ICT test equipment case
By introducing a cooling system combining coolant circulation pipes and fans into the chassis of the ICT test equipment, the problem of low heat dissipation efficiency under high temperature environments was solved, ensuring stable operation of the equipment and accuracy of test results, and extending the service life of the equipment.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-25
- Publication Date
- 2026-03-31
AI Technical Summary
Existing ICT test equipment chassis cannot achieve efficient heat dissipation, which leads to performance degradation of electronic components in high-temperature environments, affecting the accuracy of test results and potentially accelerating the aging and damage of electronic components.
The cooling system employs a combination of coolant circulation pipes and heat dissipation fins with a fan. The coolant circulation pipes absorb heat, and the fan accelerates airflow. Combined with a dust filter and adjustable valves, the coolant flow is optimized, enhancing the adaptability and efficiency of the cooling system.
This achieves efficient heat dissipation for the ICT test equipment chassis, ensuring stable operation of the equipment, extending its service life, and guaranteeing the accuracy of test results and the normal operation of electronic components.
Smart Images

Figure CN224068995U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of metal panel cabinet technology, and in particular to an ICT test equipment chassis. Background Technology
[0002] ICT test equipment chassis are used for production testing of electronic products, providing a stable hardware environment and interface support. Their design requirements include high-density component mounting, good heat dissipation performance and high anti-interference capability. The chassis is usually equipped with test slots, connectors, control boards, etc., to ensure that the equipment can be efficiently connected to the circuit board under test and perform testing.
[0003] However, in actual use, the following shortcomings still exist. For example, the existing ICT test equipment chassis cannot achieve efficient heat dissipation inside the equipment to ensure stable operation. The performance of most electronic components, such as CPUs and GPUs, will significantly decrease in high-temperature environments. High temperatures may increase the resistance of wires on the circuit board and accelerate signal attenuation during transmission, resulting in signal distortion. For high-precision ICT test equipment, this will affect the accuracy of test results, causing deviations in test data and failing to truly reflect the performance status of the device under test. Prolonged high-temperature environments will accelerate the aging and damage of electronic components.
[0004] Therefore, this utility model proposes an ICT test equipment chassis to solve the above problems. Utility Model Content
[0005] The purpose of this invention is to address the shortcomings of existing technologies and propose an ICT test equipment chassis.
[0006] To achieve the above objectives, the present invention adopts the following technical solution: an ICT test equipment chassis, comprising:
[0007] Box;
[0008] A chassis assembly is placed on a cabinet. The chassis assembly includes a cabinet door that is rotatably connected to the cabinet. A display screen is installed on the side of the cabinet near the top. A control button is provided on the side of the cabinet near the bottom of the display screen. A mounting plate is fixed on the cabinet. A support platform is fixed inside the cabinet.
[0009] A first heat dissipation assembly is placed on the housing. The first heat dissipation assembly includes a coolant circulation pipe fixed in the support platform, a coolant tank fixed on the coolant circulation pipe, heat dissipation fins fixed on the coolant tank, a housing fixed on the top of the coolant tank near the heat dissipation fins, a first fan installed on one side of the housing, a water pump installed on the top side of the coolant tank, and the coolant circulation pipe is located at the output end of the water pump.
[0010] Furthermore, a support base is fixed on the housing, and the coolant tank is fixed on the support base.
[0011] The beneficial effects of adopting the above-mentioned further solutions are: the fixed support on the tank is mainly used to stabilize the coolant tank. Its solid structure can ensure that the coolant tank remains stable during equipment operation, avoiding the impact of vibration or displacement on coolant circulation and heat dissipation, and providing basic support for the reliable operation of the entire heat dissipation system.
[0012] Furthermore, a first dustproof net is fixed to the side of the housing away from the first fan.
[0013] The beneficial effects of adopting the above-mentioned further solution are: the first dustproof net fixed on the side of the casing away from the first fan can effectively block dust from entering when the first fan is running and accelerating the airflow to remove heat, prevent dust from adhering to the heat dissipation fins, ensure that the heat dissipation efficiency is not affected by dust accumulation, and extend the service life of the equipment.
[0014] Furthermore, a valve is installed on the coolant circulation pipe.
[0015] The beneficial effects of adopting the above-mentioned further solution are: the valve installed on the coolant circulation pipe can flexibly control the flow rate and circulation path of the coolant. When the equipment operating status changes and heat changes, the coolant circulation can be optimized by adjusting the valve, so that the heat dissipation effect is precisely matched with the actual heat generation of the equipment, thereby improving the adaptability of the heat dissipation system.
