Water circulation filtering equipment of chip cooling module

The wastewater generated during the chip cooling module production process is filtered in stages through primary and secondary filtration devices, and automated control is achieved using a PLC controller. This solves the problems of water quality uncertainty and large wastewater discharge, and enables wastewater reuse and cost reduction.

CN223615492UActive Publication Date: 2025-12-02HUIZHOU HUAHAO WATER TREATMENT EQUIPMENT CO LTD
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Patent Information

Application Number
CN202520200854.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-08
Publication Date
2025-12-02
Estimated Expiration
2035-02-08

AI Technical Summary

Technical Problem

During the production of chip cooling modules, a large amount of particulate matter and impurities accumulate after the pure water is recycled, leading to uncertainty in the water quality after cleaning, which may affect product quality. In addition, the wastewater discharge is large and the cost is high.

Method used

The system employs a primary and secondary filtration system for tiered filtration, combined with a PLC controller for automated control, ensuring that the water quality meets the requirements for reuse. The filtration process is monitored by a level sensor, a pressure sensor, and a water quality analyzer.

Benefits of technology

It enables the reuse of wastewater, reduces water costs, improves automation and production efficiency, and meets environmental protection requirements.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses water circulation filtering equipment of a chip cooling module. The water circulation filtering equipment comprises a cabinet, a first water tank, a water pump, a multi-stage filtering system, a second water tank, a PLC (Programmable Logic Controller), a first electromagnetic valve, a second electromagnetic valve and a third electromagnetic valve, the first water tank, the water pump, the multi-stage filtering system, the second water tank and the PLC are all arranged in the cabinet, and at least one surface of the PLC is exposed out of the cabinet; a water inlet of the water pump is connected with a water outlet of the first water tank; the multi-stage filtering system comprises a first-stage filtering device and a second-stage filtering device; a water inlet of the primary filtering device is connected with a water outlet of the water pump, a water outlet of the primary filtering device is connected with a water inlet of the secondary filtering device, and a water outlet of the secondary filtering device is connected with a water inlet of the second water tank; the first electromagnetic valve is arranged at a water inlet of the first water tank; the second electromagnetic valve is arranged at a water outlet of the first water tank; the third electromagnetic valve is arranged at a water outlet of the second water tank; the PLC is electrically connected with the first electromagnetic valve, the second electromagnetic valve, the third electromagnetic valve and the water pump.
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Description

Technical Field

[0001] This utility model relates to the field of wastewater treatment technology, specifically to a water circulation filtration device for a chip cooling module. Background Technology

[0002] In the current chip cooling module manufacturing industry, given the inherent nature of the soldering step in the production process, large and fine solder slag particles inevitably enter the product. To effectively remove these particles, pure water is typically used as the cleaning medium. However, during the recycling of pure water, a large amount of particulate matter and impurities generated during the cleaning process accumulates. To prevent these accumulated impurities from adversely affecting the quality of the chip cooling module and to ensure high-quality chip standards, the water used for cleaning, which contains a high concentration of impurities, must be treated before discharge.

[0003] In the current chip cooling module cleaning process, pure water is used to directly clean the chip cooling modules. However, the quality of the pure water after cleaning is difficult to assess accurately. Given that the uncertainty of water quality may pose a potential threat to the quality of the chip cooling modules, to ensure the stability and reliability of product quality, factories usually choose to dispose of this cleaning pure water in a unified manner.

[0004] However, as the production scale of chip cooling module factories continues to expand, the amount of waste pure water discharged also increases significantly. At the same time, the cost of water for cleaning chip cooling module products is also increasing. Utility Model Content

[0005] To address the shortcomings of existing technologies, a water circulation filtration device for chip cooling modules is provided.

