Exploration supercomputing data center fusion type water softening system and exploration supercomputing center system
By designing a converged softened water system for the exploration supercomputing data center, the different softened water requirements of air conditioners and humidifiers were solved, achieving resource conservation and efficient cooling, and reducing operating costs and energy consumption.
Patent Information
- Application Number
- CN202411229656.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-03
- Publication Date
- 2026-03-10
AI Technical Summary
In exploration supercomputing data centers in sub-plateau regions, air conditioners and humidifiers have different requirements for softened water. Existing technologies typically employ two independent water treatment systems, leading to resource waste and high operation and maintenance costs, making it difficult to meet the needs of both devices within a single system.
Design a converged softened water system for an exploration supercomputing data center, including a first water tank, a quartz sand filter, a resin filter tank, a brine tank, and a conductivity detection and control device. Through multi-stage filtration and brine tank regulation, it provides softened water compatible with air conditioners and humidifiers, and uses the conductivity detection and control device to achieve automated water quality adjustment.
This system simultaneously meets the softened water needs of both air conditioners and humidifiers, reducing data center water treatment costs and piping, lowering construction and maintenance costs, improving equipment reliability and cooling efficiency, and reducing energy consumption.
Smart Images

Figure CN121627128A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of soft water for heat dissipation of oil exploration centers, and particularly relates to a fusion type soft water system for an exploration supercomputing center and an exploration supercomputing center system. BACKGROUND
[0002] The oil exploration supercomputing center is different from the traditional data center. First, in terms of the number and type of equipment, a large number of computers and servers are usually needed to process and store massive geological exploration data, and there are GPU cluster systems, CPU cluster systems, high-performance cluster storage systems, IP and IB dual-core network systems inside, and different types of equipment have great differences in terms of work load and energy consumption. Second, in terms of data processing requirements, geological exploration data usually need to be processed and analyzed in a complex manner, and the demand for computing power and storage capacity is high, which increases a large amount of energy consumption. Third, in terms of heat dissipation requirements, the equipment in the data center will generate a large amount of heat, so cooling equipment is needed to maintain a suitable temperature. Therefore, in the oil exploration supercomputing center, a large amount of heat is generated by complex computing tasks, and a high-efficiency and reliable cooling system is needed to maintain operation.
[0003] In the sub-alpine region, due to the characteristics of geological conditions and resource distribution, the exploration supercomputing data center occupies a large proportion. The region has complex terrain and rich oil and gas resources, and large-scale exploration supercomputing data centers have been built in these areas to provide comprehensive exploration data calculation and research support and help develop oil and gas resources. Due to the influence of geographical location and climate conditions, the humidity in the sub-alpine region is generally low, and the air is relatively dry, so the humidification equipment of the exploration supercomputing center in this region is also important. SUMMARY
[0004] In view of the water supply demand of the soft water system of the exploration supercomputing data center, in order to take into account the water for air conditioners and humidifiers and save the water treatment cost of the exploration supercomputing data center, the present application provides a fusion type soft water system for an exploration supercomputing center and an exploration supercomputing center system.
[0005] In the first aspect, the present application provides a fusion type soft water system for an exploration supercomputing center, which is used to provide soft water to the cooling system of the exploration supercomputing center, and can include a first water tank, a quartz sand filter, a resin filter tank, a second water tank, a salt tank, a third water tank and a conductivity detection and control device. The second water tank can include a first containing cavity and a second containing cavity, and the first containing cavity and the second containing cavity are connected through a pipeline provided with a first valve.