[0016] Furthermore, a second heat dissipation component is provided on the housing, the second heat dissipation component including a second fan installed on the top of the housing.
[0017] The beneficial effects of adopting the above-mentioned further solution are: the second fan installed on the top of the enclosure, as a key part of the second heat dissipation component, can accelerate the airflow inside the enclosure when the equipment is running, and work together with the first heat dissipation component to quickly dissipate the heat inside the enclosure, further enhancing the overall heat dissipation capacity and maintaining a low temperature environment inside the equipment.
[0018] Furthermore, the support platform is provided with ventilation holes, and a ventilation slot is provided on the side of the support platform near the ventilation holes.
[0019] The beneficial effects of adopting the above-mentioned further solution are: the ventilation holes and ventilation slots opened on the support platform allow air to pass through the support platform during equipment operation, carrying away the heat emitted by electronic components, promoting air circulation inside the enclosure, and assisting the overall heat dissipation system to work efficiently.
[0020] Furthermore, a second dustproof net is fixed to one side of the box near the bottom.
[0021] The beneficial effects of adopting the above-mentioned further solution are: the second dustproof net fixed on the side of the cabinet near the bottom can block dust from entering the cabinet, ensuring the normal operation of electronic components, while preventing dust from affecting air circulation and ensuring stable heat dissipation.
[0022] Compared with the prior art, the advantages and positive effects of this utility model are as follows:
[0023] In this invention, when the ICT testing equipment generates heat during operation, the coolant circulation pipe located within the support platform first absorbs the heat emitted by the surrounding electronic components, causing the coolant temperature inside the pipe to rise. At this time, a water pump on one side of the top of the coolant tank starts, drawing the heated coolant from the coolant circulation pipe and pumping it to the coolant tank. As the coolant flows within the tank, heat is transferred to the surrounding air through the heat dissipation fins. Simultaneously, a first fan installed on one side of the casing starts, accelerating airflow and carrying away the heat emitted by the heat dissipation fins, thus enhancing the heat dissipation effect. The cooled coolant then flows back through the coolant circulation pipe, continuously circulating, thereby achieving efficient heat dissipation inside the equipment and ensuring stable operation. Attached Figure Description
[0024] Figure 1 This is a schematic diagram of the structure of an ICT testing equipment chassis according to the present invention;
[0025] Figure 2 This is a schematic diagram of the chassis component structure of an ICT test equipment chassis according to the present invention;
[0026] Figure 3 This is a schematic diagram of the internal structure of an ICT testing equipment chassis according to the present invention;
[0027] Figure 4 This is a schematic diagram of the first heat dissipation component structure of an ICT test equipment chassis according to the present invention;
[0028] Figure 5 This is a schematic diagram of the internal structure of the coolant tank of an ICT test equipment chassis according to this utility model.
[0029] Figure label:
[0030] 1. Box body;
[0031] 2. Chassis components; 21. Cabinet door; 22. Display screen; 23. Control buttons; 24. Mounting plate; 25. Support platform;
[0032] 3. First heat dissipation component; 31. Coolant circulation pipe; 32. Support base; 33. Coolant tank; 34. Heat dissipation fins; 35. Housing; 36. First fan; 37. First dust filter; 38. Water pump; 39. Valve;
[0033] 4. Second heat dissipation component; 41. Second fan; 42. Ventilation hole; 43. Ventilation slot; 44. Second dustproof net. Detailed Implementation
[0034] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0035] like Figures 1-5 As shown, this embodiment provides a technical solution: an ICT test equipment chassis, comprising:
[0036] Box 1;
[0037] Chassis assembly 2 is placed on the enclosure 1. Chassis assembly 2 includes a cabinet door 21 that is rotatably connected to the enclosure 1. A display screen 22 is installed on the side of the enclosure 1 near the top. A control button 23 is provided on the side of the enclosure 1 near the bottom of the display screen 22. A mounting plate 24 is fixed on the enclosure 1. A support platform 25 is fixed inside the enclosure 1.