[0006] To achieve the above objectives, this utility model provides a water circulation filtration device for a chip cooling module, including a cabinet, a first water tank, a water pump, a multi-stage filtration system, a second water tank, a PLC controller, a first solenoid valve, a second solenoid valve, and a third solenoid valve. The first water tank, water pump, multi-stage filtration system, second water tank, and PLC controller are all housed within the cabinet, with at least one side of the PLC controller exposed. The water pump inlet is connected to the outlet of the first water tank. The multi-stage filtration system includes a primary filtration device and a secondary filtration device. The primary filtration device inlet is connected to the water pump outlet, the primary filtration device outlet is connected to the secondary filtration device inlet, and the secondary filtration device outlet is connected to the second water tank inlet. The first solenoid valve is located at the inlet of the first water tank. The second solenoid valve is located at the outlet of the first water tank. The third solenoid valve is located at the outlet of the second water tank. The PLC controller is electrically connected to the first solenoid valve, the second solenoid valve, the third solenoid valve, and the water pump.

[0007] According to one embodiment of the present invention, the primary filtration device includes a first filter barrel, and the secondary filtration device includes two second filter barrels; the inlet of the first filter barrel is connected to the outlet of the water pump, the outlet of the first filter barrel is connected to the inlet of one of the second filter barrels, the outlet of one of the second filter barrels is connected to the inlet of the other second filter barrel, and the outlet of the other second filter barrel is connected to the inlet of the second water tank.

[0008] According to one embodiment of the present invention, the first filter barrel has a filtration diameter of 20 μm; the second filter barrel has a filtration diameter of 1 μm.

[0009] According to one embodiment of the present invention, it further includes two liquid level sensors, one of which is located in the first water tank and the other in the second water tank; and each liquid level sensor is electrically connected to a PLC controller.

[0010] According to one embodiment of the present invention, it further includes multiple pressure sensors: a pressure sensor is provided between the first water tank and the first filter barrel; a pressure sensor is provided between the first filter barrel and the second filter barrel; a pressure sensor is provided between the two second filter barrels; a pressure sensor is provided between the secondary filter barrel and the second water tank, and each pressure sensor is electrically connected to the PLC controller.

[0011] According to one embodiment of the present invention, it also includes a water quality analyzer, which is located in the second water tank and is electrically connected to the PLC controller.

[0012] According to one embodiment of the present invention, it also includes multiple heat dissipation devices, which are spaced apart on the side wall of the cabinet, and each heat dissipation device is electrically connected to the PLC controller.

[0013] According to one embodiment of the present invention, the first filter bucket includes a bucket body, multiple filter elements, a limiting component, and a bucket lid; the limiting component includes a first limiting plate, a second limiting plate, and an adjusting member; an inlet is provided at the upper end of the bucket wall of the bucket body, and an outlet is provided at the lower end of the bucket wall of the bucket body; the first limiting plate is disposed inside the bucket body and is located above the outlet; the first limiting plate has multiple first mounting holes, and the second limiting plate has correspondingly multiple second mounting holes; one end of each filter element is inserted into a first mounting hole, and the other end of the filter element is inserted into a second mounting hole; one end of the adjusting member passes through the first limiting plate and the second limiting plate in sequence, and the adjusting member is movably connected to the first limiting plate and the second limiting plate; the bucket lid is disposed on the bucket body.

[0014] According to one embodiment of the present invention, the first filter barrel further includes multiple fixing components, each including an adjusting screw, a clamping member, and an adjusting nut; one end of the adjusting screw is hinged to the barrel body, the clamping member is sleeved on the adjusting screw, the clamping member has a snap-fit ​​interface that fits into the edge of the barrel cover, the adjusting nut is movably connected to the screw, and the lower surface of the adjusting nut abuts against the upper surface of the clamping member.

[0015] According to one embodiment of the present invention, a flow sensor is also included. The flow sensor is disposed between the second filter barrel and the second water tank, and the flow sensor is electrically connected to the PLC controller.

