Efficient cooling water cooling tower device

By installing rotating tubes and heat dissipation fins in the cooling tower device, the problem of water waste during water cooling is solved, and the rapid cooling and reuse of hot water is achieved, thus improving cooling efficiency.

CN223663783UActive Publication Date: 2025-12-12SICHUAN JIAJIA BAIWEI FOOD CO LTD
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Patent Information

Application Number
CN202423219595.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-26
Publication Date
2025-12-12
Estimated Expiration
2034-12-26

AI Technical Summary

Technical Problem

During the water cooling process, cold water needs to be continuously supplied into the equipment, resulting in water waste. Furthermore, the circulating hot water has low cooling efficiency and cannot be reused efficiently.

Method used

A cooling tower device was designed, comprising a water cooling space and a water storage space. The rotating tube is driven to rotate by a rotating tube and a drive unit. Combined with a circulation unit and heat sinks, it enables rapid cooling and reuse of hot water.

Benefits of technology

By rotating the tubes and designing the heat sinks, the cooling speed and efficiency of hot water are significantly improved, achieving the conservation and utilization of water resources.

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Abstract

The utility model discloses an efficient cooling water cooling tower device in the technical field of water cooling tower devices, which comprises a cooling bin, a water cooling space and a water storage space are arranged on the inner wall of the cooling bin, a rotating pipe is arranged in the water cooling space, and a spraying opening is formed in the surface of the rotating pipe; a plurality of heat dissipation openings are formed in the top of the cooling bin. The cooling device further comprises a driving unit and a circulating unit. According to the utility model, the water cooling space and the water storage space are arranged on the inner wall of the cooling bin, and the rotating pipe is arranged in the water cooling space; a user introduces water into the water cooling space from the rotating pipe through the circulating unit for cooling (the water is discharged from equipment needing to be cooled and is hot water at the moment), then the water is discharged from the water storage space (enters the equipment needing to be cooled), and in the process, the driving unit can drive the rotating pipe to rotate, so that the cooling speed of the water is increased.
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Description

TECHNICAL FIELD

[0001] The utility model relates to cold water tower device technical field, specifically a kind of efficient cooling cold water tower device. BACKGROUND

[0002] The method of equipment cooling mainly includes negative pressure fan cooling, environmental protection air conditioner cooling, industrial big fan cooling, water cooling and the like, wherein water cooling is a kind of technology for reducing the temperature of electronic equipment or system by using water as cooling medium.

[0003] In water cooling, cold water needs to be continuously introduced into the interior of equipment, and in order to save water resources, hot water circulating from the equipment needs to be quickly cooled for reuse, thus a new efficient cooling cold water tower device is needed to solve the above problems. SUMMARY

[0004] The utility model discloses a cold water tower device to solve the problem that cold water needs to be continuously introduced into the interior of equipment in water cooling, and hot water circulating from the equipment needs to be quickly cooled for reuse in order to save water resources.

[0005] The utility model discloses a cold water tower device to solve the problem that cold water needs to be continuously introduced into the interior of equipment in water cooling, and hot water circulating from the equipment needs to be quickly cooled for reuse in order to save water resources.

[0006] A cold water tower device comprises a cooling bin, the inner wall of the cooling bin is provided with a water cooling space and a water storage space, the inside of the water cooling space is provided with a rotating pipe, and the surface of the rotating pipe is provided with a spraying port.

[0007] The top of the cooling bin is provided with a plurality of heat dissipation ports, and the cooling bin further comprises a driving unit and a circulating unit.

[0008] Further, the cooling bin comprises a support, the top of the support is fixedly installed with a processing bin, a plurality of heat dissipation ports are arranged on the top of the processing bin, the water cooling space is arranged in the inside of the processing bin, the bottom of the processing bin is provided with a water outlet, the water outlet is fixedly connected with a water storage bin, the water storage space is arranged in the inside of the water storage bin, the water outlet is provided with a first electromagnetic valve, the first electromagnetic valve is electrically connected with a controller fixedly installed on the surface of the support, the surface of the water storage bin is provided with a water supplement port, a drainage port and an inlet, the water supplement port, the drainage port and the inlet are provided with second electromagnetic valves, and a plurality of second electromagnetic valves are electrically connected with the controller.

[0009] Furthermore, the drive unit includes a drive motor fixedly installed on the surface of the processing chamber, the drive motor being electrically connected to the controller, and a drive rod being rotatably inserted into the inner wall of the processing chamber, with both ends of the drive rod being fixedly installed on the output end of the drive motor and the surface of the rotating tube, respectively.

