Computer electrical box steel frame structure integrated with air conditioner heat dissipation channel
By integrating air conditioning heat dissipation channels into the steel frame of the electrical box and connecting them with the air conditioner via cold air pipes, efficient and uniform cooling of electrical equipment is achieved, solving the problems of uneven cold air distribution and local overheating, and improving heat dissipation efficiency and adaptability.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- BLUE EAGLE (TIANJIN) UAV TECH CO LTD
- Filing Date
- 2025-04-25
- Publication Date
- 2026-04-17
AI Technical Summary
The existing heat dissipation methods for electrical box steel frames have problems such as uneven distribution of cold air and local overheating. Furthermore, traditional heat dissipation methods cannot be dynamically adjusted according to the heat distribution of the equipment, resulting in low heat dissipation efficiency.
A steel frame structure for a computer electrical box with an integrated air conditioning heat dissipation channel was designed, including a front frame, a rear frame, connecting rods, and a cooling pipe. The cooling pipe is sealed at both ends and has an air outlet. The rear frame is connected to the air conditioning cooling pipe, and the air conditioning cooling air is blown evenly to the electrical equipment through the cooling pipe. The cooling pipe can be disassembled and adjusted to adapt to the equipment layout.
It achieves efficient cooling of electrical equipment, improves the targeting and flexibility of heat dissipation, reduces energy consumption, and requires no additional heat dissipation devices, making it highly adaptable and operable.
Smart Images

Figure CN224139331U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of electrical equipment heat dissipation technology, and in particular to a steel frame structure for a computer electrical box with an integrated air conditioning heat dissipation channel. Background Technology
[0002] With the development of computer technology, electrical box steel frames have emerged to protect electrical equipment such as computers. Electrical box steel frames provide stable support and reasonable layout for various electrical equipment. Through good electrical isolation and protection functions, they ensure the safe operation of equipment. However, since electrical box steel frames are made of steel, their heat dissipation performance is poor. The internal temperature of electrical box steel frames remains high for a long time, which can easily damage electrical equipment such as computers. Therefore, it is necessary to install heat dissipation structures on electrical box steel frames.
[0003] Existing electrical box cooling systems typically involve multiple ventilation holes on the side panel, relying on independent fans or external air conditioning to cool the interior of the electrical box.
[0004] The existing technical solutions mentioned above have the following drawbacks: the temperature inside the electrical box steel frame is regulated by independent fans or external air conditioning. Independent fans are usually installed inside the electrical box or in a localized location, and their heat dissipation effect is mainly concentrated in the area near the fan. The airflow direction and intensity of the fan are often fixed and cannot be dynamically adjusted according to the heat distribution of the equipment inside the electrical box. External air conditioning systems usually provide cooling for the entire room or computer room, and their cold air distribution is based on the overall spatial layout rather than the heat distribution inside the electrical box. Moreover, the heat dissipation holes on the side panels are often not coupled with the airflow path of the air conditioner, resulting in poor heat dissipation efficiency. Utility Model Content
[0005] In order to efficiently cool the interior of the electrical box steel frame, this application provides a computer electrical box steel frame structure with an integrated air conditioning heat dissipation channel.
[0006] The above-mentioned technical objective of this application is achieved through the following technical solution:
[0007] A steel frame structure for a computer electrical box with an integrated air conditioning heat dissipation channel includes a mounting frame. The mounting frame consists of a front frame and a rear frame spaced apart, and four connecting rods located between the front frame and the rear frame. Multiple air ducts are detachably connected to the surface of the rear frame away from the front frame. The ends of the air ducts are sealed, and multiple air outlets communicating with the interior of the air ducts are opened on the side wall of the rear frame facing the air ducts. The rear frame is connected to the air ducts, and the pipes of the rear frame are connected to the air conditioning air ducts.
[0008] By adopting the above technical solution, and by setting up a front frame, a rear frame, connecting rods, and cold air ducts, with both ends of the cold air ducts sealed and multiple air outlets connected to the interior, the rear frame ducts are connected to the air conditioning cold air ducts, allowing the air conditioning cold air to enter the mounting frame and be evenly blown onto the electrical equipment inside the electrical box steel frame through the air outlets of the cold air ducts. This achieves efficient cooling of the equipment and effectively solves the problems of uneven cold air distribution and local overheating in traditional heat dissipation methods. At the same time, this structure does not require additional heat dissipation devices, reducing energy consumption. The detachable cold air ducts allow for adjustable air outlet positions, and the number and position of the cold air ducts can be flexibly adjusted according to the location of electrical equipment such as computers, improving the targeting and flexibility of heat dissipation and increasing heat dissipation efficiency.