[0038] The first heat dissipation component 3 is placed on the housing 1. The first heat dissipation component 3 includes a coolant circulation pipe 31 fixed within the support platform 25, a coolant tank 33 fixed to the coolant circulation pipe 31, and heat dissipation fins 34 fixed to the coolant tank 33. A housing 35 is fixed to the top of the coolant tank 33 near the heat dissipation fins 34, and a first fan 36 is installed on one side of the housing 35. A water pump 38 is installed on the top side of the coolant tank 33, and the coolant circulation pipe 31 is located at the output end of the water pump 38. In the ICT test equipment chassis structure, all parts work together to ensure stable equipment operation. First, the heat generated by the equipment operation is absorbed by the coolant circulation pipe 31 fixed within the support platform 25, causing the coolant in the coolant circulation pipe 31 to heat up. At this time, the water pump 38 installed on the top side of the coolant tank 33 starts working, drawing the heated coolant from the coolant circulation pipe 31 and pumping it into the coolant tank 33. The heat dissipation fins 34 fixed on the coolant tank 33 can transfer the heat carried by the coolant to the surrounding air. To accelerate the heat dissipation speed, a first fan 36 is installed on one side of the housing 35 fixed on the top of the coolant tank 33 near the side of the heat dissipation fins 34. When the first fan 36 is running, it accelerates the airflow and quickly removes the heat dissipated by the heat dissipation fins 34, achieving efficient heat dissipation. The cooled coolant flows back into the coolant circulation pipe 31 and continues to circulate. At the same time, the chassis components 2 also perform their respective functions. The cabinet door 21 connected to the chassis 1 can be rotated to facilitate maintenance personnel to open the chassis for inspection. The display screen 22 on the top of the chassis 1 is used to display the equipment operating status and test data. The control buttons 23 near the bottom of the display screen 22 are used by the operator to adjust the equipment. The mounting plate 24 on the chassis 1 can be removed to facilitate the placement of various electronic components inside the chassis. The support platform 25 provides stable support for the internal layout of the equipment and ensures that the components work in an orderly manner.
[0039] The above solutions also have the problem that, when the equipment generates heat during operation, they cannot meet the requirements for efficient operation of the overall auxiliary heat dissipation system, such as... Figure 1 as well as Figures 3-5As shown: A support base 32 is fixed on the housing 1, and the coolant tank 33 is fixed on the support base 32. The support base 32 on the housing 1 is specially designed to support the coolant tank 33. Its stable structure can resist the vibration during equipment operation and prevent the coolant tank 33 from shifting. In this way, the coolant circulation can proceed stably, and the heat dissipation fins 34 can also continuously and efficiently dissipate heat, laying a solid foundation for the reliable operation of the entire heat dissipation system and ensuring smooth heat dissipation. A first dustproof net 37 is fixed on the side of the housing 35 away from the first fan 36. The first dustproof net 37 at the housing 35 plays a key role. When the first fan 36... When working and accelerating airflow for heat dissipation, it can keep dust out. Dust cannot adhere to the heat dissipation fins 34, so the heat dissipation efficiency of the fins will not decrease due to dust accumulation, thus ensuring long-term stable heat dissipation of the equipment and effectively extending the overall service life of the equipment. A valve 39 is installed on the coolant circulation pipe 31. The valve 39 of the coolant circulation pipe 31 is highly flexible. When the operating conditions of the equipment change or the heat generation fluctuates, the coolant flow can be precisely controlled by adjusting the valve 39, allowing the heat dissipation system to flexibly adjust the heat dissipation intensity according to the actual heat generation, so that the heat dissipation effect always meets the needs of the equipment and enhances the adaptability of the system.
[0040] like Figures 1-4 As shown, a second heat dissipation component 4 is installed on the housing 1. The second heat dissipation component 4 includes a second fan 41 installed on the top of the housing 1. The second fan 41 on the top of the housing 1 is the core of the second heat dissipation component 4. When the equipment is running, it starts immediately, causing the air inside the housing 1 to flow faster. It works in conjunction with the first heat dissipation component 3 to form a highly efficient heat dissipation force, quickly expelling heat from the housing and creating a low-temperature environment to help the equipment operate stably. Ventilation holes 42 are provided on the support platform 25, and ventilation slots 43 are provided on the side of the support platform 25 near the ventilation holes 42. The ventilation holes 42 and ventilation slots 43 on the platform 25 allow air to pass through the supporting platform 25 during equipment operation, carrying away the heat emitted by the electronic components and promoting air circulation inside the housing 1. This assists the overall heat dissipation system in working efficiently. A second dustproof net 44 is fixed on the side of the housing 1 near the bottom. The second dustproof net 44 can block dust from entering the housing 1, ensuring the normal operation of the electronic components and preventing dust from affecting air circulation, thus ensuring stable heat dissipation.
