Anti-corrosion water-cooled main engine

CN224732366UActive Publication Date: 2026-09-08GUANGDONG RUIXUN PRECISION MASCH CO LTD
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Patent Information

Application Number
CN202521387950.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-07-03
Publication Date
2026-09-08
Estimated Expiration
2035-07-03

AI Technical Summary

Technical Problem

[0003]现有工业控制主机采用水冷主机进行降温主要是因为其能够提供更高效、稳定且安静的冷却效果,这对于保证工业设备在各种复杂和苛刻环境下的持续稳定运行至关重要,水冷主机在冷却过程中,当冷却液通过水冷管道流动时,由于水冷管道内冷却液的温度与环境空气的露点温度存在温度差,会导致水冷管道外表面上产生冷凝水,这些冷凝水在水冷主机内部积留,会对水冷主机内部金属器件造成腐蚀,以及现有水冷管道与液泵处未设计冷却液防泄漏监测结构,当发生漏液是不能及时检修处理,影响水冷主机正常使用

Benefits of technology

(1)通过收集水槽、倾斜导块、导流管和收集桶配合使用可以将水冷主机本体内部产生的冷凝水导出,防止冷凝水在水冷主机本体内部积留,对水冷主机本体内部金属器件起到防腐蚀的保护作用。

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides an anticorrosive water -cooling main machine relates to water -cooling main machine technical field, include: water -cooling main machine body, install in the liquid tank of water -cooling main machine body inside bottom end, the liquid tank top is equipped with liquid pump, and the liquid pump is equipped with the liquid pump between liquid tank and installs the liquid pump pipe, and the water -cooling pipe is installed to the liquid pump outer end, and install the case in water -cooling main machine body outer end one side, and the industrial control host computer is equipped in the case, and install the backflow pump in the case inside top, and the backflow pump outer end is equipped with the backflow pipe. This kind of anticorrosive water -cooling main machine can export the condensed water generated in the water -cooling main machine body inside through the flow guide component, prevents the condensed water to be accumulated in the water -cooling main machine body inside, plays the protection effect of anticorrosion to the metal device in the water -cooling main machine body, and can detect whether the pipeline exists the liquid leakage through the monitoring component, lets the staff know the pipeline liquid leakage condition, is convenient for the water -cooling main machine body timely maintenance and maintenance, ensures the normal use of water -cooling main machine body.
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Description

Technical Field

[0001] This utility model relates to the field of water-cooled host technology, specifically a corrosion-resistant water-cooled host. Background Technology

[0002] A water-cooled host refers to a computer or industrial equipment that uses water cooling technology as its primary cooling method. Unlike traditional air-cooling systems, water-cooling systems absorb and remove heat through a liquid (usually water or a mixture with added antifreeze and anti-corrosion additives) to cool the hardware. This cooling method is widely used in high-performance computing, data centers, and certain industrial applications due to its efficient heat conduction and low noise level.

[0003] The primary reason why existing industrial control units use water-cooled units for cooling is that they can provide more efficient, stable, and quiet cooling, which is crucial for ensuring the continuous and stable operation of industrial equipment in various complex and harsh environments. During the cooling process, when the coolant flows through the water-cooling pipes, the temperature difference between the coolant inside the pipes and the dew point temperature of the ambient air causes condensation to form on the outer surface of the pipes. This condensation accumulates inside the water-cooled unit, which can corrode the internal metal components. Furthermore, the existing water-cooling pipes and pumps lack a coolant leak detection structure, making it impossible to promptly repair and address leaks, thus affecting the normal operation of the water-cooled unit. Utility Model Content

[0004] The technical problem to be solved by this utility model is to provide a corrosion-resistant water-cooled host. The condensate generated inside the water-cooled host body can be discharged through the flow guiding component, preventing the condensate from accumulating inside the water-cooled host body and playing a role in corrosion protection for the metal components inside the water-cooled host body. The monitoring component can detect whether there is leakage in the pipeline, so that the staff can know the leakage situation and facilitate timely inspection and maintenance of the water-cooled host body to ensure the normal use of the water-cooled host body.