[0009] Optionally, the air conditioning duct is horizontally arranged, and the two ends of the air conditioning duct facing the side wall of the rear frame are provided with second connecting pipes. The surface of the rear frame away from the front frame is provided with multiple first connecting pipes corresponding to the second connecting pipes. The outer peripheral wall of the second connecting pipe is rotatably fitted with a connecting nut. The connecting nut can be threaded to the outer peripheral wall of the first connecting pipe. The first connecting pipe and the second connecting pipe are detachably connected through the connecting nut.
[0010] By adopting the above technical solution and setting the first connecting pipe, the second connecting pipe and the connecting nut, the air conditioning pipe and the mounting bracket can be detachably connected. This allows for flexible adjustment of the number and position of the air conditioning pipes according to the layout of electrical equipment and heat dissipation requirements. At the same time, it facilitates the installation and maintenance of the air conditioning pipes and improves the adaptability and operability of the heat dissipation system.
[0011] Optionally, an air conditioning intake pipe is provided on the upper surface of the rear frame away from the front frame, and the air conditioning intake pipe is connected to the internal pipeline of the rear frame.
[0012] By adopting the above technical solution and setting up an air conditioning intake pipe, efficient communication between the air conditioning cool air and the interior of the rear frame can be achieved. This allows the cool air to smoothly enter the rear frame and be distributed to each cool air pipe through its internal pipes. The cool air is then evenly blown onto the electrical equipment inside the electrical box steel frame through the air outlet of the cool air pipe, effectively improving heat dissipation efficiency.
[0013] Optionally, the air outlet is a directional air outlet.
[0014] By adopting the above technical solution and setting directional air outlets, the cold air blown out of the air duct can be precisely directed to the electrical equipment inside the electrical box steel frame in a predetermined direction, avoiding disorderly diffusion of cold air, thereby improving the targeting and efficiency of heat dissipation, better meeting the heat dissipation needs of different equipment, and ensuring that the cold air can concentrate and effectively cool down key heat-generating parts.
[0015] Optionally, the first connecting pipe not connected to the air conditioning duct may be detachably screwed with a sealing cap.
[0016] By adopting the above technical solution and setting a sealing cover, the first connecting pipe can be effectively sealed at the interface where no air conditioning pipe is installed, preventing air conditioning from leaking from these unused interfaces, thereby reducing the waste of air conditioning, improving the air conditioning utilization efficiency of the entire heat dissipation system, and ensuring that air conditioning can be concentrated and effectively delivered to the area where air conditioning pipes are installed, providing more precise cooling for electrical equipment.
[0017] Optionally, a cover is provided at the air outlet of the air conditioning duct.
[0018] By adopting the above technical solution and setting a cover, the opening and closing of the air outlet can be flexibly controlled. When some air outlets do not need to emit air, they can be closed by the cover, so that the cold air is concentrated and blown out from other air outlets that need it. Thus, according to the actual location and heat dissipation requirements of electrical equipment, the cold air can be accurately delivered to the area that needs cooling, further improving the heat dissipation efficiency. At the same time, this adjustability also enhances the flexibility and adaptability of the heat dissipation system, enabling it to better meet the heat dissipation requirements under different layouts and operating conditions.
[0019] Optionally, the air conditioning intake pipe is a square pipe, with one end fixed to the rear frame and the other end processed into a round pipe head.
[0020] By adopting the above technical solution, the air conditioner intake pipe and the air conditioner cooling pipe can be efficiently connected through the circular pipe head at one end of the air conditioner intake pipe. The design of the circular pipe head facilitates matching with the standard interface of the external air conditioning system, ensuring that the cooling air enters the mounting frame smoothly, thereby achieving efficient cooling of the electrical equipment inside the electrical box steel frame.
[0021] Optionally, a flexible hose is provided inside the rear frame, which connects the air conditioning intake pipe to the cold air duct.