[0010] Furthermore, the circulation unit includes two fixed pipes respectively fixedly inserted into the processing chamber and the surface of the water inlet. One end of the rotating pipe is rotatably inserted into one end of one of the fixed pipes, and one end of the other fixed pipe is fixedly connected to a circulating water pump. Corrugated pipes are provided on one side of the circulating water pump and one of the fixed pipes. The circulating water pump is electrically connected to the controller. The unit also includes a connecting unit for connecting the two corrugated pipes to one end of one of the fixed pipes and the outlet end of the circulating water pump, respectively.

[0011] Furthermore, the connecting unit includes several internally threaded pipes, and an installation pipe is fixedly installed at one end of each of the two corrugated pipes. One end of each of the two internally threaded pipes is rotatably inserted into one end of each of the two installation pipes, and the other two internally threaded pipes are threadedly sleeved onto one of the fixed pipes and the outlet end of the circulating water pump, and are respectively fixedly installed at the other end of the two corrugated pipes.

[0012] Furthermore, heat sinks are fixedly installed on the inner wall of the processing chamber.

[0013] Compared with the prior art, the beneficial effects of this utility model are:

[0014] 1. In this utility model, a water-cooling space and a water storage space are set on the inner wall of the cooling chamber, and a rotating tube is set inside the water-cooling space. When in use, the user uses the circulation unit to pass water from the rotating tube into the water-cooling space for cooling (the water is discharged from the equipment that needs to be cooled and is already hot at this time), and then discharges it from the water storage space (enters the equipment that needs to be cooled). During the above process, the drive unit drives the rotating tube to rotate, thereby accelerating the cooling speed of the water.

[0015] 2. In this utility model, by fixing heat sinks to the inner wall of the processing chamber, the water sprayed from the rotating pipe above can be quickly cooled. The heat sink is existing technology. The principle is to transfer heat from the heat source to the air by increasing the surface area to achieve the purpose of heat dissipation. The water sprayed from the rotating pipe is sprayed from several spray nozzles, so the water flow will spread and spray on the surface of the heat sink, ensuring the effectiveness of the heat sink. Attached Figure Description

[0016] Figure 1 This is a three-dimensional structural diagram of the present invention;

[0017] Figure 2 This is a half-sectional view of the present invention;

[0018] Figure 3 This is a partial cross-sectional view of the present invention;

[0019] Figure 4 This is a side view of the present invention.

[0020] In the diagram: 1. Cooling chamber; 11. Support frame; 12. Processing chamber; 13. Water outlet; 14. Water storage tank; 15. First solenoid valve; 16. Controller; 17. Water inlet; 18. Drain outlet; 19. Water inlet; 191. Second solenoid valve; 2. Water-cooled space; 3. Water storage space; 4. Rotary pipe; 5. Spray nozzle; 6. Heat dissipation vent; 7. Drive unit; 71. Drive motor; 72. Drive rod; 8. Circulation unit; 81. Fixed pipe; 82. Circulating water pump; 83. Corrugated pipe; 84. Connecting unit; 841. Internally threaded pipe; 842. Mounting pipe; 9. Heat sink. Detailed Implementation

[0021] To make the objectives, technical solutions, and advantages of the embodiments of this utility model clearer, the technical solutions of the embodiments of this utility model will be clearly and completely described below with reference to the accompanying drawings.

[0022] This embodiment provides a cooling tower device, mainly used to solve the problem that during water cooling, cold water needs to be continuously supplied to the inside of the equipment, while in order to save water resources, the hot water circulating from the equipment needs to be rapidly cooled before reuse. The following technical solution is provided, which will be discussed in conjunction with... Figures 1-4 Please provide a detailed explanation:

