A high-efficiency heat-dissipation workstation

CN224803438UActive Publication Date: 2026-09-25SHUJU HONGXIN (GUANGDONG) TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202522196793.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-10-17
Publication Date
2026-09-25
Estimated Expiration
2035-10-17

AI Technical Summary

Technical Problem

[0003]由于工作站的性能较强,因此内部的处理器、图形卡等核心部件的发热量较大,目前的工作站基本都在图形卡和处理器上额外增加了散热铜管和散热风扇,同时也会在机箱上设置散热风扇,从而提高其散热效率,但是在实际使用时,图形卡与处理器的安装位置接近,处理器上使用的塔式散热器上安装的风扇,其吹风方向一般是向机箱的后方吹风,而图形卡上的风扇的吹风方向,一般是向机箱的下方或者上方吹风,这就导致两股风是相互垂直的,从而使得气流在机箱内混乱,从而不利于快速散热

Benefits of technology

本实用新型的高效散热工作站,通过设置隔板,将工作站机箱内分隔为上下两个独立区域,分别形成第一散热风道和第二散热风道。冷风从机箱前侧面的第三散热孔进入,在两个风道内分别吸收处理器和图形卡产生的热量后,由对应的第一、第二散热风扇以及辅助的第三、第四散热风扇排出机箱外部。这种设计避免了不同散热区域气流的相互干扰,使气流流动更加顺畅有序,显著提高了散热效率,有效降低了核心部件的工作温度,保障了工作站的稳定运行。

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a kind of high-efficiency heat dissipation workstation, including workstation case, mainboard is equipped in the case along up-down direction, there is tower radiator in processor position on mainboard, first heat dissipation fan along the front-back direction of case is equipped on radiator, there is corresponding first heat dissipation hole in the rear side of case;Tower radiator below on mainboard has graphics card, second heat dissipation fan along the up-down direction of case is equipped on graphics card, second heat dissipation hole is below second heat dissipation fan in the rear side of case, third heat dissipation hole is spread in the front side of case.Perforated partition in the case separates heat dissipation area, forms independent air duct, avoids airflow interference.Multiple auxiliary heat dissipation fans are also set to enhance heat dissipation power, arc air guide part is in the front part of partition to guide airflow.The structure optimizes airflow, improves heat dissipation efficiency and uniformity, guarantees power heat dissipation, and simple structure is convenient for installation and maintenance, ensure workstation stable operation.
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Description

Technical Field

[0001] This utility model relates to the field of workstation technology, and specifically to a high-efficiency heat dissipation workstation. Background Technology

[0002] A computer workstation is a high-performance computer based on personal computers and distributed network computing. It is mainly designed for professional applications and has powerful data processing and graphics / image processing capabilities. It is designed and developed to meet the needs of professional fields such as engineering design, animation production, scientific research, software development, financial management, information services, and simulation.

[0003] Because workstations have high performance, their core components, such as processors and graphics cards, generate a lot of heat. Modern workstations typically add heat pipes and cooling fans to the graphics card and processor, and also install cooling fans on the chassis to improve cooling efficiency. However, in actual use, the graphics card and processor are installed close together. The fans on the tower cooler used on the processor generally blow air towards the rear of the chassis, while the fans on the graphics card generally blow air towards the bottom or top of the chassis. This results in the two airflows being perpendicular to each other, causing chaotic airflow within the chassis and hindering rapid heat dissipation. Summary of the Invention

[0004] The purpose of this invention is to provide a high-efficiency heat dissipation workstation to solve the aforementioned problems existing in current workstations.

[0005] To achieve the above objectives, the present invention adopts the following technical solution: A high-efficiency heat dissipation workstation includes a workstation chassis. A motherboard is mounted vertically within the chassis. A tower heatsink is mounted on the motherboard at the location of the processor. A first cooling fan is mounted on the tower heatsink and is positioned along the front-rear direction of the workstation chassis. A first ventilation hole corresponding to the first cooling fan is provided on the rear side of the workstation chassis. A graphics card is mounted below the tower heatsink on the motherboard. A second cooling fan is mounted on the graphics card and is positioned vertically within the workstation chassis. A second ventilation hole is provided on the rear side of the workstation chassis below the second cooling fan. A third ventilation hole is provided on the front side of the workstation chassis, covering all areas of the front side. A partition is provided within the workstation chassis and is horizontally positioned between the tower heatsink and the graphics card. The rear end of the partition is connected to the rear side of the workstation chassis, and the front end of the partition is connected to the front side of the workstation chassis.

[0006] Furthermore, a first heat dissipation duct is formed in the area above the partition inside the workstation chassis. Cold air enters the first heat dissipation duct through the third heat dissipation hole to form hot air, and the hot air is driven by the first cooling fan to be discharged outside the workstation chassis through the first heat dissipation hole.

[0007] Furthermore, a third cooling fan is provided on the inner wall of the rear side of the workstation chassis at the first heat dissipation hole.

[0008] Furthermore, a second heat dissipation channel is formed in the area below the partition inside the workstation chassis. Cold air enters the second heat dissipation channel through the third heat dissipation hole to form hot air, and the hot air is driven by the second cooling fan to be discharged outside the workstation chassis through the second heat dissipation hole.