[0016] The beneficial effects of this invention are that by employing a primary and secondary filtration device to perform tiered filtration of wastewater, the wastewater meets the requirements for reuse, effectively saving energy, reducing water costs, and complying with environmental protection requirements. Furthermore, by using a PLC controller to automate the water circulation filtration equipment for the chip cooling module, automation and efficiency are effectively improved. Attached Figure Description

[0017] The accompanying drawings, which are included to provide a further understanding of this application and form part of this application, illustrate exemplary embodiments and are used to explain this application, but do not constitute an undue limitation of this application. In the drawings:

[0018] Figure 1 This is a schematic diagram of the water circulation filtration device for the chip cooling module in the embodiment.

[0019] Figure 2 This is a schematic diagram of the internal structure of the water circulation filtration device for the chip cooling module in the embodiment.

[0020] Figure 3 This is a schematic diagram of the first filter barrel in the embodiment;

[0021] Figure 4 This is a cross-sectional view of the first filter bucket in the embodiment;

[0022] Figure 5 This is an exploded view of the first filter barrel in the embodiment;

[0023] Figure 6 This is an enlarged view of part A in the embodiment.

[0024] Explanation of reference numerals in the attached figures

[0025] 1-Rack; 2-First water tank; 3-Water pump; 4-Multi-stage filtration system; 41-First stage filtration device; 411-First filter barrel; 4111-Barrel body; 4112-Filter element; 4113-Limiting component; 41131-First limiting plate; 411310-First mounting hole; 41132-Second limiting plate; 411320-Second mounting hole; 41133-Adjusting component; 4114-Barrel lid; 4115-Fixing component; 41151-Adjusting screw; 41152-Clamping component; 411520-Snap-on interface; 41153-Adjusting nut; 42-Second stage filtration device; 421-Second filter barrel; 5-Second water tank; 6-PLC controller; 7-Liquid level sensor; 8-Heating device. Detailed Implementation

[0026] The following drawings will disclose several embodiments of this utility model. For clarity, many practical details will be described in the following description. However, it should be understood that these practical details should not be used to limit this utility model. That is, in some embodiments of this utility model, these practical details are not essential. In addition, for the sake of simplicity, some conventional structures and components will be shown in the drawings in a simple schematic manner.

[0027] Furthermore, in this utility model, the use of terms such as "first" and "second" is for descriptive purposes only and does not specifically refer to any order or sequence, nor is it intended to limit the utility model. They are merely used to distinguish components or operations described with the same technical terminology and should not be construed as indicating or implying their relative importance or implicitly specifying the number of indicated technical features. Therefore, a feature defined with "first" or "second" may explicitly or implicitly include at least one of those features. Additionally, the technical solutions of various embodiments can be combined with each other, but only on the basis of being achievable by those skilled in the art. When the combination of technical solutions is contradictory or impossible to implement, such a combination of technical solutions should be considered non-existent and not within the scope of protection claimed by this utility model.

[0028] Please refer to Figure 1 and Figure 2 , Figure 1 This is a schematic diagram of a water circulation filtration system for a chip cooling module. Figure 2This is an internal schematic diagram of a water circulation filtration device for a chip cooling module. This embodiment provides a water circulation filtration device for a chip cooling module, comprising a cabinet 1, a first water tank 2, a water pump 3, a multi-stage filtration system 4, a second water tank 5, a PLC controller 6, and a first solenoid valve (not shown), a second solenoid valve (not shown), and a third solenoid valve (not shown). The first water tank 2, water pump 3, multi-stage filtration system 4, second water tank 5, and PLC controller 6 are all housed within the cabinet 1. The inlet of water pump 3 is connected to the first water tank 2, the outlet of water pump 3 is connected to the inlet of the multi-stage filtration system 4, and the outlet of the multi-stage filtration system 4 is connected to the inlet of the second water tank 5. The PLC controller 6 is electrically connected to water pump 3, the first solenoid valve, the second solenoid valve, and the third solenoid valve, with one side of the PLC controller 6 exposed outside the cabinet 1 for easy user operation.

