 1 This is a schematic diagram of a dual-temperature cold water system according to the first embodiment of the present application;
[0018] Figure 2 This is a schematic diagram of a dual-temperature cold water system according to a second embodiment of the present application;
[0019] Figure 3 This is a performance comparison analysis table of the dual-temperature cold water system between the first embodiment and the second embodiment of this application;
[0020] Figure 4 This is a bar chart showing the cooling capacity and energy efficiency of a dual-temperature chilled water system according to the first embodiment of the present application;
[0021] Figure 5 A bar chart showing the cooling capacity and energy efficiency of a dual-temperature chilled water system according to the second embodiment of the present application;
[0022] Figure 6 Schematic diagram of a dual-cooling source cold water system in the prior art;
[0023] Figure 7 This is a schematic diagram of a series cold water system in the prior art.
[0024] Explanation of the accompanying drawings: 1-water cooling equipment; 2-air cooling equipment; 10-high-temperature system evaporator; 20-low-temperature system evaporator; 30-first pipeline; 31-regulating valve; 40-second pipeline; 50-water pump; 100-first refrigeration equipment; 110-first compressor; 120-first condenser; 121-first condensing pipe; 130-first expansion valve; 200-second refrigeration equipment; 210-second compressor; 220-second condenser; 221-second condensing pipe; 230-second expansion valve. DETAILED DESCRIPTION
[0025] Below, the specific implementation methods of the present application are described in detail with reference to the accompanying drawings.
[0026] The present application provides a dual-temperature cold water system that can simultaneously provide cooling water of different temperatures to a water-cooled device 1 and an air-cooled device 2. The dual-temperature cold water system involved in the embodiment of the present application includes a high-temperature system evaporator 10 and a low-temperature system evaporator 20.
[0027] like Figure 1 As shown, in the first embodiment of the dual-temperature chilled water system of the present application, the high-temperature system evaporator 10 includes a first refrigerant flow path (not shown) and a first cooling water flow path (not shown). The first refrigerant flow path is connected to the refrigerant circulation circuit of the first refrigeration device 100. The first refrigerant flow path and the first cooling water flow path perform heat exchange. The low-temperature system evaporator 20 includes a second refrigerant flow path (not shown) and a second cooling water flow path (not shown). The second refrigerant flow path is connected to the refrigerant circulation circuit of the second refrigeration device 200. The second refrigerant flow path and the second cooling water flow path perform heat exchange.
[0028] Among them, Figure 1 As shown, the water outlet of water cooling device 1 is connected to the water inlet of the first cooling water flow path via a pipeline. The water outlet of the first cooling water flow path is connected to the water inlet of water cooling device 1 via a first pipeline 30, and a regulating valve 31 is provided on the first pipeline 30. The water outlet of air cooling device 2 is connected to the water inlet of the first cooling water flow path via a pipeline. The water outlet of the first cooling water flow path is connected to the water inlet of the second cooling water flow path via a pipeline. The water outlet of the second cooling water flow path is connected to the water inlet of air cooling device 2 via a second pipeline 40.
[0029] Among them, Figure 1 As shown, the first refrigeration equipment 100 includes a first compressor 110, and the outlet of the first refrigerant flow path is connected to the inlet of the first compressor 110 through a pipeline; a first condenser 120, and the outlet of the first compressor 110 is connected to the inlet of the first condenser 120 through a pipeline; a first expansion valve 130, and the outlet of the first condenser 120 is connected to the inlet of the first expansion valve 130 through a pipeline, and the outlet of the first expansion valve 130 is connected to the inlet of the first refrigerant flow path through a pipeline.
[0030] In this embodiment, the first condenser 120 includes a plurality of first condensing tubes 121, which are connected in parallel on the connecting pipe between the first compressor 110 and the first expansion valve 130. There are multiple first condensers 120, and the plurality of first condensers 120 are connected in parallel on the connecting pipe between the first compressor 110 and the first expansion valve 130.
