High efficiency heat dissipating water tower with heat dissipating material
The cooling tower, designed with an outer casing, water spraying and ventilation devices, and a cooling assembly composed of multiple cooling nets, solves the problems of scale buildup and easy damage to the heat sinks, achieving efficient heat dissipation and convenient maintenance.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- TIANLE INT CO LTD
- Filing Date
- 2025-04-16
- Publication Date
- 2026-06-23
AI Technical Summary
Existing heat sinks tend to accumulate scale after a period of use, which reduces their heat dissipation performance. They are also difficult to clean and replace, and their overall structure is easily damaged, making partial replacement impossible.
The design incorporates an outer casing, a water spraying device, and an exhaust system. The water spraying device sprays cooling water onto multiple heat dissipation materials, while the exhaust system facilitates heat exchange between the outside air and the cooling water on the heat dissipation materials and the heat dissipation assembly. The heat dissipation assembly consists of multiple heat dissipation meshes, which increase the water spraying area and prolong the cooling water dripping time through a combination of protrusions and perforations.
Significantly improves heat dissipation, simplifies cleaning and replacement processes, avoids dust or foreign objects clogging, and improves the efficiency of heat dissipation materials.
Smart Images

Figure CN224398379U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to a high-efficiency heat dissipation water tower with heat dissipation material, and more particularly to a water tower structure that increases the water spray area and thus greatly improves the heat dissipation effect. Background Technology
[0002] Cooling towers are an indispensable part of water cooling systems. Their primary function is to remove heat absorbed by external equipment through the circulation of cooling water within the system. This allows the cooling water to continuously absorb heat from external equipment after circulation. The cooling tower's heat dissipation relies on the flow of cooling water through its internal heat exchange fins, allowing for heat exchange with the cool air. However, most heat exchange fins currently used are made of long, rolled-up sheets. After a period of use, scale accumulates on their surface, significantly reducing heat dissipation efficiency. Furthermore, because they are made of rolled-up sheets, cleaning is extremely difficult, and if a heat exchange fin is partially damaged, the entire fin must be discarded and replaced.
[0003] Therefore, how to solve the problems and deficiencies of the existing technology is the direction that the inventor of this utility model and related manufacturers in this industry urgently need to research and improve. Utility Model Content
[0004] The main purpose of this utility model is to provide a high-efficiency cooling water tower with heat dissipation material, which is composed of an outer cover, a plurality of heat dissipation materials, and at least one heat dissipation assembly. It mainly uses a water spraying device on the outer cover to spray cooling water onto the heat dissipation materials and the heat dissipation assembly, and uses an exhaust device on the top of the outer cover to draw outside air into the interior of the outer cover from the air inlet at the bottom, so that the outside air comes into contact with the cooling water on the heat dissipation materials and the heat dissipation assembly, thereby achieving the purpose of heat dissipation through heat exchange.
[0005] To achieve the above objectives, the specific technical solution of this utility model is as follows:
[0006] A high-efficiency cooling water tower with heat dissipation material, characterized in that: it includes...
[0007] An outer cover has an exhaust device on its top and at least one water spray device below the exhaust device. A plurality of air inlets are provided below the outer cover.
[0008] Multiple heat dissipation materials are housed within the outer casing;
[0009] At least one heat dissipation assembly is disposed on one side of the aforementioned heat dissipation materials. The heat dissipation assembly is composed of a plurality of heat dissipation meshes, and each heat dissipation mesh is further provided with a plurality of protrusions and perforations arranged in sequence and at intervals, so that the plurality of heat dissipation meshes can be combined by inserting the protrusions into the perforations.
[0010] Furthermore, a water collection tank is provided on the bottom side of the outer cover.
[0011] Furthermore, the heat dissipation material is located below the water spray device.
[0012] Furthermore, the heat dissipation assembly is located above the air intake of the outer casing.
[0013] Furthermore, the heat dissipation assembly can be located on one of the following sides: below, above, or on the side edge of the heat dissipation material.