[0022] By adopting the above technical solution and setting flexible hoses, the air conditioner intake pipe and the cooling pipe can be flexibly connected, allowing the cooling air to be smoothly transmitted between the air conditioner intake pipe and the cooling pipe. The setting of flexible hoses increases the flexibility of the connection and can adapt to the connection needs of cooling pipes in different positions inside the mounting bracket. At the same time, its flexibility can absorb a certain amount of vibration and displacement, reducing the loosening of the connection caused by the vibration of the mounting bracket or pipe, thereby ensuring the stability of cooling air transmission and the reliability of the heat dissipation system.
[0023] In summary, this application has the following technical effects:
[0024] 1. By setting up a front frame, a rear frame, connecting rods, and cold air ducts, with both ends of the cold air ducts sealed and multiple air outlets connected to the interior, the rear frame ducts are connected to the air conditioning cold air ducts, allowing the air conditioning cold air to enter the mounting frame and be evenly blown to the electrical equipment inside the electrical box steel frame through the air outlets of the cold air ducts, achieving efficient cooling of the equipment. This effectively solves the problems of uneven cold air distribution and local overheating in traditional heat dissipation methods. At the same time, this structure does not require additional heat dissipation devices, reducing energy consumption. The detachable cold air ducts allow for adjustable air outlet positions, and the number and position of the cold air ducts can be flexibly adjusted according to the location of electrical equipment such as computers, improving the targeting and flexibility of heat dissipation and increasing heat dissipation efficiency.
[0025] 2. By setting the first connecting pipe, the second connecting pipe and the connecting nut, the air conditioning pipe and the mounting bracket can be detachably connected, which makes it convenient to flexibly adjust the number and position of the air conditioning pipe according to the layout of electrical equipment and heat dissipation requirements. At the same time, it facilitates the installation and maintenance of the air conditioning pipe and improves the adaptability and operability of the heat dissipation system.
[0026] 3. By setting up an air conditioning intake pipe, efficient communication between the air conditioning and the interior of the rear frame can be achieved, allowing the cold air to smoothly enter the rear frame and be distributed to each cold air pipe through its internal pipes. Then, the cold air is evenly blown to the electrical equipment inside the electrical box steel frame through the air outlet of the cold air pipe, effectively improving heat dissipation efficiency. Attached Figure Description
[0027] Figure 1 This is a structural diagram of the object of this application;
[0028] Figure 2 This is another perspective of the external structure of this application.
[0029] Explanation of reference numerals in the attached drawings: 1. Mounting bracket; 11. Front frame; 12. Rear frame; 13. Connecting rod; 14. First connecting pipe; 2. First protective plate; 3. Second protective plate; 4. Reinforcing rod; 5. Air conditioning inlet pipe; 6. Cold air duct; 61. Air outlet; 7. Connecting nut; 8. Sealing cap. Detailed Implementation
[0030] The present application will be further described in detail below with reference to the accompanying drawings.
[0031] This application discloses a steel frame structure for a computer electrical box with an integrated air conditioning heat dissipation channel, referring to... Figure 1The electrical box steel frame structure includes a vertically arranged mounting frame 1. The mounting frame 1 is used to house electrical equipment such as computers. The mounting frame 1 consists of a front frame 11, a rear frame 12, and four connecting rods 13. The front frame 11 and the rear frame 12 are both rectangular frames composed of four steel square tubes connected end to end. The front frame 11 and the rear frame 12 are arranged opposite each other, and their surfaces are parallel to each other, and their length directions are parallel to each other. The connecting rods 13 are arranged between the front frame 11 and the rear frame 12. The connecting rods 13 are square tubes, and their two ends are fixed to the opposite surfaces of the front frame 11 and the rear frame 12, respectively. The length direction of the connecting rods 13 is perpendicular to the surfaces of the front frame 11 and the rear frame 12. The same side end face of the four connecting rods 13 is fixed to the four corner surfaces of the front frame 11 or the rear frame 12, respectively. The front frame 11, the rear frame 12, and the four connecting rods 13 form a square column-shaped mounting frame 1.