[0005] The technical problem to be solved by this utility model is achieved by the following technical solution: A corrosion-resistant water-cooled host includes: a water-cooled host body; a liquid storage tank installed at the bottom of the water-cooled host body; a liquid pump installed at the top of the liquid storage tank; a liquid extraction pipe installed between the liquid pump and the liquid storage tank; a water-cooled pipe installed at the outer end of the liquid pump; a chassis installed on one side of the outer end of the water-cooled host body; an industrial control host housed inside the chassis; a return pump installed at the top of the chassis; a return pipe installed at the outer end of the return pump; a circulation pipe installed on the other side of the outer end of the return pump; a flow guiding assembly disposed inside the water-cooled host body; the flow guiding assembly includes: a water collection tank, an inclined guide block, a flow guiding pipe, and a collection bucket; and monitoring components disposed on both sides of the bottom of the liquid pump and the return pump; the monitoring components include: a detection tank, a liquid level sensor, a control panel, and a warning light.

[0006] Preferably, a water collection tank is installed in the middle of the water-cooled host body, an inclined guide block is installed at the bottom of the water collection tank, a flow guide pipe is installed at the bottom of the water collection tank, one end of the flow guide pipe passes through the outside of the water-cooled host body, and a collection bucket is provided at the outer end of the water-cooled host body, the collection bucket being located at the bottom of the flow guide pipe.

[0007] Preferably, detection slots are installed on both sides of the bottom of the liquid pump and the reflux pump, and liquid level sensors are installed at the bottom of the detection slots. A control panel is installed on the outside of the water-cooled host body, and four warning lights are installed on the outside of the control panel.

[0008] Preferably, a support block is installed at the bottom of the outer end of the water-cooled host body, and a limit ring is installed on the top of the support block.

[0009] Preferably, heat dissipation fins a are installed on both sides and the top of the industrial control host, and a water-cooled box with a "U"-shaped structure is installed inside the chassis. The heat dissipation fins a are all tightly attached to the outer wall of the water-cooled box. A support plate for placing the industrial control host is installed at the bottom of the chassis, and multiple heat dissipation slots are opened on the top of the support plate.

[0010] Preferably, multiple exhaust fans are installed on the back of the water-cooled host body, and multiple blow fans are installed on the front of the water-cooled host body. Protective nets are installed on the outside of the multiple blow fans and the exhaust fans.

[0011] Preferably, heat dissipation fins b are installed on both sides of the outer end of the liquid storage tank, and multiple heat dissipation grooves are opened on both sides of the bottom of the water-cooled host body at positions relative to the heat dissipation fins b.

[0012] Compared with existing technologies, the beneficial effects of this utility model are: (1) By using a water collection tank, tilting guide block, guide pipe and collection bucket together, the condensate generated inside the water-cooled host can be discharged, preventing the condensate from accumulating inside the water-cooled host and playing a role in corrosion protection for the metal components inside the water-cooled host.

[0013] (2) By using the detection tank, liquid level sensor, control panel and warning light together, it is possible to detect whether there is leakage in the pipeline, so that the staff can know the situation of leakage in the pipeline, which facilitates timely inspection and maintenance of the water-cooled host body and ensures the normal use of the water-cooled host body. Attached Figure Description

[0014] Figure 1 This is a schematic diagram of the overall structure of this utility model.

[0015] Figure 2 This is a schematic cross-sectional view of the present invention.

[0016] Figure 3 This is a cross-sectional schematic diagram of the water-cooled host body of this utility model.

[0017] Figure 4 For the present utility model Figure 2 Enlarged diagram of point A in the middle.

[0018] Figure 5 This is a schematic diagram of the internal structure of the chassis of this utility model.