[0029] The first water tank 2 is used to store sewage. The water pump 3 is used to pump the sewage in the first water tank 2 to the multi-stage filtration system 4. The multi-stage filtration system 4 receives the sewage and filters it stage by stage until the sewage meets the discharge requirements. The sewage filtered by the multi-stage filtration system 4 is then discharged into the second water tank 5.

[0030] The multi-stage filtration system 4 includes a primary filtration device 41 and a secondary filtration device 42. The inlet of the primary filtration device 41 is connected to the outlet of the water pump 3, the outlet of the primary filtration device 41 is connected to the inlet of the secondary filtration device 42, and the outlet of the secondary filtration device 42 is connected to the inlet of the second water tank 5. A first solenoid valve is located at the inlet of the first water tank 2, a second solenoid valve is located at the outlet of the first water tank 2, and a third solenoid valve is located at the outlet of the second water tank 5. The PLC controller 6 controls the opening and closing of the first solenoid valve, the second solenoid valve, the third solenoid valve, and the water pump 3.

[0031] It should be noted that the first water tank 2, water pump 3, primary filter 41, secondary filter 42, and second water tank 5 are all interconnected by pipes. In practical applications, the inlet of the first water tank 2 is connected to the chip cooling module cleaning machine via a pipe. The PLC controller 6 controls the first solenoid valve to open, allowing wastewater from the chip cooling module cleaning machine to be discharged from the inlet of the first water tank 2. When the water circulation filtration equipment for the chip cooling module is started, the PLC controller 6 controls the second solenoid valve and water pump 3 to open. At this time, water pump 3 draws water from the first water tank 2 and pumps it to the primary filter 41. The primary filter 41 performs initial filtration of the wastewater and discharges the filtered wastewater to the secondary filter 42. The secondary filter 42 performs a second filtration of the filtered wastewater, ensuring that the filtered wastewater meets usage requirements. The water after secondary filtration is discharged into the second water tank 5 for storage. The outlet of the secondary filtration device 42 is connected to the inlet of the chip cooling module cleaning machine via a pipe. When discharge is required, the PLC controller 6 controls the third solenoid valve to open, allowing the water in the second water tank 5 to be discharged back into the chip cooling module cleaning machine for reuse. Thus, by employing the primary filtration device 41 and the secondary filtration device 42 to perform tiered filtration of wastewater, the wastewater meets the requirements for reuse, effectively saving energy, reducing water costs, and complying with environmental protection requirements. Furthermore, the automated control of the water circulation filtration equipment for the chip cooling module by the PLC controller 6 effectively improves automation and efficiency.

[0032] Furthermore, the primary filtration device 41 includes a first filter barrel 411, and the secondary filtration device 42 includes two second filter barrels 421. When connected, the inlet of the first filter barrel 411 is connected to the outlet of the water pump 3 to receive wastewater from the first water tank 2. The outlet of the first filter barrel 411 is connected to the inlet of one of the second filter barrels 421, and the outlet of the second filter barrel 421 connected to the first filter barrel 411 is connected to the inlet of the other second filter barrel 421. The outlet of the other second filter barrel 421 is connected to the second water tank 5.

[0033] Furthermore, the first filter barrel 411 has a filtration diameter of 20 μm, and the second filter barrel 421 has a filtration diameter of 1 μm. Wastewater in the first water tank 2 passes through the first filter barrel 411, where larger particles are filtered out. Water discharged from the first filter barrel 411 passes through the second filter barrel 421, where finer particles are filtered out. Thus, through this multi-stage filtration by the first and second filter barrels 411, the filtered water meets the filtration requirement of 80 μm.

[0034] Please refer to Figure 2The water circulation filtration equipment for the chip cooling module also includes two level sensors 7, which are used to sense changes in the water level in the tanks. One level sensor 7 is located in the first water tank 2, and the other level sensor 7 is located in the second water tank 5. Each level sensor 7 is electrically connected to a PLC controller 6. When the level sensor 7 in the first water tank 2 senses a low water level, the PLC controller 6 controls the first solenoid valve to open, allowing the chip cooling module cleaning machine to inject wastewater into the first water tank 2. When the level sensor 7 in the first water tank 2 senses a high water level, the PLC controller 6 controls the first solenoid valve to close, stopping the chip cooling module cleaning machine from injecting wastewater into the first water tank 2.