[0023] A high-efficiency cooling tower device includes: a cooling chamber 1 with a water-cooling space 2 and a water storage space 3 on its inner wall; a rotating tube 4 is installed inside the water-cooling space 2; during use, the user can use a circulation unit 8 to pass hot water from external equipment into the rotating tube 4, where it enters the water-cooling space 2 for heat dissipation before flowing into the water storage space 3 for reuse. Several heat dissipation vents 6 located at the top of the cooling chamber 1 are used for heat dissipation. The user also needs to control the rotation of the rotating tube 4 via a drive unit 7 to improve heat dissipation efficiency. The main components of the cooling chamber 1 are: a bracket 11 with a processing chamber 12 fixedly mounted on its top; and the processing chamber 12 is fixedly mounted on the top of the bracket 11. Several heat dissipation vents 6 are located on the top of the processing chamber 12, while the water-cooling space 2 is located inside the processing chamber 12. Therefore, after water enters the water-cooling space 2, it flows downwards. During this process, the heat inside is dissipated into the air and finally escapes from the heat dissipation vents 6 located on the inner wall of the processing chamber 12. Because a water outlet 13 is located at the bottom of the processing chamber 12 and is fixedly connected to a water storage tank 14, water flows into the water storage tank 14. During this process, the user can control the connection between the processing chamber 12 and the water storage tank 14 via a controller 16 fixedly mounted on the surface of the bracket 11 and a first solenoid valve 15 located at the water outlet 13. Simultaneously, a water inlet 17 is provided on the surface of the water storage tank 14. The system includes a drain outlet 18, a water inlet 19, and a water supply outlet 17. Each of these outlets is equipped with a second solenoid valve 191. Users can control several of these second solenoid valves 191 via a controller 16 to further control the conduction status of the water supply outlet 17, drain outlet 18, and water inlet 19. The main components of the drive unit 7 are: a drive rod 72 fixedly mounted on the surface of the rotating tube 4. During use, the user controls the output end of the drive motor 71 fixedly mounted on the surface of the processing chamber 12 to rotate via the controller 16, further driving the rotating tube 4 fixedly mounted on the output end of the drive motor 71 to rotate. This achieves the dispersion of water flow from several spray nozzles 5, increasing the heat dissipation effect. The main components of the circulation unit 8 are... The main components are: two fixed pipes 81, which are respectively fixedly inserted into the surfaces of the processing chamber 12 and the water inlet 19. One end of one of the fixed pipes 81 is fixedly connected to a circulating water pump 82. At the same time, under the action of the connecting unit 84, one end of one of the fixed pipes 81 and the outlet end of the circulating water pump 82 are both connected to a corrugated pipe 83. In use, the user controls the circulating water pump 82 through the controller 16 to sequentially pump water from the water storage space 3 into one of the fixed pipes 81, one of the corrugated pipes 83, and the interior of the heat dissipation device. After being heated by the temperature inside the heat dissipation device, the water flows back from the other corrugated pipe 83 to the other fixed pipe 81, the rotating pipe 4, and the water-cooling space 2 for re-cooling before finally flowing back to the water storage space 3 for the next cycle.It should be noted that heat sinks 9 are fixedly installed on the inner wall of the processing chamber 12, and several diffusers are provided on the surface of the drive rod 72, which can further dissipate heat from the water after rotation.

[0024] By setting a water-cooling space 2 and a water storage space 3 on the inner wall of the cooling chamber 1, and setting a rotating pipe 4 inside the water-cooling space 2, the user can pass water from the rotating pipe 4 into the water-cooling space 2 through the circulation unit 8 for cooling (the water is discharged from the equipment that needs to be cooled and is already hot at this time), and then discharge it from the water storage space 3 (entering the equipment that needs to be cooled). During the above process, the drive unit 7 will drive the rotating pipe 4 to rotate, thereby accelerating the cooling speed of the water.

[0025] By fixing heat sinks 9 to the inner wall of the processing chamber 12, the water sprayed from the rotating pipe 4 above can be quickly cooled. The heat sink 9 is a prior art technology. The principle is to transfer heat from the heat source to the air by increasing the surface area to achieve the purpose of heat dissipation. The water sprayed from the rotating pipe 4 is sprayed from several spray nozzles 5, so the water flow will spread and spray on the surface of the heat sink 9, ensuring the effectiveness of the heat sink 9.

[0026] like Figure 2 As shown, in some embodiments, the main components of the connecting unit 84 are: an installation pipe 842 and several internally threaded pipes 841 fixedly installed at one end of each of the two corrugated pipes 83. Two internally threaded pipes 841 are fixed at one end of the two corrugated pipes 83. In use, the user threadedly connects the two internally threaded pipes 841 to one of the fixed pipes 81 and the outlet of the circulating water pump 82, thereby connecting the two corrugated pipes 83 to one of the fixed pipes 81 and the outlet of the circulating water pump 82. Finally, the user rotates and inserts the other two internally threaded pipes 841, which are respectively inserted into the surfaces of the two installation pipes 842, and threadedly connects them to the inlet and outlet of the device to complete the installation of the overall circulation system.