[0019] Figure 6 This is a schematic diagram of the blower fan structure of this utility model.

[0020] Figures 1-6 Components: 1. Water-cooled main unit; 101. Liquid storage tank; 102. Liquid pump; 103. Liquid extraction pipe; 104. Water-cooled piping; 2. Chassis; 201. Industrial control host; 3. Return pump; 301. Return pipe; 302. Circulation pipe; 4. Water collection tank; 401. Inclined guide block; 402. Guide pipe; 403. Collection bucket; 404. Support block; 405. Limiting ring; 5. Detection tank; 501. Liquid level sensor; 502. Control panel; 503. Warning light; 6. Heat dissipation fin a; 601. Water-cooled box; 7. Support plate; 701. Heat dissipation slot; 8. Exhaust fan; 801. Blowing fan; 802. Protective net; 9. Heat dissipation fin b; 901. Heat dissipation slot. Detailed Implementation

[0021] The technical solutions in the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of this application without creative effort are within the scope of protection of this application.

[0022] The present application will now be described in detail with reference to the accompanying drawings and specific embodiments.

[0023] Examples, such as Figures 1-6 As shown, a corrosion-resistant water-cooled host includes: a water-cooled host body 1, a liquid storage tank 101 installed at the bottom of the water-cooled host body 1, a liquid pump 102 installed on the top of the liquid storage tank 101, a liquid extraction pipe 103 installed between the liquid pump 102 and the liquid storage tank 101, a water-cooled pipe 104 installed at the outer end of the liquid pump 102, a chassis 2 installed on one side of the outer end of the water-cooled host body 1, an industrial control host 201 installed inside the chassis 2, and a water-cooled pipe 104 installed at the top of the chassis 2. A return pump 3 is provided, with a return pipe 301 installed at its outer end and a circulation pipe 302 installed on the other side of its outer end. A flow guiding component is provided inside the water-cooled host body 1. The flow guiding component includes: a water collection tank 4, an inclined guide block 401, a flow guiding pipe 402, and a collection bucket 403. Monitoring components are provided on both sides of the bottom of the liquid pump 102 and the return pump 3. The monitoring components include: a detection tank 5, a liquid level sensor 501, a control panel 502, and a warning light 503.

[0024] The industrial control host 201 has heat dissipation fins a6 installed on both sides and top of its outer end. The chassis 2 has a U-shaped water-cooled box 601 installed inside. The heat dissipation fins a6 are tightly attached to the outer wall of the water-cooled box 601. The bottom of the chassis 2 has a support plate 7 for placing the industrial control host 201. The top of the support plate 7 has multiple heat dissipation slots 701.

[0025] When the water-cooled box 601 is in use, the water-cooling pipe 104 passes through the water-cooled host body 1 and the chassis 2 and extends into the water-cooled box 601. During the operation of the industrial control host 201, the heat generated by the industrial control host 201 can be dissipated to the water-cooled box 601 through the heat dissipation fins a6. Since the heat dissipation fins a6 are tightly attached to the water-cooled box 601, the liquid pump 102 is started and the liquid extraction pipe 103 extracts the coolant stored in the liquid storage tank 101 and discharges it into the water-cooling pipe 104 through the liquid pump 102. The coolant is then transported to the water-cooled box 601 through the water-cooling pipe 104. The coolant exchanges the heat dissipated by the heat dissipation fins a6 with the coolant, thus cooling and protecting the industrial control host 201.

[0026] After the coolant exchanges heat inside the water-cooled tank 601, the coolant becomes hot. One end of the return pipe 301 extends through the inside of the water-cooled tank 601, and one end of the circulation pipe 302 extends through the main body of the water-cooled unit 1 and into the liquid storage tank 101. The middle part of the circulation pipe 302 is arranged in an "S" shape (e.g., Figure 2 As shown), after the coolant heats up, the reflux pump 3 is started. The reflux pipe 301 draws out the coolant from the water-cooled tank 601 and discharges it into the circulation pipe 302 via the reflux pump 3. From the circulation pipe 302, it is discharged back into the storage tank 101, thus recycling the coolant.