[0006] The first water tank is externally connected to a water supply pipeline through a water inlet, and the water outlet of the first water tank is respectively communicated with the water inlet of the quartz sand filter and the water inlet of the third water tank; the water outlet of the quartz sand filter is communicated with the water inlet of the resin filter tank, and the water outlet of the resin filter tank is communicated with the first containing cavity of the second water tank; the first containing cavity is communicated with the salt tank, and the second containing cavity of the second water tank is communicated with the third water tank; the third water tank is used for externally connecting air conditioning equipment and humidifier equipment of a cooling system; the conductivity detection and control equipment is respectively communicated with the first water tank and the first containing cavity of the second water tank, and the water quality conductivity of the first water tank and the first containing cavity is respectively detected in real time, so that the water quality conductivity of the first containing cavity is adjusted by adding salt through the salt tank and adding water through the resin filter tank.
[0007] In one embodiment, the system can further include a valve controller and a plurality of valves electrically connected to the valve controller, and the valve controller is used to control the opening and closing of the plurality of valves.
[0008] The plurality of valves can include a second valve located between the water inlet of the first water tank and the externally connected water supply pipeline, a third valve located between the water outlet of the first water tank and the water inlet of the quartz sand filter, a fourth valve located between the water outlet of the first water tank and the water inlet of the third water tank, a fifth valve located between the water outlet of the quartz sand filter and the water inlet of the resin filter tank, a sixth valve located between the water outlet of the resin filter tank and the first containing cavity, a seventh valve located between the second containing cavity and the third water tank, and an eighth valve located between the first containing cavity and the salt tank.
[0009] In another embodiment, the system can further include a pressure sensor located in the third water tank, and the pressure sensor is electrically connected to the valve controller.
[0010] The pressure sensor is used to measure the water pressure in the third water tank and send a water pressure signal to the valve controller, and the valve controller controls the opening and closing of the valve according to the water pressure signal.
[0011] In another embodiment, the system can further include a first constant pressure self-suction centrifugal water pump and a power supply electrically connected to the first constant pressure self-suction centrifugal water pump, one end of the first constant pressure self-suction centrifugal pump is communicated with the third water tank, and the other end is externally connected to the air conditioning equipment of the cooling system.
[0012] In another embodiment, the system can further include a second constant pressure self-suction centrifugal water pump electrically connected to the power supply, one end of the second constant pressure self-suction centrifugal water pump is communicated with the first containing cavity, and the other end is externally connected to the humidifier equipment of the cooling system.
[0013] In another embodiment, the resin filter tank is provided with a display control screen, and the power supply is electrically connected to the resin filter tank to supply power to the resin filter tank.
[0014] In another embodiment, the quartz sand filter is provided with a first drain outlet; the first drain outlet is used for emergency drainage or backwashing of the quartz sand filter.
[0015] In another embodiment, the resin filter tank is provided with a second drain outlet; the second drain outlet is used for emergency drainage or backwashing of the resin filter tank to regenerate the sodium chloride in the resin layer of the resin filter tank.
[0016] In another embodiment, the system may further include: a backwashing device and a regenerant tank; the regenerant tank contains a sodium chloride solution; the backwashing device is connected to the second drain outlet and the regenerant tank respectively, so as to backwash the resin filter tank with the sodium chloride solution in the backwashing device and the regenerant tank to regenerate the sodium chloride in the resin layer of the resin filter tank.
[0017] In a second aspect, embodiments of the present invention provide an exploration supercomputing center system, which may include: a computer server cluster, a cooling system, and a converged softened water system for the exploration supercomputing data center as described in the first aspect; wherein the converged softened water system for the exploration supercomputing data center is connected to the cooling system to supply softened water to the cooling system, and the cooling system is used to cool the computer server cluster.
[0018] The beneficial effects of the above-mentioned technical solutions provided in the embodiments of the present invention include at least the following:
[0019] This invention provides a converged water softening system and a converged supercomputing data center system for exploration. This converged water softening system accommodates both air conditioning and humidifier equipment, allowing a single system to simultaneously address the practical needs of two distinctly different devices. This reduces the cost of water treatment solutions for the exploration supercomputing data center, requires fewer data center pipelines during construction, effectively saving on construction and water costs, aligning with the overall principle of green and energy-efficient data center construction. Furthermore, the reduced investment cost also lowers maintenance costs, significantly simplifying data center layout.