[0032] Combination Figure 1 and Figure 2 The mounting frame 1 has a first protective plate 2 and a second protective plate 3 on its side wall. Both the first protective plate 2 and the second protective plate 3 are steel strip plates. The length directions of the first protective plate 2 and the second protective plate 3 are parallel to each other and are also parallel to the length direction of the front frame 11. The first protective plate 2 is located between the front frame 11 and the rear frame 12. The second protective plate 3 is adjacent to the first protective plate 2. The surface of the second protective plate 3 is fixed to the surface of the front frame 11 away from the rear frame 12. The side wall and end face of the second protective plate 3 are flush with the edge of the side wall of the front frame 11.
[0033] Combination Figure 1 and Figure 2 Two reinforcing rods 4 are inclinedly arranged between the front frame 11 and the rear frame 12. The end face of the reinforcing rod 4 is fixed to the surface of the front frame 11 or the rear frame 12 and the side wall of the connecting rod 13. The two ends of the reinforcing rod 4 are fixed to the front frame 11 and the rear frame 12 respectively. The two reinforcing rods 4 are inclined in opposite directions and are located at the two sides of the opposite surface length direction of the front frame 11 and the rear frame 12 respectively. The reinforcing rods 4 can reinforce the mounting frame 1 and improve its resistance to deformation.
[0034] Combination Figure 1 and Figure 2 An air conditioning intake pipe 5 is provided on the upper surface of the rear frame 12 away from the front frame 11. The air conditioning intake pipe 5 is far away from the first protective plate 2. The air conditioning intake pipe 5 is a square pipe. One end of the air conditioning intake pipe 5 is fixed to the rear frame 12, and the other end is processed into a round pipe head. The round pipe head facilitates connection with the air conditioning cold air pipe 6. The air conditioning intake pipe 5 is connected to the interior of the rear frame 12.
[0035] Combination Figure 1 and Figure 2Multiple first connecting pipes 14 are symmetrically arranged on both sides of the rear frame 12 away from the front frame 11 along the length direction. The first connecting pipes 14 are round pipes and are connected to the interior of the rear frame 12. The outer peripheral wall of the first connecting pipes 14 is provided with a tubular thread coaxial with it. Multiple first connecting pipes 14 on one side of the surface of the rear frame 12 are evenly spaced along the length direction of the rear frame 12.
[0036] Combination Figure 1 and Figure 2 Multiple air conditioning pipes 6 are provided on the surface of the rear frame 12 away from the front frame 11. The air conditioning pipes 6 are square tubes with closed ends. The length direction of the air conditioning pipes 6 is perpendicular to the length direction of the rear frame 12. Second connecting pipes (not shown in the figure) are provided at both ends of the side wall of the air conditioning pipes 6 facing the rear frame 12. The second connecting pipes are round tubes. The axis of the second connecting pipes is perpendicular to the side wall of the air conditioning pipes 6. The second connecting pipes are connected to the inside of the air conditioning pipes 6.
[0037] Combination Figure 1 and Figure 2 A connecting nut 7 is coaxially and rotatably mounted on the outer peripheral wall of the second connecting pipe. A first annular limiting member (not shown in the figure) is coaxially mounted on the end of the outer peripheral wall of the second connecting pipe away from the air conditioning duct 6. The surface of the first limiting member facing away from the air conditioning duct 6 is flush with the end face of the second connecting pipe. The inner peripheral wall of the first limiting member is fixedly connected to the outer peripheral wall of the second connecting pipe. The outer peripheral wall of the first limiting member slides against the inner peripheral wall of the connecting nut 7. A second annular limiting member (not shown in the figure) is coaxially mounted on the end of the inner peripheral wall of the connecting nut 7 near the air conditioning duct 6. The outer peripheral wall of the second limiting member is fixedly connected to the inner peripheral wall of the connecting nut 7. The inner peripheral wall of the second limiting member slides against the outer peripheral wall of the second connecting pipe. The adjacent surfaces of the first and second limiting members can slide against each other. The outer diameter of the first connecting pipe 14 is the same as the outer diameter of the first limiting member. The connecting nut 7 can be threadedly connected to the outer peripheral wall of the first connecting pipe 14. The second connecting pipes at both ends of the air conditioning duct 6 are detachably connected to the two first connecting pipes 14 at corresponding positions on the surface of the rear frame 12 via the connecting nut 7.