[0014] Furthermore, the protrusions of the heat dissipation mesh are blunt conical in shape, while the perforations have an angle.
[0015] Furthermore, each heat dissipation mesh is composed of a bi-curved frame, a plurality of vertical frames, and a plurality of parallel frames. The vertical frames are arranged between the bi-curved frames and are used to connect the bi-curved frames, while the parallel frames are arranged between the vertical frames and are used to connect the vertical frames. Each parallel frame is also provided with a plurality of protruding columns.
[0016] Furthermore, the curved skeleton of the heat dissipation mesh has a continuous and corresponding plurality of recesses, and each recess is also provided with protrusions and perforations at intervals.
[0017] Furthermore, the vertical and parallel skeletons can be radially curved. Through the above design scheme, this utility model can bring the following beneficial effects:
[0018] 1. It can increase the water spray area, thereby greatly improving the heat dissipation effect. Attached Figure Description
[0019] The present invention will be further described below with reference to the accompanying drawings and specific embodiments:
[0020] Figure 1 This is a schematic diagram of the structure of the high-efficiency heat dissipation water tower with heat dissipation material according to the present invention.
[0021] Figure 2 This is a partial schematic diagram of the high-efficiency cooling tower with heat dissipation material according to the present invention. Figure 1 .
[0022] Figure 3 This is a partial schematic diagram of the high-efficiency cooling tower with heat dissipation material according to the present invention. Figure 2 .
[0023] Figure 4 This is a partial schematic diagram of the high-efficiency cooling tower with heat dissipation material according to the present invention. Figure 3 .
[0024] Figure 5 This is a partial schematic diagram of the high-efficiency cooling tower with heat dissipation material according to the present invention. Figure 4 .
[0025] Figure 6 This is a schematic diagram of a preferred embodiment of the high-efficiency cooling tower with heat dissipation material according to the present invention.
[0026] Figure 7 This is a schematic diagram of a further embodiment of the high-efficiency cooling water tower with heat dissipation material according to the present invention.
[0027] The markings in the diagram are as follows: 1-Cooling tower; 2-Outer casing; 21-Exhaust device; 22-Sprinkler device; 23-Air inlet; 24-Water collection trough; 3-Cooling material; 4-Cooling assembly; 41-Cooling mesh; 411-Curved frame; 4111-Recess; 4112-Protrusion; 4113-Perforation; 412-Vertical frame; 413-Parallel frame; 4131-Protruding column. Detailed Implementation
[0028] To better understand the purpose, structure, and function of this utility model, the following detailed description of the high-efficiency cooling water tower with heat dissipation material is provided in conjunction with the accompanying drawings.
[0029] Please see Figure 1 , Figure 2 , Figure 3 , Figure 4 , Figure 5 , Figure 6 and Figure 7 The figures shown are schematic diagrams of the structure, partial schematic diagrams, preferred embodiment schematic diagrams, and further embodiment schematic diagrams of the present invention. As can be clearly seen from the figures, the cooling tower 1 of the present invention mainly includes:
[0030] An outer cover 2 has an exhaust device 21 on its upper part and at least one water spraying device 22 below the exhaust device 21. A plurality of air inlets 23 are provided below the outer cover 2.
[0031] Multiple heat dissipation materials 3 are disposed inside the outer casing 2;
[0032] At least one heat dissipation assembly 4 is disposed on one side of the aforementioned heat dissipation material 3. The heat dissipation assembly 4 is composed of a plurality of heat dissipation meshes 41. Each heat dissipation mesh 41 is composed of a bi-curved frame 411, a plurality of vertical frames 412 and a plurality of parallel frames 413. Furthermore, each heat dissipation mesh 41 is provided with a plurality of protrusions 4112 and perforations 4113 arranged in sequence at intervals, so that the plurality of heat dissipation meshes can be combined by embedding the protrusions 4112 into the perforations 4113.