[0020] Furthermore, the integrated softened water system in this embodiment of the invention ensures the normal operation of the air conditioning system, reduces the risk of overheating of servers and storage devices in the data center, and improves the reliability and stability of the equipment. The normal operation of supercomputing data center equipment ensures efficient data processing and analysis capabilities, accelerates the interpretation and evaluation of exploration data, and improves exploration efficiency and accuracy. Normal equipment operation reduces the need for maintenance and recovery, minimizes downtime and maintenance costs, and improves the operational efficiency and cost control capabilities of the data center.
[0021] Furthermore, the softened water provided by the integrated softened water system in this embodiment of the invention can reduce scale formation, keep the heat exchange surfaces of the cooling equipment clean, improve cooling efficiency, and reduce energy consumption.
[0022] Other features and advantages of the invention will be set forth in the following description, 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 the written description and the accompanying drawings.
[0023] 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
[0024] 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:
[0025] Figure 1 This is one of the structural diagrams of the integrated softened water system for the exploration supercomputing data center provided in this embodiment of the invention;
[0026] Figure 2 This is the second structural diagram of the integrated softened water system for the exploration supercomputing data center provided in this embodiment of the invention;
[0027] Figure 3 This is a schematic diagram of the structure of the exploration supercomputing center system provided in an embodiment of the present invention;
[0028] Among them, 1-Integrated softened water system for exploration supercomputing data center; 2-Cooling system; 3-Computer server cluster; 4-Water supply pipeline;
[0029] 11-First water tank; 12-Quartz sand filter; 13-Resin filter tank; 14-Second water tank; 15-Brine tank; 16-Third water tank; 17-Conductivity detection and control equipment; 18-Valve controller; 19-Valve; 20-Pressure sensor; 21-First constant pressure self-priming centrifugal water pump; 22-Power supply; 23-Second constant pressure self-priming centrifugal water pump; 24-Backwashing device; 25-Regenerant tank;
[0030] 121-First drain outlet; 131-Display control panel; 132-Second drain outlet; 141-First receiving cavity; 142-Second receiving cavity; 191-First valve; 192-Second valve; 193-Third valve; 194-Fourth valve; 195-Fifth valve; 196-Sixth valve; 197-Seventh valve; 198-Eighth valve; 199-Ninth valve; 190-Tenth valve. Detailed Implementation
[0031] Exemplary embodiments of the present disclosure will now be described in more detail with reference to the accompanying drawings. While exemplary embodiments of the present disclosure are shown in the drawings, it should be understood that the present disclosure may be implemented in various forms and should not be limited to the embodiments set forth herein. Rather, these embodiments are provided so that this disclosure will be thorough and complete, and will fully convey the scope of the disclosure to those skilled in the art.
[0032] In the description of this invention, it should be noted that the terms "center," "upper," "lower," "left," "right," "vertical," "horizontal," "inner," "outer," "far," "near," "front," and "rear," etc., indicating the orientation or positional relationship, are based on the orientation or positional relationship shown in the accompanying drawings and are only for the convenience of describing this invention 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 invention. Furthermore, the terms "first," "second," and "third" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.
[0033] In the description of this invention, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "linking" 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 of two components. Those skilled in the art can understand the specific meaning of the above terms in this invention based on the specific circumstances.