[0027] The water-cooled host body 1 has multiple exhaust fans 8 installed on the back and multiple blow fans 801 installed on the front. The blow fans 801 and exhaust fans 8 are all equipped with protective nets 802 on their outer sides.

[0028] The middle part of the circulation pipe 302 is arranged in an "S" shape and is located in the middle of the top of the water-cooled host body 1. There are gaps between the multiple exhaust fans 8 and the multiple blow fans 801 and the circulation pipe 302. During the process of circulating the coolant back into the water-cooled box 601, the blow fans 801 and the exhaust fans 8 are started. The blow fans 801 blow air to the circulation pipe 302 to dissipate heat, so that the coolant inside the circulation pipe 302 is cooled down. Then, the exhaust fans 8 exhaust the hot air inside the water-cooled host body 1, which accelerates the cooling speed of the coolant. After the coolant is cooled down, it is ensured that the coolant can be discharged back into the water-cooled box 601 for continued heat exchange.

[0029] The water-cooled host body 1 has a water collection tank 4 installed in the middle, an inclined guide block 401 installed at the bottom of the water collection tank 4, a guide pipe 402 installed at the bottom of the water collection tank 4, one end of the guide pipe 402 passing through the outside of the water-cooled host body 1, and a collection bucket 403 located at the bottom of the guide pipe 402 at the outer end of the water-cooled host body 1.

[0030] The water-cooled host body 1 has a support block 404 installed at the bottom of its outer end, and a limit ring 405 installed at the top of the support block 404. When the collection bucket 403 is in use, the collection bucket 403 is inserted into the limit ring 405 and the bottom of the collection bucket 403 is placed on the support block 404, thereby limiting the collection bucket 403 to be placed at the outer end of the water-cooled host body 1 to prevent the collection bucket 403 from tipping over and to avoid the collected condensate from spilling out.

[0031] The liquid pump 102 and the reflux pump 3 are equipped with detection slots 5 on both sides of the bottom. Liquid level sensors 501 are installed at the bottom of the detection slots 5. A control panel 502 is installed on the outside of the water-cooled host body 1. Four warning lights 503 are installed on the outside of the control panel 502.

[0032] During operation, the liquid pump 102 and the reflux pump 3 are equipped with detection slots 5 on both sides of their bottom. Detection slots 5 are also provided at the bottom of the connection points between the liquid pump 102 and the water-cooled pipe 104, and between the reflux pipe 301, the reflux pump 3, and the circulation pipe 302. When leakage occurs at the connection point between the pipe and the liquid pump 102 or the reflux pump 3, the liquid will fall into the detection slots 5 and be collected. The presence of coolant is detected by the liquid level sensor 501, and the detection information is transmitted to the control panel 502 via an electrical signal. After receiving and processing the information, the control panel 502 activates the warning light 503, allowing staff to see the warning light 503 and thus be aware of the pipe leakage. This facilitates timely inspection and maintenance of the water-cooled main unit 1, ensuring its normal operation.

[0033] The liquid storage tank 101 is equipped with heat dissipation fins b9 on both sides of its outer end. Multiple heat dissipation slots 901 are opened on both sides of the bottom of the water-cooled host body 1 at positions opposite to the heat dissipation fins b9. When the coolant flows back into the liquid storage tank 101 from the circulation pipe 302, it undergoes a first cooling process by the blower fan 801 and the exhaust fan 8 during its flow through the circulation pipe 302. Then, it works in conjunction with the heat dissipation fins b9 to enhance the cooling effect of the coolant. That is, the heat dissipation fins b9 conduct the heat in the liquid storage tank 101 to the heat dissipation slots 901 and discharge it to the outside of the water-cooled host body 1, where the heat is carried away by the airflow.