[0009] Furthermore, a fourth cooling fan is provided on the inner wall of the rear side of the workstation chassis at the second heat dissipation hole.

[0010] Furthermore, a power supply compartment is provided at the bottom of the workstation chassis, the front of the power supply compartment is spaced apart from the front side of the workstation chassis, and a fourth heat dissipation mesh is provided on the bottom surface of the workstation chassis between the power supply compartment and the side of the workstation chassis.

[0011] Furthermore, the front part of the partition is provided with an arc-shaped air guide, which is located above the fourth heat dissipation mesh.

[0012] Furthermore, the bottom surface of the workstation chassis is provided with support feet, through which the fourth heat dissipation mesh is spaced apart from the placement surface.

[0013] Furthermore, a first connecting plate is provided at the rear end of the partition, which is bent downwards. The first connecting plate is fixed to the rear side of the workstation chassis with screws. A second connecting plate is provided at the front end of the partition, which is fixed to the front side of the workstation chassis with screws. The beneficial effects of this utility model are: This utility model discloses a high-efficiency heat dissipation workstation. By installing a partition, the workstation chassis is divided into two independent upper and lower areas, forming a first and a second heat dissipation airflow channel respectively. Cool air enters through a third ventilation hole on the front side of the chassis, absorbs the heat generated by the processor and graphics card within the two airflow channels, and is then exhausted outside the chassis by the corresponding first and second cooling fans, as well as auxiliary third and fourth cooling fans. This design avoids mutual interference between airflows in different heat dissipation areas, making airflow smoother and more orderly, significantly improving heat dissipation efficiency, effectively reducing the operating temperature of core components, and ensuring the stable operation of the workstation.

[0014] Furthermore, a third cooling fan is installed at the first ventilation hole, and a fourth cooling fan is installed at the second ventilation hole, working in conjunction with the first and second cooling fans. This multi-fan combination provides stronger airflow, accelerating the expulsion of hot air from the chassis and further improving heat dissipation. Especially during prolonged high-load operation of the workstation, it can promptly dissipate the generated heat, preventing performance degradation or hardware damage due to overheating. Attached Figure Description

[0015] Figure 1 This is a structural schematic diagram of the high-efficiency heat dissipation workstation of this utility model; Figure 2 This is a schematic diagram of the internal structure of the high-efficiency heat dissipation workstation of this utility model; Figure 3 yes Figure 2 A structural diagram from another angle; Figure 4 yes Figure 3 A structural diagram from another angle; Figure 5 This is a schematic diagram of the partition in the high-efficiency heat dissipation workstation of this utility model.

[0016] The names corresponding to each mark in the diagram: 1. Workstation chassis; 2. Motherboard; 3. Tower heatsink; 4. First cooling fan; 5. First ventilation hole; 6. Graphics card; 7. Second cooling fan; 8. Second ventilation hole; 9. Third ventilation hole; 10. Partition; 101. First connecting plate; 102. Second connecting plate; 103. Arc-shaped air guide; 11. Power supply compartment; 12. Fourth heat dissipation mesh; 13. Third cooling fan; 14. Fourth cooling fan; 15. Support feet. Detailed Implementation

[0017] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention.

[0018] Figures 1-5 As shown, the high-efficiency heat dissipation workstation includes a workstation chassis 1, inside which a motherboard 2 is mounted vertically. A tower heatsink 3 is mounted on the motherboard 2 at the location of the processor, and a first cooling fan 4 is mounted on the tower heatsink 3, arranged along the front-to-back direction of the workstation chassis 1. A first ventilation hole 5 corresponding to the first cooling fan 4 is provided on the rear side of the workstation chassis 1, and a third cooling fan 13 is also mounted on the inner wall of the rear side of the workstation chassis 1 at the first ventilation hole 5.

[0019] Figures 2-4As shown, a graphics card 6 is mounted on the motherboard 2 below the tower heatsink 3. A second cooling fan 7 is mounted on the graphics card 6, positioned vertically along the workstation chassis 1. A second ventilation hole 8 is located below the second cooling fan 7 on the rear side of the workstation chassis 1. A fourth cooling fan 14 is mounted on the inner wall of the rear side of the workstation chassis 1 at the second ventilation hole 8. Third ventilation holes 9 are distributed throughout the front side of the workstation chassis 1.

[0020] Figure 3 and Figure 5 As shown, a partition 10 is provided in the workstation chassis 1. The partition 10 is horizontally positioned between the tower heatsink 3 and the graphics card 6. A first connecting plate 101 is bent downward at the rear end of the partition 10 and is fixed to the rear side of the workstation chassis 1 with screws. A second connecting plate 102 is provided at the front end of the partition 10 and is fixed to the front side of the workstation chassis 1 with screws. An arc-shaped air guide section 103 is provided at the front of the partition 10.

[0021] Figure 3 and Figure 4 As shown, a power supply compartment 11 is provided at the bottom of the workstation chassis 1. The front of the power supply compartment 11 is spaced apart from the front side of the workstation chassis 1. A fourth heat dissipation mesh 12 is provided on the bottom surface of the workstation chassis 1 between the power supply compartment 11 and the side surface of the workstation chassis 1. Support feet 15 are also provided on the bottom surface of the workstation chassis 1, which space the fourth heat dissipation mesh 12 from the placement surface.