[0034] The inventors discovered that in the actual operation of exploration supercomputing data centers in sub-plateau regions, the humidification capacity of the precision air conditioning system alone is insufficient to meet the humidity requirements. Humidifiers (mostly wet-film humidifiers) are also needed to achieve the required humidity because calcium and magnesium ions form scale in the cooling system. Therefore, softened water is required when both air conditioning and humidifiers operate simultaneously to reduce water hardness and remove calcium (Ca) and magnesium (Mg) ions. However, their requirements for softened water differ. Air conditioning requires certain metal ions, such as sodium ions, to improve its conductivity and ensure the conductivity of the humidifier tank electrodes; while humidifiers require higher purity water. Therefore, due to these different requirements, most exploration supercomputing data centers use two separate water treatment systems, one for air conditioning and one for humidifiers. This approach leads to redundancy and resource waste during construction and increases subsequent maintenance costs. Therefore, how to use the same softened water system in an exploration supercomputing data center in a sub-plateau region to meet the different requirements of air conditioners and humidifiers for softened water, and thus solve these two different needs, is a technical problem that urgently needs to be studied and solved by those skilled in the art. In view of the above problems, this invention is proposed to provide a converged softened water system and exploration supercomputing center system for exploration supercomputing data centers that overcomes or at least partially solves the above problems.
[0035] This invention provides a converged softened water system for an exploration supercomputing data center. This system supplies softened water to the cooling system of the exploration supercomputing center. (Refer to...) Figure 1 and Figure 2As shown, the aforementioned integrated softened water system 1 for the exploration supercomputing data center may include: a first water tank 11, a quartz sand filter 12, a resin filter tank 13, a second water tank 14, a brine tank 15, a third water tank 16, and a conductivity detection and control device 17; the second water tank 14 may include a first receiving cavity 141 and a second receiving cavity 142; the first receiving cavity 141 and the second receiving cavity 142 are connected by a pipeline equipped with a first valve 191; wherein, the inlet of the first water tank 11 is connected to a tap water pipeline 4, and the outlet of the first water tank 11 is connected to the inlet of the quartz sand filter 12 and the inlet of the third water tank 16 respectively; the quartz sand filter 12... The outlet is connected to the inlet of the resin filter tank 13, and the outlet of the resin filter tank 13 is connected to the first receiving cavity 141 of the second water tank 14; the first receiving cavity 141 is connected to the salt tank 15, and the second receiving cavity 142 of the second water tank 14 is connected to the third water tank 16; the third water tank 16 is used to connect the air conditioning equipment and humidifier equipment of the external cooling system 2; the conductivity detection and control device 17 is connected to the first receiving cavity 141 of the first water tank 11 and the second water tank 14 respectively, and detects the water conductivity of the first water tank 11 and the first receiving cavity 141 respectively, so as to adjust the water conductivity of the first receiving cavity 141 by adding salt to the salt tank 15 and adding water to the resin filter tank 13.
[0036] The working process of the above-mentioned integrated softened water system for the exploration supercomputing data center in this embodiment of the invention is as follows: After the tap water in the external tap water pipe 4 enters the first water tank 11, the conductivity detection and control device 17 detects the conductivity of the tap water. If the water quality meets the standard, it directly enters the third water tank 16 (qualified water tank) for storage, to be used by the cooling system 2. If the water quality does not meet the standard, the tap water enters the quartz sand filter 12 from the first water tank 11 for the first filtration to remove suspended solids from the tap water. Then the tap water enters the resin filter 13 from the quartz sand filter 12 for the second filtration. The water quality is completely softened in the resin filter 13, resulting in softened water containing little or no soluble calcium and magnesium compounds. Through two filtrations, the water hardness is reduced from 4 mmol / L to 0.03 mmol / L, and the conductivity is increased from about 520 μs / cm to about 650 μs / cm.
[0037] Softened water filtered in resin filter tank 13 enters the first receiving chamber 141 of the second water tank 14. The conductivity of the softened water in the first receiving chamber 141 is detected by conductivity detection and control device 17. If the conductivity simultaneously meets the requirements of the air conditioning and humidifier equipment in the cooling system, the softened water enters the second receiving chamber 142 of the second water tank 14, and finally enters the third water tank 16 for later use. If the conductivity detection and control device 17 fails to meet the preset requirements for the softened water in the first receiving chamber 141, the softened water is mixed with salt in salt tank 15 to adjust the conductivity of the softened water.