[0034] When the liquid pump 102, reflux pump 3, liquid level sensor 501, and warning light 503 are in use, they are electrically connected to the control panel 502. The control panel 502 is equipped with multiple control buttons for starting or stopping the liquid pump 102, reflux pump 3, liquid level sensor 501, and warning light 503. The power of the water-cooled host body 1 is provided by an external power source. The control program involved in this utility model can be implemented by those skilled in the art based on the same or similar principles in the prior art. This part is not the innovation of this utility model.

[0035] Working principle: When the water-cooled box 601 is in use, the water-cooling pipe 104 passes through the water-cooled host body 1 and the chassis 2 and extends into the water-cooled box 601. During the operation of the industrial control host 201, the heat generated by the industrial control host 201 can be dissipated to the water-cooled box 601 through the heat dissipation fins a6. Since the heat dissipation fins a6 are tightly attached to the water-cooled box 601, the liquid pump 102 is started and the liquid extraction pipe 103 extracts the coolant stored in the liquid storage tank 101 and discharges it into the water-cooling pipe 104 through the liquid pump 102. The coolant is then transported to the water-cooled box 601 through the water-cooling pipe 104. The coolant exchanges the heat dissipated by the heat dissipation fins a6 with the coolant, thus cooling and protecting the industrial control host 201.

[0036] The middle section of the circulation pipe 302 is arranged in an "S" shape and is located in the middle of the top of the water-cooled main unit 1. There are gaps between the multiple exhaust fans 8 and the multiple blower fans 801 and the circulation pipe 302. During the process of circulating the coolant back into the water-cooled tank 601, the blower fans 801 and exhaust fans 8 are activated. The blower fans 801 blow air onto the circulation pipe 302 to dissipate heat, thus cooling the coolant inside. Then, the exhaust fans 8 expel the hot air from inside the water-cooled main unit 1, accelerating the cooling of the coolant. After cooling, the coolant can be returned to the water-cooled tank 601 for continued heat exchange. During the cooling process of the coolant inside the circulation pipe 302, the blower fans 801 and exhaust fans 802 work together to ensure the coolant can be cooled back into the water-cooled tank 601 for further heat exchange. The temperature difference between the coolant temperature in the circulation pipe 302 and the dew point temperature of the ambient air causes condensation to form on the outer surface of the circulation pipe 302. The collection tank 4 is located at the bottom of the circulation pipe 302, and the condensation will fall into the collection tank 4 for temporary storage. The condensation is then guided to the guide pipe 402 by the inclined guide block 401, so that the condensation can flow quickly to the guide pipe 402 for discharge. The condensation discharged from the outside of the water-cooled host body 1 is collected by the collection bucket 403 to prevent the water-cooled host body 1 from getting wet. The condensation generated inside the water-cooled host body 1 is discharged to prevent the condensation from accumulating inside the water-cooled host body 1, and to protect the internal metal components of the water-cooled host body 1 from corrosion.

[0037] During operation, the liquid pump 102 and the reflux pump 3 are equipped with detection slots 5 on both sides of their bottom. Detection slots 5 are also provided at the bottom of the connection points between the liquid pump 102 and the water-cooled pipe 104, and between the reflux pipe 301, the reflux pump 3, and the circulation pipe 302. When leakage occurs at the connection point between the pipe and the liquid pump 102 or the reflux pump 3, the liquid will fall into the detection slots 5 and be collected. The presence of coolant is detected by the liquid level sensor 501, and the detection information is transmitted to the control panel 502 via an electrical signal. After receiving and processing the information, the control panel 502 activates the warning light 503, allowing staff to see the warning light 503 and thus be aware of the pipe leakage. This facilitates timely inspection and maintenance of the water-cooled main unit 1, ensuring its normal operation.