[0038] Combination Figure 1 and Figure 2 The air conditioning duct 6 is connected to the mounting bracket 1 via connecting nuts 7, facilitating the installation and removal of the air conditioning duct 6. Multiple flexible hoses with multiple ports are installed inside the rear frame 12. One end of each flexible hose connects to the end of the air conditioning intake pipe 5, and the other end connects to the first connecting pipe 14. Multiple circular air outlets 61, communicating with the interior, are opened on the side wall of the air conditioning duct 6 facing the rear frame 12. These outlets 61 are evenly spaced along the length of the air conditioning duct 6, with their axes perpendicular to the side wall. The outlets 61 provide directional airflow, with the air exiting the mounting bracket 1. Multiple air conditioning ducts 6 can be installed, allowing for adjustment of their number and position according to the location of electrical equipment such as computers, thereby improving heat dissipation efficiency.
[0039] Combination Figure 1 and Figure 2 The first connecting pipe 14, which is not connected to the air conditioning duct 6, is detachably screwed with a sealing cap 8. A sealing cap (not shown in the figure) is installed at the air outlet 61 of the air conditioning duct 6 to close the air outlet 61, which can reduce the waste of cold air. The square column-shaped mounting bracket 1 facilitates the series connection of multiple steel frames to form a distributed heat dissipation network through spliced air ducts.
[0040] This specific embodiment is merely an explanation of this application and is not intended to limit it. After reading this specification, those skilled in the art can make modifications to this embodiment without contributing any inventive step, but such modifications are protected by patent law as long as they fall within the scope of the claims of this application.
Claims
1. A steel frame structure for a computer electrical box with an integrated air conditioning heat dissipation channel, comprising a mounting frame (1), wherein the mounting frame (1) is a frame consisting of a front frame (11) and a rear frame (12) spaced apart from each other, and four connecting rods (13) located between the front frame (11) and the rear frame (12), characterized in that: The rear frame (12) is detachably connected to multiple air conditioning pipes (6) on the surface away from the front frame (11). The air conditioning pipes (6) are sealed at both ends, and multiple air outlets (61) communicating with the interior of the air conditioning pipes (6) are opened on the side wall of the rear frame (12). The rear frame (12) is connected to the air conditioning pipes (6), and the pipes of the rear frame (12) are connected to the air conditioning pipes.
2. The computer electrical box steel frame structure integrated with the air conditioner heat dissipation channel according to claim 1, characterized in that: The air conditioning duct (6) is horizontally arranged, and the two ends of the air conditioning duct (6) facing the side wall of the rear frame (12) are provided with second connecting pipes. The surface of the rear frame (12) away from the front frame (11) is provided with multiple first connecting pipes (14) corresponding to the second connecting pipes. The outer peripheral wall of the second connecting pipe is rotatably fitted with a connecting nut (7). The connecting nut (7) can be threadedly connected to the outer peripheral wall of the first connecting pipe (14). The first connecting pipe (14) and the second connecting pipe are detachably connected through the connecting nut (7).
3. The computer electrical box steel frame structure integrated with the air conditioner heat dissipation channel according to claim 1, characterized in that: An air conditioning intake pipe (5) is provided on the upper surface of the rear frame (12) away from the front frame (11), and the air conditioning intake pipe (5) is connected to the internal pipeline of the rear frame (12).
4. The computer electrical box steel frame structure integrated with the air conditioner heat dissipation channel according to claim 2, characterized in that: The air outlet (61) is a directional air outlet.
5. The computer electrical box steel frame structure integrated with the air conditioning heat dissipation channel according to claim 2, characterized in that: The first connecting pipe (14) not connected to the air conditioning duct (6) is detachably screwed with a sealing cap (8).
6. The steel frame structure of a computer electrical box with an integrated air conditioning heat dissipation channel according to claim 5, characterized in that: The air outlet (61) of the air duct (6) is equipped with a cover.
7. The computer electrical box steel frame structure integrated with the air conditioning heat dissipation channel according to claim 3, characterized in that: The air conditioning intake pipe (5) is a square pipe. One end of the air conditioning intake pipe (5) is fixed to the rear frame (12), and the other end is processed into a round pipe head.
8. The computer electrical box steel frame structure integrated with air conditioning heat dissipation channels according to claim 1, characterized in that: A flexible hose is provided inside the rear frame (12), which connects the air conditioning intake pipe (5) to the cold air pipe (6).