[0033] Among them, a water collection tank 24 is provided on the lowest side of the outer cover 2;
[0034] Among them, the heat dissipation material 3 is located below the water spray device 22;
[0035] Among them, the heat dissipation assembly 4 is located above the air intake 23 of the outer casing 2;
[0036] The heat dissipation assembly 4 can be located below, above, and on one side of the heat dissipation material 3;
[0037] Among them, the protrusion 4112 of the heat dissipation mesh 41 is a blunt cone shape, while the perforation 4113 has an angle.
[0038] Each heat dissipation mesh 41 is composed of a bi-curved frame 411, a plurality of vertical frames 412 and a plurality of parallel frames 413. The vertical frames 412 are disposed between the bi-curved frames 411 and are used to connect the bi-curved frames 411. The parallel frames 413 are disposed between the vertical frames 412 and are used to connect the vertical frames 412. Each parallel frame 413 is further provided with a plurality of protruding columns 4131.
[0039] Among them, the curved skeleton 411 of the heat dissipation mesh 41 has a continuous and corresponding plurality of recesses 4111, and each recess 4111 is also provided with protrusions 4112 and perforations 4113 in sequence at intervals.
[0040] When the cooling tower 1 of this utility model is in use, the cooling water of the water cooling system is first sprayed onto the plurality of heat dissipation materials 3 below by the water spraying device 22 of the outer cover 2. After the cooling water flows through the heat dissipation materials 3, it drips and flows through the heat dissipation assembly 4 below, and finally drips into the water collection tank 24 at the bottom of the outer cover 2. While the water spraying device 22 is spraying cooling water, the exhaust device 21 above the outer cover 2 draws outside air into the interior of the outer cover 2 through the air inlet 23 below and exhausts it from the top. After the outside air enters the interior of the outer cover 2, it will exchange heat with the cooling water flowing through the heat dissipation materials 3 and the heat dissipation assembly 4, thereby achieving the effect of heat dissipation.
[0041] As mentioned above, when the cooling water drips from the heat dissipation material 3 onto the heat dissipation assembly 4, the cooling water will flow through the curved skeleton 411, vertical skeleton 412 and parallel skeleton 413 of each heat dissipation mesh 41 of the heat dissipation assembly 4, and finally drip into the water collection tank 24 at the bottom of the outer casing 2.
[0042] The reason why each heat dissipation mesh 41 has a plurality of vertical skeletons 412 and a plurality of parallel skeletons 413 between the two curved skeletons 411 is that, in addition to greatly increasing the area through which the cooling water flows, it can also delay the flow rate of the cooling water and prolong the time when the cooling water drips, so that the cooling water has a longer time to exchange heat with the outside air. Furthermore, through the design of the plurality of vertical skeletons 412 and the plurality of parallel skeletons 413, the outside air can be turbulent when it passes by, causing the cooling water to be blown away and refined, thereby increasing the overall area of water spraying. Therefore, the overall heat dissipation effect can be greatly improved. Moreover, since the heat dissipation mesh 41 can delay the flow rate of the cooling water and prolong the time when the cooling water drips, it can also allow dust or foreign objects contained in the cooling water to be adsorbed.
[0043] As mentioned above, a plurality of protruding pillars 4131 are also provided on each parallel frame 413. The main purpose of these protruding pillars 4131 is to further increase the area through which cooling water flows and to increase the effect of creating turbulence.
[0044] In addition, such as Figure 2 and Figure 3 As shown, when the heat dissipation mesh 41 of the heat dissipation assembly 4 is set, the continuous recesses 4111 of the curved skeleton 41 of one heat dissipation mesh 41 are aligned with the continuous recesses 4111 of the curved skeleton 41 of another heat dissipation mesh 41, and the protrusions 4112 on the recesses 4111 are embedded in the perforations 4113 on the other recesses 4111, so that multiple heat dissipation meshes 41 are arranged in parallel in sequence, and the whole structure presents multiple honeycomb-like shapes.