[0022] Working principle: When the workstation is running, the processor and graphics card 6 generate a lot of heat. Cool air enters the interior of the workstation chassis 1 through the third ventilation hole 9 on the front side of the chassis 1.

[0023] The workstation chassis 1 forms a first heat dissipation air duct in the area above the partition 10. The incoming cold air absorbs the heat around the motherboard 2 and the tower heat sink 3 to form hot air. The first cooling fan 4 and the third cooling fan 13 work simultaneously. The first cooling fan 4 exhausts the hot air to the outside of the workstation chassis 1 through the first heat dissipation hole 5, and the third cooling fan 13 assists in accelerating the exhaust of the hot air and improving the heat dissipation efficiency.

[0024] A second heat dissipation air duct is formed in the area below the partition 10 inside the workstation chassis 1. The incoming cold air absorbs the heat around the graphics card 6 to form hot air. The second cooling fan 7 and the fourth cooling fan 14 work simultaneously. The second cooling fan 7 exhausts the hot air to the outside of the workstation chassis 1 through the second heat dissipation hole 8, and the fourth cooling fan 14 assists in accelerating the exhaust of the hot air.

[0025] The partition 10 separates the areas where the tower heatsink 3 and the graphics card 6 are located, preventing the airflow from their respective cooling fans from interfering with each other and causing airflow chaos. The arc-shaped air guide 103 at the front of the partition 10 can guide the airflow, making it flow more smoothly. The spacing between the front of the power supply compartment 11 and the front side of the workstation chassis 1, as well as the placement of the fourth heat dissipation mesh 12, facilitate air intake from the bottom of the workstation chassis 1. The support feet 15 separate the fourth heat dissipation mesh 12 from the placement surface, further ensuring the air intake effect.

[0026] Obviously, the described embodiments are only some embodiments of this utility model, and not all embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of this utility model are within the protection scope of this utility model.

Claims

1. A high-efficiency heat dissipation workstation, characterized in that: The system includes a workstation chassis. Inside the workstation chassis, a motherboard is mounted vertically. A tower heatsink is mounted on the motherboard at the location of the processor. A first cooling fan is mounted on the tower heatsink and is positioned along the front-to-back direction of the workstation chassis. A first ventilation hole corresponding to the first cooling fan is located on the rear side of the workstation chassis. A graphics card is mounted below the tower heatsink on the motherboard. A second cooling fan is mounted on the graphics card and is positioned vertically along the workstation chassis. A second ventilation hole is located below the second cooling fan on the rear side of the workstation chassis. A third ventilation hole is located on the front side of the workstation chassis, covering all areas of the front side. A partition is provided within the workstation chassis and is positioned horizontally between the tower heatsink and the graphics card. The rear end of the partition is connected to the rear side of the workstation chassis, and the front end of the partition is connected to the front side of the workstation chassis.

2. The high-efficiency heat dissipation workstation according to claim 1, characterized in that: A first heat dissipation duct is formed in the area above the partition inside the workstation chassis. Cold air enters the first heat dissipation duct through the third heat dissipation hole to form hot air, and the hot air is driven by the first cooling fan to be discharged outside the workstation chassis through the first heat dissipation hole.

3. The high-efficiency heat dissipation workstation according to claim 2, characterized in that: A third cooling fan is provided on the inner wall of the rear side of the workstation chassis at the first heat dissipation hole.

4. The high-efficiency heat dissipation workstation according to claim 1, characterized in that: A second heat dissipation channel is formed in the area below the partition inside the workstation chassis. Cold air enters the second heat dissipation channel through the third heat dissipation hole to form hot air, and the hot air is driven by the second cooling fan to be discharged outside the workstation chassis through the second heat dissipation hole.

5. The high-efficiency heat dissipation workstation according to claim 4, characterized in that: A fourth cooling fan is provided on the inner wall of the rear side of the workstation chassis at the second heat dissipation hole.

6. The high-efficiency heat dissipation workstation according to claim 5, characterized in that: The bottom of the workstation chassis is provided with a power supply compartment, the front of which is spaced apart from the front side of the workstation chassis, and a fourth heat dissipation mesh is provided on the bottom surface of the workstation chassis between the power supply compartment and the side of the workstation chassis.

7. The high-efficiency heat dissipation workstation according to claim 6, characterized in that: The front part of the partition is provided with an arc-shaped air guide, which is located above the fourth heat dissipation mesh.

8. The high-efficiency heat dissipation workstation according to claim 7, characterized in that: The bottom surface of the workstation chassis is provided with support feet, and the fourth heat dissipation mesh is spaced apart from the placement surface through the support feet.

9. The high-efficiency heat dissipation workstation according to claim 1, characterized in that: The rear end of the partition is bent downward to form a first connecting plate, which is fixed to the rear side of the workstation chassis by screws. The front end of the partition is provided with a second connecting plate, which is fixed to the front side of the workstation chassis by screws.