[0038] The specifications of the quartz sand filter in this embodiment of the invention are as follows: design pressure: 0.6 MPa; test pressure: 0.75 MPa; operating temperature: 5~50℃; operating flow rate: 10~12 m / h; backwash intensity: 16~18 L / m2.s; backwash time: 5~10 min; turbidity: influent 10-20 mg / L; effluent 2-5 mg / L; influent <10 mg / L; effluent <2 mg / L; water production: 1 cubic meter / hour; volume: Φ250×1400 mm. Other indicators of the softened water system in this embodiment of the invention are as follows: water consumption: <1-5%; power consumption: 10-40W / H; salt consumption: 0.2Kg / mol; power supply: 220V / 50HZ; inlet water pressure: 0.1-0.35MPa; residual hardness of effluent: 0.03mmol / L; conductivity becomes 650μs / cm; water production: 1 cubic meter / hour; volume: resin tank Φ250×1400mm; salt tank: Φ600×100mm.
[0039] The conductivity detection and control device described in this embodiment of the invention includes a conductivity detection sensor and a PID controller. The PID controller incorporates a genetic algorithm to dynamically control the conductivity balance of softened water, thereby adjusting the conductivity of the softened water in the first receiving cavity to meet the water demand of the air conditioning and humidifier equipment in the cooling system.
[0040] It should be noted that the conductivity test and salt addition via the salt tank in this embodiment can both be automatically threshold controlled to achieve automated water treatment. The integrated softened water system for the exploration supercomputing data center provided in this embodiment of the invention caters to both air conditioning and humidifier equipment. One system can simultaneously address the practical needs of two very different types of equipment, reducing the cost of water treatment solutions for the exploration supercomputing data center. It also requires fewer data center pipelines during construction, effectively saving construction and water costs, aligning with the overall principle of green and energy-saving data center construction. Furthermore, the reduced investment cost also lowers maintenance costs for personnel, which is significant for simplifying data center layout.
[0041] Furthermore, the integrated softened water system in this embodiment of the invention ensures the normal operation of the air conditioning system, reduces the risk of overheating of servers and storage devices in the data center, and improves the reliability and stability of the equipment. The normal operation of supercomputing data center equipment ensures efficient data processing and analysis capabilities, accelerates the interpretation and evaluation of exploration data, and improves exploration efficiency and accuracy. Normal equipment operation reduces the need for maintenance and recovery, minimizes downtime and maintenance costs, and improves the operational efficiency and cost control capabilities of the data center.
[0042] Furthermore, the softened water provided by the integrated softened water system in this embodiment of the invention can reduce scale formation, keep the heat exchange surfaces of the cooling equipment clean, improve cooling efficiency, and reduce energy consumption.
[0043] In an optional embodiment, refer to Figure 1 and Figure 2 As shown, the above-mentioned integrated softened water system 1 for the exploration supercomputing data center may further include: a valve controller 18 and a plurality of valves 19 electrically connected to the valve controller 18. The valve controller 18 is used to control the opening and closing of the plurality of valves 19. The plurality of valves 19 may include: a second valve 192 located between the inlet of the first water tank 11 and the external tap water pipeline 4; a third valve 193 located between the outlet of the first water tank 11 and the inlet of the quartz sand filter 12; a fourth valve 194 located between the outlet of the first water tank 11 and the inlet of the third water tank 16; a fifth valve 195 located between the outlet of the quartz sand filter 12 and the inlet of the resin filter tank 13; a sixth valve 196 located between the outlet of the resin filter tank 13 and the first receiving cavity 141; a seventh valve 197 located between the second receiving cavity 142 and the third water tank 16; and an eighth valve 198 located between the first receiving cavity 141 and the salt tank 15.
[0044] In this embodiment of the invention, automatic water flow control can be achieved through a valve controller and several valves, providing a foundation for the automatic operation of the entire system.