[0027] The working process of this utility model is as follows: First, the user needs to thread two of the internally threaded pipes 841 onto the water inlet and water outlet of the device being used, respectively. Then, the user turns on the circulating water pump 82 through the controller 16 to pump the water inside the water storage space 3 into the device that needs to be cooled for heat dissipation.

[0028] Secondly, the heated water enters the water-cooling space 2 and is sprayed onto the surface of the heat sink 9 by the rotating tube 4. The water that has been fully cooled then enters the water storage space 3 for the next cycle.

[0029] The above description is only a preferred embodiment of the present utility model, but the protection scope of the present utility model is not limited thereto. Any equivalent substitutions or changes made by those skilled in the art within the technical scope disclosed in the present utility model, based on the technical solution and the inventive concept of the present utility model, should be included within the protection scope of the present utility model.

Claims

1. A high-efficiency cooling tower device, characterized in that, include: Cooling chamber (1), the inner wall of the cooling chamber (1) is provided with water cooling space (2) and water storage space (3), the interior of the water cooling space (2) is provided with rotating pipe (4), and the surface of the rotating pipe (4) is provided with spray nozzle (5); The cooling chamber (1) has several heat dissipation vents (6) on its top, and also includes a drive unit (7) and a circulation unit (8). The drive unit (7) is used to drive the rotating tube (4) to rotate, and the circulation unit (8) is used to pass water in through the rotating tube (4) and then discharge it from the water storage space (3).

2. The high-efficiency cooling tower device according to claim 1, characterized in that: The cooling chamber (1) includes a support (11), and a processing chamber (12) is fixedly installed on the top of the support (11). Several heat dissipation vents (6) are opened on the top of the processing chamber (12). The water cooling space (2) is opened inside the processing chamber (12). A water outlet (13) is provided at the bottom of the processing chamber (12), and the water outlet (13) is fixedly connected to a water storage tank (14). The water storage space (3) is opened inside the water storage tank (14). The water outlet (13) is fixedly connected to a water storage tank (14). 13) A first solenoid valve (15) is provided. The first solenoid valve (15) is electrically connected to a controller (16) fixedly installed on the surface of the bracket (11). The surface of the water storage tank (14) is provided with a water inlet (17), a drain outlet (18), and a water inlet (19). The water inlet (17), the drain outlet (18), and the water inlet (19) are all provided with a second solenoid valve (191). Several second solenoid valves (191) are electrically connected to the controller (16).

3. The high-efficiency cooling tower device according to claim 2, characterized in that: The drive unit (7) includes a drive motor (71) fixedly installed on the surface of the processing chamber (12). The drive motor (71) is electrically connected to the controller (16). A drive rod (72) is rotatably inserted into the inner wall of the processing chamber (12). The two ends of the drive rod (72) are respectively fixedly installed on the output end of the drive motor (71) and the surface of the rotating tube (4).

4. The high-efficiency cooling tower device according to claim 2, characterized in that: The circulation unit (8) includes two fixed pipes (81) that are respectively fixedly installed on the surface of the processing chamber (12) and the water inlet (19). One end of the rotating pipe (4) is rotatably inserted into one end of one of the fixed pipes (81), and one end of the other fixed pipe (81) is fixedly connected to a circulating water pump (82). Corrugated pipes (83) are provided on one side of both the circulating water pump (82) and one of the fixed pipes (81). The circulating water pump (82) is electrically connected to the controller (16). The unit also includes a connecting unit (84), which is used to connect the two corrugated pipes (83) to one end of one of the fixed pipes (81) and the outlet of the circulating water pump (82).

5. The high-efficiency cooling tower device according to claim 4, characterized in that: The connecting unit (84) includes several internally threaded pipes (841). One end of each of the two corrugated pipes (83) is fixedly installed with an installation pipe (842). One end of each of the two internally threaded pipes (841) is rotatably inserted into one end of each of the two installation pipes (842). The other two internally threaded pipes (841) are threadedly connected to one of the fixed pipes (81) and the outlet of the circulating water pump (82), and are respectively fixedly installed at the other end of each of the two corrugated pipes (83).

6. The high-efficiency cooling tower device according to claim 2, characterized in that: The inner wall of the processing chamber (12) is fixedly equipped with heat sinks (9).