[0035] When the level sensor 7 in the second water tank 5 detects a high water level, the PLC controller 6 controls the third solenoid valve to open, causing the second water tank 5 to discharge wastewater. Thus, by setting the level sensor 7 to monitor the water level changes in the first water tank 2 and the second water tank 5, and by controlling the opening and closing states of the first and third solenoid valves through the PLC controller 6, the effects of automatic water filling and automatic drainage are achieved.

[0036] The water circulation filtration equipment for the chip cooling module also includes multiple pressure sensors (not shown in the figure). These pressure sensors are respectively installed in the pipes between the first water tank 2 and the first filter barrel 411, between the first filter barrel 411 and the second filter barrel 421, between two adjacent second filter barrels 421, and between the second filter barrel 421 and the second water tank 5. Each pressure sensor is electrically connected to the PLC controller 6. The pressure sensors are used to test the water pressure in the pipes to determine whether there is water flow. The PLC controller 6 also determines whether the first filter barrel 411 and the second filter barrel 421 are blocked based on the water pressure difference in the pipes. When the water pressure difference is too large, the PLC controller 6 sends an alarm signal to remind the user to check whether the pipes, the first filter barrel 411, or the second filter barrel 421 are blocked.

[0037] The water circulation filtration equipment for the chip cooling module also includes a water quality analyzer (not shown in the figure). The water quality analyzer is installed in the second water tank 5 and is electrically connected to the PLC controller 6. The water quality analyzer is used to detect the water quality discharged into the second water tank 5. If the water quality analyzer detects that the water quality does not meet the requirements for recycling, the PLC controller 6 sends an alarm signal to prompt the user to discharge the wastewater and prevent it from re-entering the chip cooling module cleaning machine.

[0038] The water circulation filtration device for the chip cooling module also includes a flow sensor (not shown in the figure). The flow sensor is located between the second filter barrel 421 and the second water tank 5. The flow sensor is used to detect the water flow rate discharged from the second filter barrel 421.

[0039] Furthermore, the water circulation filtration equipment for the chip cooling module also includes multiple heat dissipation devices 8, which are spaced apart on the side wall of the cabinet 1. Each heat dissipation device 8 is electrically connected to a PLC controller 6, which controls the on / off state of the heat dissipation device 8. The heat dissipation devices 8 are used to exhaust hot air from inside the cabinet 1 to the outside, achieving a heat dissipation effect and preventing the temperature inside the cabinet 1 from becoming too high and affecting the normal operation of the water circulation filtration equipment for the chip cooling module. In this example, the heat dissipation device 8 is an exhaust fan.

[0040] Please refer to Figures 3-6 , Figure 3 This is a schematic diagram of the first filter barrel. Figure 4 This is a cross-sectional view of the first filter barrel. Figure 5 This is an exploded view of the first filter canister. Further, the first filter canister 411 includes a canister body 4111, multiple filter elements 4112, a limiting assembly 4113, and a canister lid 4114. An inlet 41111 is provided on the upper side wall of the canister body 4111, and an outlet 41112 is provided on the lower side of the canister body 4111. The limiting assembly 4113 includes a first limiting plate 41131, a second limiting plate 41132, and an adjusting member 41133. The first limiting plate 41131 is placed inside the canister body 4111 and is located above the outlet 41112. The first limiting plate 41131 has multiple first mounting holes 411310, and the second limiting plate 41132 has correspondingly multiple second mounting holes 411320. Each filter element 4112 has one end inserted into a first mounting hole 411310 and the other end passing through a second mounting hole 411320, so that the filter element 4112 is sandwiched between the first limiting plate 41131 and the second limiting plate 41132. One end of the adjusting member 41133 passes through the second limiting plate 41132 and the first limiting plate 41131 in sequence, and the adjusting member 41133 is movably connected to the first limiting plate 41131 and the second limiting plate 41132. The lid 4114 is placed on the barrel body 4111. In this example, there are ten filter elements 4112, and the filtration diameter of each filter element 4112 is 20μm. The adjusting component 41133 includes a screw and a nut. During connection, one end of the screw passes through the bottom of the first limiting plate 41131 and the second limiting plate 41132, and the nut is connected to the screw via a threaded connection. After the filter element 4112 is installed on the first limiting plate 41131 and the second limiting plate 41132, the nut is tightened to abut against the surface of the second limiting plate 41132. In this way, multiple filter elements 4112 are clamped between the first limiting plate 41131 and the second limiting plate 41132, so that the filter elements 4112 remain fixed relative to the barrel 4111.