[0038] In the above embodiments, the descriptions of each embodiment have different focuses. For parts not described in detail in a certain embodiment, please refer to the relevant descriptions in other embodiments.

[0039] The above provides a detailed description of an anti-corrosion water-cooled host provided in the embodiments of this application. Specific examples have been used to illustrate the principles and implementation methods of this application. The description of the above embodiments is only for the purpose of helping to understand the technical solutions and core ideas of this application. Those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features. These modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of this application.

Claims

1. A corrosion-resistant water-cooled main unit, characterized in that, include: Water-cooled host body (1); A liquid storage tank (101) is installed at the bottom of the interior of the water-cooled host body (1). A liquid pump (102) is installed on the top of the liquid storage tank (101). A liquid pumping pipe (103) is installed between the liquid pump (102) and the liquid storage tank (101). A water-cooling pipe (104) is installed at the outer end of the liquid pump (102). A chassis (2) is installed on one side of the outer end of the water-cooled host body (1), and an industrial control host (201) is provided inside the chassis (2). A reflux pump (3) is installed at the top of the inside of the chassis (2). A reflux pipe (301) is installed at the outer end of the reflux pump (3). A circulation pipe (302) is installed on the other side of the outer end of the reflux pump (3). The flow guiding component is installed inside the water-cooled host body (1). The flow guiding component includes: a water collection tank (4), an inclined guide block (401), a flow guiding pipe (402), and a collection bucket (403). The monitoring components are located on both sides of the bottom of the liquid pump (102) and the return pump (3). The monitoring components include: a detection tank (5), a liquid level sensor (501), a control panel (502), and a warning light (503).

2. The corrosion-resistant water-cooled main unit according to claim 1, characterized in that, A water collection tank (4) is installed in the middle of the water-cooled host body (1). An inclined guide block (401) is installed at the bottom of the water collection tank (4). A guide pipe (402) is installed at the bottom of the water collection tank (4). One end of the guide pipe (402) passes through the outside of the water-cooled host body (1). A collection bucket (403) is provided at the outside of the water-cooled host body (1). The collection bucket (403) is located at the bottom of the guide pipe (402).

3. The corrosion-resistant water-cooled main unit according to claim 1, characterized in that, Both the liquid pump (102) and the reflux pump (3) are equipped with detection slots (5) on both sides of the bottom. Liquid level sensors (501) are installed at the bottom of the detection slots (5). A control panel (502) is installed on the outside of the water-cooled host body (1). Four warning lights (503) are installed on the outside of the control panel (502).

4. The corrosion-resistant water-cooled main unit according to claim 2, characterized in that, A support block (404) is installed at the bottom of the outer end of the water-cooled host body (1), and a limit ring (405) is installed on the top of the support block (404).

5. The corrosion-resistant water-cooled main unit according to claim 1, characterized in that, The industrial control host (201) is equipped with heat dissipation fins a (6) on both sides and top of the outer end. The chassis (2) is equipped with a water-cooled box (601) with a "U" shaped structure. The heat dissipation fins a (6) are all tightly attached to the outer wall of the water-cooled box (601). The bottom of the chassis (2) is equipped with a support plate (7) for placing the industrial control host (201). The top of the support plate (7) is provided with multiple heat dissipation slots (701).

6. The corrosion-resistant water-cooled main unit according to claim 1, characterized in that, Multiple exhaust fans (8) are installed on the back of the water-cooled host body (1), and multiple blow fans (801) are installed on the front of the water-cooled host body (1). Protective nets (802) are installed on the outside of the multiple blow fans (801) and the exhaust fans (8).

7. The corrosion-resistant water-cooled main unit according to claim 1, characterized in that, The liquid storage tank (101) is equipped with heat dissipation fins b (9) on both sides of its outer end. Multiple heat dissipation slots (901) are opened on both sides of the bottom of the water-cooled host body (1) at the relative positions of the heat dissipation fins b (9).