[0045] In another alternative embodiment, refer to Figure 1 and Figure 2As shown, the aforementioned integrated softened water system 1 for the exploration supercomputing data center may further include: a pressure sensor 20 located in the third water tank 16, electrically connected to a valve controller 18; the pressure sensor 20 measures the water pressure in the third water tank 16 and sends the water pressure signal to the valve controller 18; the valve controller 18 controls the opening and closing of the valve according to the water pressure signal. This embodiment of the invention uses a pressure sensor to perform water pressure testing, thereby achieving water pressure control. A water pressure threshold is used to control the opening and closing of the valve to control the water flow rate. For example, in this embodiment, by detecting the water pressure in the third water tank, automatic feedback ensures that the third water tank maintains a certain water volume. When the water pressure is lower than the normal value, a feedback signal is sent to the water supply valve controller to initiate a water inlet operation; when the water pressure reaches the required level, a feedback signal is sent to the water supply valve controller to initiate a shut-off operation. Overall, this achieves water supply stability while ensuring the entire filtration system operates on demand, avoiding unnecessary operations, thus achieving effective energy saving and emission reduction, and reducing the wear and tear on related modules.
[0046] In another alternative embodiment, refer to Figure 1 and Figure 2 As shown, the above-mentioned exploration supercomputing data center integrated softened water system 1 may also include: a first constant pressure self-priming centrifugal water pump 21 and a power supply 22 electrically connected to the first constant pressure self-priming centrifugal water pump 21. One end of the first constant pressure self-priming centrifugal pump is connected to the third water tank 16, and the other end is externally connected to the air conditioning equipment and / or humidifier equipment of the cooling system 2.
[0047] It should be noted that a ninth valve 199 is installed on the pipeline between the first constant-pressure self-priming centrifugal pump 21 and the third water tank 16 to open and close the pipeline. The specifications of the constant-pressure self-priming centrifugal water pump in this embodiment of the invention are as follows: power supply: 220-240V / 50Hz; input power: 750W; maximum head: 45m; maximum flow rate: 7.2m³ / h; maximum suction lift: 8m; maximum particle diameter: 1mm; outlet / inlet: 25 / 25mm; power cord: H07RN-F1.5m; Impeller: 4; pressure tank: 24L; opening pressure: 1.8bar; closing pressure: 3.2bar.
[0048] In this embodiment of the invention, a first constant-pressure self-priming centrifugal water pump is installed to add a constant-pressure water supply link, thereby pressurizing the water supply to relevant parts of the machine room for use by air conditioners and humidifiers. The constant-pressure water supply adopts pneumatic constant-pressure water supply and operates automatically.
[0049] In another alternative embodiment, refer to Figure 1 and Figure 2As shown, the above-mentioned exploration supercomputing data center integrated softened water system 1 may also include: a second constant pressure self-priming centrifugal water pump 23 electrically connected to the power supply 22, one end of the second constant pressure self-priming centrifugal water pump 23 being connected to the first receiving cavity 141, and the other end being externally connected to the humidifier equipment of the cooling system 2.
[0050] It should be noted that a tenth valve 190 is installed on the pipeline between the second constant-pressure self-priming centrifugal pump 23 and the first receiving chamber 141 to open and close the pipeline. The difference between this embodiment and the previous embodiment is that if the softened water in the first receiving chamber 141, after salting treatment, cannot simultaneously meet the softened water requirements of both the air conditioning equipment and the humidifier equipment, then the softened water in the first receiving chamber is directly supplied to the humidifier equipment; while the softened water after salting treatment is supplied to the air conditioning equipment via the first constant-pressure self-priming centrifugal pump. One system can thus solve the water quality requirements of different devices.