[0041] In practical use, wastewater flows in from the inlet 41111 of the tank body 4111, passes through multiple filter elements 4112, and is filtered by these filter elements. The filtered wastewater is then discharged from the outlet 41112 of the tank body 4111.

[0042] Please refer to Figure 6 , Figure 6 This is an enlarged view of part A. The first filter barrel 411 also includes multiple fixing components 4115, each fixing component 4115 including an adjusting screw 41151, a clamping member 41152, and an adjusting nut 41153. One end of the adjusting screw 41151 is hinged to the barrel body 4111, allowing it to rotate relative to the barrel body 4111. The clamping member 41152 is fitted onto the adjusting screw 41151. The clamping member 41152 has a locking interface 411520, which corresponds to the edge of the barrel cover 4114. The adjusting nut 41153 is movably connected to the adjusting screw 41151. When connected, the locking interface 411520 of the clamping member 41152 engages with the barrel cover 4114, and the lower surface of the adjusting nut 41153 abuts against the upper surface of the clamping member 41152, thus pressing the clamping member 41152 tightly against the barrel cover 4114. In this example, there are a total of eight fasteners 4115. The eight fasteners 4115 are equally spaced along the outer edge of the barrel body 4111. The eight fasteners 4115 are used to securely connect the barrel lid 4114 to the barrel body 4111.

[0043] It should be noted that the structure of the second filter barrel 421 is the same as that of the first filter barrel 411. The difference is that the filtration diameter of each filter element 4112 in the second filter barrel 421 is 1μm, so that the minimum filtration diameter of the second filter barrel 421 is 1μm.

[0044] Furthermore, the filter element of the first filter barrel 421 and the filter element 4112 of the second filter barrel 421 are both titanium metal powder filter elements.

[0045] The above description is merely an embodiment of this utility model and is not intended to limit the scope of this utility model. Various modifications and variations can be made to this utility model by those skilled in the art. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principle of this utility model should be included within the scope of the claims of this utility model.

Claims

1. A water circulation filtration device for a chip cooling module, characterized in that, include: The system comprises a cabinet (1), a first water tank (2), a water pump (3), a multi-stage filtration system (4), a second water tank (5), a PLC controller (6), a first solenoid valve, a second solenoid valve, and a third solenoid valve; the first water tank (2), the water pump (3), the multi-stage filtration system (4), the second water tank (5), and the PLC controller (6) are all located inside the cabinet (1), and at least one side of the PLC controller (6) is exposed outside the cabinet (1); the inlet of the water pump (3) is connected to the outlet of the first water tank (2); the multi-stage filtration system (4) includes a primary filtration device (41) and a secondary filtration device (42); The inlet of the primary filter (41) is connected to the outlet of the water pump (3), the outlet of the primary filter (41) is connected to the inlet of the secondary filter (42), and the outlet of the secondary filter (42) is connected to the inlet of the second water tank (5); the first solenoid valve is located at the inlet of the first water tank (2); the second solenoid valve is located at the outlet of the first water tank (2); the third solenoid valve is located at the outlet of the second water tank (5); the PLC controller (6) is electrically connected to the first solenoid valve, the second solenoid valve, the third solenoid valve and the water pump (3) respectively.