[0031] Among them, Figure 1As shown, the second refrigeration equipment 200 includes a second compressor 210, and the water outlet of the second refrigerant flow path is connected to the water inlet of the second compressor 210 through a pipeline; a second condenser 220, and the water outlet of the second compressor 210 is connected to the water inlet of the second condenser 220 through a pipeline; a second expansion valve 230, and the water outlet of the second condenser 220 is connected to the water inlet of the second expansion valve 230 through a pipeline, and the water outlet of the second expansion valve 230 is connected to the water inlet of the second refrigerant flow path through a pipeline.
[0032] In this embodiment, the second condenser 220 includes a plurality of second condensing tubes 221, which are connected in parallel to the connecting pipe between the second compressor 210 and the second expansion valve 230. There are multiple second condensers 220, and the plurality of second condensers 220 are connected in parallel to the connecting pipe between the second compressor 210 and the second expansion valve 230.
[0033] Among them, Figure 1 As shown, a water pump 50 is provided on the pipeline connecting the water outlets of the water cooling device 1 and the air cooling device 2 with the water inlet of the first cooling water flow path.
[0034] In this embodiment, a three-way valve is provided at the outlet of the first cooling water flow path, and the three-way valve includes a first port, a second port and a third port. The first port is connected to the outlet of the first cooling water flow path, the second port is connected to the water inlet of the regulating valve 31 through a pipeline, and the third port is connected to the water inlet of the second cooling water flow path through a pipeline.
[0035] In addition, if Figure 2 As shown, in the second embodiment of the dual-temperature chilled water system of the present application, the high-temperature system evaporator 10 includes a first refrigerant flow path (not shown) and a first cooling water flow path (not shown). The first refrigerant flow path is connected to the refrigerant circulation circuit of the first refrigeration equipment 100. The first refrigerant flow path and the first cooling water flow path perform heat exchange. The low-temperature system evaporator 20 includes a second refrigerant flow path (not shown) and a second cooling water flow path (not shown). The second refrigerant flow path is connected to the refrigerant circulation circuit of the second refrigeration equipment 200. The second refrigerant flow path and the second cooling water flow path perform heat exchange.
[0036] Among them, Figure 2 As shown, the water outlet of water cooling device 1 is connected to the water inlet of the first cooling water flow path via a pipeline. The water outlet of the first cooling water flow path is connected to the water inlet of the second cooling water flow path via a pipeline. The water outlet of the second cooling water flow path is connected to the water inlet of air cooling device 2 via a pipeline. The water outlet of air cooling device 2 is connected to the water inlet of water cooling device 1 via a pipeline.
[0037] Among them, Figure 2As shown, the first refrigeration equipment 100 includes a first compressor 110, and the outlet of the first refrigerant flow path is connected to the inlet of the first compressor 110 through a pipeline; a first condenser 120, and the outlet of the first compressor 110 is connected to the inlet of the first condenser 120 through a pipeline; a first expansion valve 130, and the outlet of the first condenser 120 is connected to the inlet of the first expansion valve 130 through a pipeline, and the outlet of the first expansion valve 130 is connected to the inlet of the first refrigerant flow path through a pipeline.
[0038] In this embodiment, the first condenser 120 includes a plurality of first condensing tubes 121, which are connected in parallel on the connecting pipe between the first compressor 110 and the first expansion valve 130. There are multiple first condensers 120, and the plurality of first condensers 120 are connected in parallel on the connecting pipe between the first compressor 110 and the first expansion valve 130.
[0039] Among them, Figure 2 As shown, the second refrigeration equipment 200 includes a second compressor 210, and the outlet of the second refrigerant flow path is connected to the inlet of the second compressor 210 through a pipeline; a second condenser 220, and the outlet of the second compressor 210 is connected to the inlet of the second condenser 220 through a pipeline; a second expansion valve 230, and the outlet of the second condenser 220 is connected to the inlet of the second expansion valve 230 through a pipeline, and the outlet of the second expansion valve 230 is connected to the inlet of the second refrigerant flow path through a pipeline.
[0040] In this embodiment, the second condenser 220 includes a plurality of second condensing tubes 221, which are connected in parallel to the connecting pipe between the second compressor 210 and the second expansion valve 230. There are multiple second condensers 220, and the plurality of second condensers 220 are connected in parallel to the connecting pipe between the second compressor 210 and the second expansion valve 230.
[0041] Among them, Figure 2 As shown, a water pump 50 is provided on the pipeline connecting the water outlet of the water cooling device 1 and the water inlet of the first cooling water flow path.