[0051] In another alternative embodiment, refer to Figure 1 and Figure 2 As shown, a display control panel 131 is provided on the resin filter tank 13, and a power supply 22 is electrically connected to the resin filter tank 13 to supply power to the resin filter tank 13. In this embodiment, the display control panel on the resin filter tank facilitates data reading and adjustment of the operating parameters of the resin filter tank.
[0052] In another alternative embodiment, refer to Figure 1 and Figure 2 As shown, the quartz sand filter 12 has a first drain port 121; the first drain port 121 is used for emergency drainage or backwashing of the quartz sand filter 12. In this embodiment, the quartz sand filter can achieve backwashing through the first drain port, thus enabling the quartz sand filter to be reused, saving costs and improving efficiency.
[0053] In another alternative embodiment, refer to Figure 1 and Figure 2 As shown, the resin filter tank 13 is provided with a second drain port 132; the second drain port 132 is used for emergency drainage or backwashing of the resin filter tank 13 to regenerate the sodium chloride in the resin layer of the resin filter tank 13. In this embodiment, the resin filter tank achieves the backwashing function through the second drain port. The working process of the resin filter tank is as follows: after the calcium and magnesium ions carried in the tap water exchange with the resin ions in the resin layer, the calcium and magnesium ions are adsorbed to soften the tap water; during the backwashing process, a sodium chloride solution is used for backwashing, and the sodium ions exchange with the resin ions, so that the resin layer recovers and the sodium chloride in the resin layer is regenerated.
[0054] In another alternative embodiment, refer to Figure 1 and Figure 2As shown, the aforementioned integrated softened water system 1 for the exploration supercomputing data center may further include: a backwashing device 24 and a regenerator tank 25; the regenerator tank 25 contains a sodium chloride solution; the backwashing device 24 is connected to the second drain outlet 132 and the regenerator tank 25 respectively, so as to backwash the resin filter tank 13 with the sodium chloride solution in the backwashing device 24 and the regenerator tank 25 to regenerate the sodium chloride in the resin layer of the resin filter tank 13. In this embodiment, the backwashing device may be a water pump, and the backwashing function is realized through the backwashing device and the regenerator tank to realize the regeneration of sodium chloride in the resin layer.
[0055] The integrated softened water system for the exploration supercomputing data center described in this embodiment of the invention, through integrated softened water technology, simultaneously addresses the different needs of air conditioning and humidification in one system. This reduces resource waste, energy consumption, and costs, improves the performance and reliability of the data center, and promotes the synergistic progress of digital development and environmental sustainability. The application of integrated softened water in data centers in sub-plateau regions is of great significance, primarily due to the system's significant cost-saving and energy-efficient performance.
[0056] Based on the same inventive concept, this invention also provides an exploration supercomputing center system, referring to... Figure 3 As shown, the system may include: a computer server cluster 3, a cooling system 2, and the aforementioned integrated softened water system 1 for the exploration supercomputing data center; wherein, the integrated softened water system 1 for the exploration supercomputing data center is connected to the cooling system 2 to supply softened water to the cooling system 2, and the cooling system 2 is used to cool the computer server cluster 3.
[0057] The specific implementation and beneficial effects of the exploration supercomputing center system provided in this embodiment can be referred to the relevant description of the integrated softened water system of the exploration supercomputing data center. The embodiments of the present invention will not be repeated here.
[0058] Obviously, those skilled in the art can make various modifications and variations to this invention without departing from its spirit and scope. This disclosure is not limited to the precise structures described above and shown in the accompanying drawings, and various modifications and changes can be made without departing from its scope. The scope of this disclosure is limited only by the appended claims. Thus, if these modifications and variations of the invention fall within the scope of the claims of the invention and their equivalents, the invention is also intended to include these modifications and variations.