[0041] Working principle:
[0042] like Figures 1-5As shown, in the ICT test equipment chassis, various parts work together to maintain stable equipment operation. During operation, the heat generated is first absorbed by the coolant circulation pipe 31 within the support platform 25, causing the coolant to heat up. At this time, the water pump 38 at the top of the coolant tank 33 starts, drawing the hot coolant into the coolant tank 33. The heat dissipation fins 34 fixed on the coolant tank 33 transfer the heat carried by the coolant to the surrounding air. To accelerate heat dissipation, a first fan 36 is installed on one side of the housing 35 fixed to the top of the coolant tank 33 near the heat dissipation fins 34. When the first fan 36 operates, it accelerates airflow, quickly removing the heat dissipated by the heat dissipation fins 34. The cooled coolant then flows back to the coolant circulation pipe 31, continuously circulating for heat dissipation. The chassis components 2 also perform their respective functions. The cabinet door 21 is rotatably connected to the chassis 1 for easy maintenance. The display screen 22 on the top of the chassis 1 displays the equipment's operating status and test data, and control buttons... The 23 provides operators with control over the equipment. The mounting plate 24 on the enclosure 1 can be removed to facilitate the placement of various electronic components inside the enclosure. The support platform 25 provides stable support for the internal layout. In addition, the support base 32 firmly supports the coolant tank 33, resists vibration, and ensures stable coolant circulation. The first dustproof net 37 blocks dust when the first fan 36 is working, preventing dust accumulation on the heat dissipation fins 34 and ensuring long-term efficient heat dissipation. The valve 39 can flexibly adjust the coolant flow according to the equipment's operating conditions to adapt to different heat dissipation situations. The second fan 41 is installed on the top of the enclosure 1 and accelerates the airflow inside the enclosure when it is running, working in conjunction with the first heat dissipation component 3 to dissipate heat. The ventilation holes 42 and ventilation slots 43 on the support platform 25 promote airflow and remove heat from the electronic components. The second dustproof net 44 is located at the bottom of the enclosure 1 to block dust from entering, ensuring the normal operation of electronic components and stable heat dissipation. These structures work together to comprehensively ensure the stable and efficient operation of the ICT testing equipment.
[0043] The above description is merely a preferred embodiment of the present utility model and is not intended to limit the present utility model in any other way. Any person skilled in the art may make changes or modifications to the above-disclosed technical content to create equivalent embodiments for application in other fields. However, any simple modifications, equivalent changes, and modifications made to the above embodiments based on the technical essence of the present utility model without departing from the technical solution of the present utility model shall still fall within the protection scope of the technical solution of the present utility model.
Claims
1. An ICT test equipment chassis, characterized by, Include: Box (1); Machine box assembly (2), the machine box assembly (2) is placed on the box (1), the machine box assembly (2) includes cabinet door (21) that is rotatably connected on the box (1), the box (1) is installed with display screen (22) on one side near the top, the box (1) is provided with control button (23) on one side near the bottom of display screen (22), the box (1) is fixed with mounting plate (24), the box (1) is fixed with support platform (25) in; First heat dissipation assembly (3), the first heat dissipation assembly (3) is placed on the box (1), the first heat dissipation assembly (3) includes cooling liquid circulation pipe (31) that is fixed in support platform (25), the cooling liquid circulation pipe (31) is fixed with cooling liquid tank (33), the cooling liquid tank (33) is fixed with heat dissipation fin (34), the top of cooling liquid tank (33) is fixed with shell (35) on one side near heat dissipation fin (34), the shell (35) is installed with first fan (36) on one side, the top of cooling liquid tank (33) is installed with water pump (38) on one side, the cooling liquid circulation pipe (31) is arranged on the output end of water pump (38).
2. The ICT test equipment chassis of claim 1, wherein: The box (1) is fixed with support seat (32), and the cooling liquid tank (33) is fixed on the support seat (32).
3. The ICT test equipment chassis of claim 1, wherein: The shell (35) is fixed with first dust screen (37) on one side away from the first fan (36).
4. The ICT test equipment chassis of claim 1, wherein: The cooling liquid circulation pipe (31) is provided with valve (39).
5. The ICT test equipment chassis of claim 1, wherein: The box (1) is provided with second heat dissipation assembly (4), and the second heat dissipation assembly (4) includes second fan (41) installed on the top of box (1).
6. An ICT test equipment chassis as claimed in claim 5, characterized in that: Ventilation hole (42) is formed in the support platform (25), and ventilation groove (43) is formed in one side of the support platform (25) near the ventilation hole (42).
7. The ICT test equipment chassis of claim 1, wherein: The box (1) is fixed with second dust screen (44) on one side near the bottom.