[0042] Compared with the first embodiment described above, the second embodiment differs in that: in the first embodiment, the water cooling device 1 and the air cooling device 2 are arranged in parallel in the water circuit; in the second embodiment, the water cooling device 1 and the air cooling device 2 are arranged in series in the water circuit. In the first embodiment, the flow of the refrigerant in the first pipeline 30 can be controlled by controlling the regulating valve 31. The flow of the refrigerant in the second pipeline 40 can then be indirectly controlled. In this way, the cooling capacity of the high-temperature system evaporator 10 and the low-temperature system evaporator 20 can be controlled. The cooling efficiency of the high-temperature system evaporator 10 (high-temperature system) is higher than the cooling efficiency of the high-temperature system evaporator 10 (low-temperature system). Therefore, increasing the cooling capacity of the high-temperature system can indirectly improve the efficiency of the entire machine.
[0043] Preferably, if Figure 3 、 4 As shown in Figures 5 and 6, in the first embodiment, the high-temperature system has a cooling capacity of 763, the low-temperature system has a cooling capacity of 237, and the efficiency is 5.99. In the second embodiment, the high-temperature and low-temperature systems each have a cooling capacity of 500, and the efficiency is 5.36. At this cooling capacity, the efficiency of the first embodiment is 12% higher than that of the second embodiment. Therefore, the first embodiment is the preferred embodiment.
[0044] In summary, the dual-temperature cold water system involved in the present application includes a regulating valve 31, which can realize the cooling capacity distribution between the high-temperature system and the low-temperature system, thereby improving the efficiency of the entire machine.
[0045] The term "comprising" used throughout this application should not be interpreted as being restricted to what is listed thereafter; it does not exclude other structural elements or steps.
[0046] It can be understood that those skilled in the art can combine the features mentioned in one or more embodiments mentioned throughout the present application with the features of other embodiments in any appropriate manner to implement the present application.
[0047] Note that the above are only preferred embodiments of the present application and the technical principles employed. Those skilled in the art will understand that the present application is not limited to the specific embodiments described herein, and that various obvious changes, readjustments, and substitutions can be made by those skilled in the art without departing from the scope of protection of the present application. Therefore, although the present application has been described in more detail through the above embodiments, the present application is not limited to the above embodiments, and may include many other equivalent embodiments without departing from the technical concept of the present application, all of which fall within the scope of protection of the present application.
Claims
1. A dual-temperature cold water system, characterized in that: It can provide cooling water of different temperatures for water-cooled equipment and air-cooled equipment at the same time, including: The high-temperature system evaporator includes a first refrigerant flow path and a first cooling water flow path capable of heat exchange, wherein the first refrigerant flow path is connected to a refrigerant circulation circuit of the first refrigeration equipment; A low-temperature system evaporator, comprising a second refrigerant flow path capable of heat exchange and a second cooling water flow path, wherein the second refrigerant flow path is connected to a refrigerant circulation circuit of a second refrigeration device; The water outlet of the water cooling device is connected to the water inlet of the first cooling water flow path through a pipeline, and the water outlet of the first cooling water flow path is connected to the water inlet of the water cooling device through a first pipeline, and a regulating valve is provided on the first pipeline; The water outlet of the air cooling device is connected to the water inlet of the first cooling water flow path through a pipeline, the water outlet of the first cooling water flow path is connected to the water inlet of the second cooling water flow path through a pipeline, and the water outlet of the second cooling water flow path is connected to the water inlet of the air cooling device through a second pipeline.
2. The dual-temperature cold water system according to claim 1, characterized in that: The first refrigeration equipment includes: a first compressor, wherein the outlet of the first refrigerant flow path is connected to the inlet of the first compressor via a pipeline; a first condenser, wherein the outlet of the first compressor is connected to the inlet of the first condenser via a pipeline; a first expansion valve, wherein the outlet of the first condenser is connected to the inlet of the first expansion valve via a pipeline, and the outlet of the first expansion valve is connected to the inlet of the first refrigerant flow path via a pipeline; The first condenser includes multiple first condensing tubes, which are connected in parallel on the connecting pipeline between the first compressor and the first expansion valve. There are multiple first condensers, and the multiple first condensers are connected in parallel on the connecting pipeline between the first compressor and the first expansion valve.