[0045] As mentioned above, since the heat dissipation assembly 4 is composed of multiple heat dissipation meshes 41, if the surface of the heat dissipation meshes 41 is covered with too much dirt or scale and needs to be cleaned, it is only necessary to remove the protrusion 4112 on the recess 4111 and the perforation 4113 on another recess 4111 to quickly separate the heat dissipation meshes 4 for cleaning. Alternatively, when one or more of the heat dissipation meshes 4 are damaged, they can also be quickly removed to replace them with new heat dissipation meshes 4.
[0046] In addition, such as Figure 7 As shown, the plurality of vertical skeletons 412 and the plurality of parallel skeletons 413 of the heat dissipation mesh 41 can be radial curved shapes, and the vertical skeletons 412 are all disposed between the two curved skeletons 411 and used to connect the two curved skeletons 411, while the parallel skeletons 413 are disposed between the vertical skeletons 412 and used to connect the vertical skeletons 412.
[0047] In summary, compared with the various shortcomings and unsolvable problems of existing cooling towers, the cooling tower 1 of this utility model, through the special design of an outer casing 2, a plurality of heat dissipation materials 3 and at least one heat dissipation assembly 4, can not only greatly improve the overall heat dissipation effect, but also facilitate cleaning or replacement by combining a plurality of heat dissipation meshes 41 in the heat dissipation assembly 4. Furthermore, since the heat dissipation assembly 4 can delay the flow rate of cooling water and prolong the time of cooling water dripping, the dust or foreign matter contained in the cooling water itself can be adsorbed onto it, thus making the heat dissipation material 3 less likely to be blocked by dust or foreign matter.
Claims
1. A high-efficiency cooling water tower with heat dissipation material, characterized in that: include An outer cover has an exhaust device on its top and at least one water spray device below the exhaust device. A plurality of air inlets are provided below the outer cover. Multiple heat dissipation materials are housed within the outer casing; At least one heat dissipation assembly is disposed on one side of the aforementioned heat dissipation material. The heat dissipation assembly is composed of a plurality of heat dissipation meshes, and each heat dissipation mesh is further provided with a plurality of protrusions and perforations arranged in sequence and at intervals, so that the plurality of heat dissipation meshes can be combined by embedding the protrusions into the perforations.
2. The high-efficiency cooling tower with heat dissipation material according to claim 1, characterized in that: A water collection tank is also provided on the bottom side of the outer cover.
3. The high-efficiency cooling tower with heat dissipation material according to claim 1, characterized in that: The heat dissipation material is located below the water spray device.
4. The high-efficiency cooling tower with heat dissipation material according to claim 1, characterized in that: The heat dissipation assembly is located above the air intake of the outer casing.
5. The high-efficiency cooling tower with heat dissipation material according to claim 1, characterized in that: The heat dissipation assembly can be located below, above, or on one side of the heat dissipation material.
6. The high-efficiency cooling tower with heat dissipation material according to claim 1, characterized in that: The protrusions of the heat dissipation mesh are blunt cone-shaped, while the perforations have an angle.
7. The high-efficiency cooling tower with heat dissipation material according to claim 1, characterized in that: Each heat dissipation mesh is composed of a bi-curved frame, a plurality of vertical frames and a plurality of parallel frames. The vertical frames are arranged between the bi-curved frames and are used to connect the bi-curved frames, while the parallel frames are arranged between the vertical frames and are used to connect the vertical frames. Each parallel frame is also provided with a plurality of protruding columns.
8. The high-efficiency cooling tower with heat dissipation material according to claim 7, characterized in that: The curved skeleton of the heat dissipation mesh has a continuous and corresponding plurality of recesses, and each recess is also provided with protrusions and perforations at intervals.
9. The high-efficiency cooling tower with heat dissipation material according to claim 7, characterized in that: Vertical and parallel skeletons can be radial curved shapes.