Claims
1. An exploration supercomputer data center integrated softening water system, characterized in that, The softening water system is used for providing softening water to a cooling system of a supercomputer center, and the softening water system comprises a first water tank, a quartz sand filter, a resin filter tank, a second water tank, a salt tank, a third water tank and a conductivity detection and control device; the second water tank comprises a first containing cavity and a second containing cavity; the first containing cavity and the second containing cavity are communicated through a pipeline provided with a first valve; The water inlet of the first water tank is connected with a tap water pipeline, the water outlet of the first water tank is communicated with the water inlet of the quartz sand filter and the water inlet of the third water tank, the water outlet of the quartz sand filter is communicated with the water inlet of the resin filter tank, the water outlet of the resin filter tank is communicated with the first containing cavity of the second water tank, the first containing cavity is communicated with the salt tank, the second containing cavity of the second water tank is communicated with the third water tank, the third water tank is used for connecting with air conditioning equipment and a humidifier of the cooling system, the conductivity detection and control device is communicated with the first water tank and the first containing cavity of the second water tank respectively, and the conductivity of water in the first water tank and the first containing cavity is detected in real time, so that the conductivity of water in the first containing cavity is adjusted by adding salt through the salt tank and adding water through the resin filter tank.
2. The system of claim 1, wherein, The system further comprises a valve controller and a plurality of valves electrically connected with the valve controller, and the valve controller is used for controlling the opening and closing of the plurality of valves. The plurality of valves comprises a second valve between the water inlet of the first water tank and the tap water pipeline, a third valve between the water outlet of the first water tank and the water inlet of the quartz sand filter, a fourth valve between the water outlet of the first water tank and the water inlet of the third water tank, a fifth valve between the water outlet of the quartz sand filter and the water inlet of the resin filter tank, a sixth valve between the water outlet of the resin filter tank and the first containing cavity, a seventh valve between the second containing cavity and the third water tank, and an eighth valve between the first containing cavity and the salt tank.
3. The system of claim 2, wherein, The system further comprises a pressure sensor in the third water tank, and the pressure sensor is electrically connected with the valve controller. The pressure sensor is used for measuring the water pressure in the third water tank and sending a water pressure signal to the valve controller, and the valve controller controls the opening and closing of the valves according to the water pressure signal.
4. The system of claim 1, wherein, The system further comprises a first constant-pressure self-priming centrifugal water pump and a power supply electrically connected with the first constant-pressure self-priming centrifugal water pump, one end of the first constant-pressure self-priming centrifugal water pump is communicated with the third water tank, and the other end is connected with the air conditioning equipment of the cooling system.
5. The system of claim 4, wherein, The system further comprises a second constant-pressure self-priming centrifugal water pump electrically connected with the power supply, one end of the second constant-pressure self-priming centrifugal water pump is communicated with the first containing cavity, and the other end is connected with the humidifier of the cooling system.
6. The system of claim 4, wherein, A display control screen is arranged on the resin filter tank, and the power supply is electrically connected with the resin filter tank to supply power for the resin filter tank.
7. The system of any one of claims 1-6, wherein, The quartz sand filter is provided with a first water outlet; the first water outlet is used for emergency water drainage or backwashing of the quartz sand filter.
8. The system of any one of claims 1-5, wherein, The resin filter tank is provided with a second water outlet; the second water outlet is used for emergency water drainage or backwashing of the resin filter tank to regenerate sodium chloride in the resin layer of the resin filter tank.
9. The system of claim 8, wherein, Further comprising: a backwashing device and a regenerant tank; the regenerant tank contains sodium chloride solution; the backwashing device is in communication with the second water outlet and the regenerant tank respectively, so as to regenerate sodium chloride in the resin layer of the resin filter tank by backwashing the resin filter tank through the backwashing device and the sodium chloride solution in the regenerant tank.
10. A system for exploring supercomputing centers, the system comprising: Further comprising: a computer server cluster, a cooling system and the exploration supercomputing data center integrated softening water system as claimed in any one of claims 1-9; wherein the exploration supercomputing data center integrated softening water system is in communication with the cooling system to supply softening water to the cooling system, and the cooling system is used for cooling the computer server cluster.