3. The dual-temperature cold water system according to claim 1, characterized in that: The second refrigeration equipment includes: a second compressor, wherein the outlet of the second refrigerant flow path is connected to the inlet of the second compressor via a pipeline; a second condenser, wherein the outlet of the second compressor is connected to the inlet of the second condenser via a pipeline; a second expansion valve, wherein the outlet of the second condenser is connected to the inlet of the second expansion valve via a pipeline, and the outlet of the second expansion valve is connected to the inlet of the second refrigerant flow path via a pipeline; The second condenser includes multiple second condensing tubes, which are connected in parallel on the connecting pipeline between the second compressor and the second expansion valve. There are multiple second condensers, and the multiple second condensers are connected in parallel on the connecting pipeline between the second compressor and the second expansion valve.
4. The dual-temperature cold water system according to claim 1, characterized in that: A water pump is provided on the pipeline connecting the water outlet of the water cooling device and the air cooling device with the water inlet of the first cooling water flow path.
5. The dual-temperature cold water system according to claim 1, characterized in that: A three-way valve is provided at the outlet of the first cooling water flow path, and the three-way valve includes a first port, a second port and a third port. The first port is connected to the outlet of the first cooling water flow path, the second port is connected to the water inlet of the regulating valve through a pipeline, and the third port is connected to the water inlet of the second cooling water flow path through a pipeline.
6. A dual-temperature cold water system, characterized in that: It can provide cooling water of different temperatures for water-cooled equipment and air-cooled equipment at the same time, including: The high-temperature system evaporator includes a first refrigerant flow path and a first cooling water flow path capable of heat exchange, wherein the first refrigerant flow path is connected to a refrigerant circulation circuit of the first refrigeration equipment; A low-temperature system evaporator, comprising a second refrigerant flow path capable of heat exchange and a second cooling water flow path, wherein the second refrigerant flow path is connected to a refrigerant circulation circuit of a second refrigeration device; The water outlet of the water cooling device is connected to the water inlet of the first cooling water flow path through a pipeline, the water outlet of the first cooling water flow path is connected to the water inlet of the second cooling water flow path through a pipeline, the water outlet of the second cooling water flow path is connected to the water inlet of the air cooling device through a pipeline, and the water outlet of the air cooling device is connected to the water inlet of the water cooling device through a pipeline.
7. The dual-temperature cold water system according to claim 6, characterized in that: The first refrigeration equipment includes: a first compressor, wherein the outlet of the first refrigerant flow path is connected to the inlet of the first compressor via a pipeline; a first condenser, wherein the outlet of the first compressor is connected to the inlet of the first condenser via a pipeline; a first expansion valve, wherein the outlet of the first condenser is connected to the inlet of the first expansion valve via a pipeline, and the outlet of the first expansion valve is connected to the inlet of the first refrigerant flow path via a pipeline; The first condenser includes multiple first condensing tubes, which are connected in parallel on the connecting pipeline between the first compressor and the first expansion valve. There are multiple first condensers, and the multiple first condensers are connected in parallel on the connecting pipeline between the first compressor and the first expansion valve.
8. The dual-temperature cold water system according to claim 6, characterized in that: The second refrigeration equipment includes: a second compressor, wherein the outlet of the second refrigerant flow path is connected to the inlet of the second compressor via a pipeline; a second condenser, wherein the outlet of the second compressor is connected to the inlet of the second condenser via a pipeline; a second expansion valve, wherein the outlet of the second condenser is connected to the inlet of the second expansion valve via a pipeline, and the outlet of the second expansion valve is connected to the inlet of the second refrigerant flow path via a pipeline; The second condenser includes multiple second condensing tubes, which are connected in parallel on the connecting pipeline between the second compressor and the second expansion valve. There are multiple second condensers, and the multiple second condensers are connected in parallel on the connecting pipeline between the second compressor and the second expansion valve.
9. The dual-temperature cold water system according to claim 6, characterized in that: A water pump is provided on the pipeline connecting the water outlet of the water cooling device and the water inlet of the first cooling water flow path.