2. The water circulation filtration device for the chip cooling module according to claim 1, characterized in that, The primary filtration device (41) includes a first filter barrel (411), and the secondary filtration device (42) includes two second filter barrels (421). The inlet of the first filter barrel (411) is connected to the outlet of the water pump (3), the outlet of the first filter barrel (411) is connected to the inlet of one of the second filter barrels (421), the outlet of one of the second filter barrels (421) is connected to the inlet of the other second filter barrel (421), and the outlet of the other second filter barrel (421) is connected to the inlet of the second water tank (5).

3. The water circulation filtration device for the chip cooling module according to claim 2, characterized in that, The first filter barrel (411) has a filtration diameter of 20 μm; the second filter barrel (421) has a filtration diameter of 1 μm.

4. The water circulation filtration device for the chip cooling module according to claim 1, characterized in that, It also includes two liquid level sensors (7), one of which is located in the first water tank (2); the other is located in the second water tank (5); and each of the liquid level sensors (7) is electrically connected to the PLC controller (6).

5. The water circulation filtration device for the chip cooling module according to claim 2, characterized in that, It also includes multiple pressure sensors, with one pressure sensor between the first water tank (2) and the first filter barrel (411); one pressure sensor between the first filter barrel (411) and the second filter barrel (421); one pressure sensor between the two second filter barrels (421); and one pressure sensor between the second filter barrel (421) and the second water tank (5), and each pressure sensor is electrically connected to the PLC controller (6).

6. The water circulation filtration device for the chip cooling module according to claim 1, characterized in that, It also includes a water quality tester, which is located in the second water tank (5) and is electrically connected to the PLC controller (6).

7. The water circulation filtration device for the chip cooling module according to claim 1, characterized in that, It also includes multiple heat dissipation devices (8), which are spaced apart on the side wall of the cabinet (1), and each heat dissipation device (8) is electrically connected to the PLC controller (6).

8. The water circulation filtration device for the chip cooling module according to claim 2, characterized in that, The first filter canister (411) includes a canister body (4111), multiple filter elements (4112), a limiting component (4113), and a canister lid (4114); the limiting component (4113) includes a first limiting plate (41131), a second limiting plate (41132), and an adjusting component (41133); the upper end of the canister body (4111) has a water inlet (41111), and the lower end of the canister body (4111) has a water outlet (41112); the first limiting plate (41131) is located inside the canister body (4111), and the first limiting plate (41131) is located above the water outlet (41112); the first limiting plate (41131) has an opening There are multiple first mounting holes (411310), and the second limiting plate (41132) has multiple corresponding second mounting holes (411320). One end of each filter element (4112) is inserted into a first mounting hole (411310), and the other end of the filter element (4112) is inserted into a second mounting hole (411320). One end of the adjusting member (41133) passes through the first limiting plate (41131) and the second limiting plate (41132) in sequence, and the adjusting member (41133) is movably connected to the first limiting plate (41131) and the second limiting plate (41132). The bucket lid (4114) is placed on the bucket body (4111).

9. The water circulation filtration device for the chip cooling module according to claim 8, characterized in that, The first filter barrel (411) also includes a plurality of fixing components (4115), the fixing components (4115) including an adjusting screw (41151), a clamping member (41152) and an adjusting nut (41153); one end of the screw (41151) is hinged to the barrel body (4111), the clamping member (41152) is sleeved on the adjusting screw (41151), the clamping member (41152) has a locking interface (411520), the locking interface (411520) is fitted with the edge of the barrel cover (4114), the adjusting nut (41153) is movably connected to the adjusting screw (41151), and the lower surface of the adjusting nut (41153) abuts against the upper surface of the clamping member (41152).

10. The water circulation filtration device for the chip cooling module according to claim 2, characterized in that, It also includes a flow sensor, which is located between the second filter barrel (421) and the second water tank (5), and the flow sensor is electrically connected to the PLC controller (6).