An industrial computer housing assembly
Through modular design and a quick disassembly and assembly mechanism that requires no special tools, the problem of high maintenance costs and difficulty in updating existing industrial control computer housing components has been solved. This enables a fast, stable disassembly and assembly process and efficient maintenance, thereby improving the operating efficiency and reliability of the industrial control system.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- TIANJIN CHENGYA TECH CO LTD
- Filing Date
- 2025-06-30
- Publication Date
- 2026-07-03
AI Technical Summary
The existing industrial control computer housing components adopt an integrated structure, which leads to high maintenance costs, difficulty in updating, and cumbersome and time-consuming disassembly and assembly, affecting the operating efficiency and reliability of the industrial control system.
The modular design divides the industrial computer housing into independent modules such as the housing, base plate, and side plates. Quick assembly and disassembly are achieved through detachable connection mechanisms such as locking rods and locking sleeves. A quick disassembly and assembly mechanism without the need for professional tools is also designed, and frictional resistance is reduced by using hemispherical locking blocks and rounded corner structures.
Significantly reduces maintenance costs and update difficulty, improves the operating efficiency and reliability of industrial control systems, shortens downtime, enhances scalability and compatibility, and ensures stability and safety during rapid disassembly and assembly.
Smart Images

Figure CN224457305U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of industrial control computer housing components, and more specifically, it relates to an industrial control computer housing component. Background Technology
[0002] In the existing technological field, industrial control computer housings, as important protective structural components in industrial control systems, play an irreplaceable role in ensuring the safe operation of internal electronic components, preventing dust and moisture, resisting interference, and dissipating heat. However, most existing industrial control computer housings adopt an integrated structural design. While this one-piece molding technology has certain advantages in terms of overall strength and sealing, it also has many technical limitations and practical defects. Due to the inherent characteristics of the integrated structure, there is a lack of necessary modular division and independent design between functional components. This makes it impossible to easily disassemble the component when a part fails or needs to be upgraded or replaced. This design concept not only greatly increases maintenance costs and update difficulty, but also greatly prolongs the downtime of equipment maintenance and reduces the operating efficiency and reliability of the industrial control system.
[0003] Secondly, the assembly and disassembly of industrial control computer (ICC) housing components in existing technologies are typically quite cumbersome. During the installation and maintenance of traditional ICC housings, technicians need to use a variety of specialized tools, including but not limited to screwdrivers, wrenches, Allen wrenches, snap ring pliers, and specialized disassembly tools of various sizes. These tools often need to be frequently changed depending on the screw specifications and fastener types. Furthermore, due to the limited internal space of ICCs, many connection points are poorly designed, requiring maintenance personnel to perform precise operations in confined spaces, increasing the difficulty of operation and hand fatigue. This cumbersome and time-consuming process not only consumes significant manpower and time resources but also carries the risk of damage to housing components or internal parts due to operational errors, increasing maintenance risks and additional costs. In emergency fault handling and on-site repairs, the complex disassembly procedures become a key bottleneck affecting repair efficiency and equipment recovery, severely impacting the maintainability and service response speed of the industrial control system. Utility Model Content
[0004] (a) Technical problems to be solved
[0005] In view of the problems existing in the prior art, this utility model provides an industrial control computer housing assembly to solve the technical problems mentioned in the background art.
[0006] (II) Technical Solution
[0007] To achieve the above objectives, this utility model provides the following technical solution: an industrial control computer housing assembly, including a housing, a detachable base plate at the bottom of the housing, a detachable side plate on one side of the housing, a detachable locking sleeve on the outer side of the housing, a detachable locking rod on the inner side of the locking sleeve, the locking rod being fixedly disposed on the inner side of the housing, a top block being fixedly connected to one end of the locking rod, a locking groove being formed between the top block and the locking rod, a locking block being detachably disposed in the locking groove, an adapter plate being connected to one end of the locking block, a clearance groove being formed on the outer side of the locking sleeve, an adapter spring being movably disposed on the inner side of the clearance groove, the two ends of the adapter spring being respectively connected to the adapter plate and the inner wall of the clearance groove, an adapter sleeve being rotatably disposed on the outer side of the locking sleeve, an adapter groove being formed on the side wall of the adapter sleeve, a rotating groove being formed on the outer side of the locking sleeve, a rotating block being fixedly disposed on the inner side of the adapter sleeve, and the rotating block being movably disposed in the rotating groove.
[0008] The present invention is further configured such that a connecting frame is provided on the inner side of the outer shell, and the two sides of the connecting frame are detachably connected to the bottom plate and the side plate respectively. Some of the locking rods are fixedly connected to the two sides of the connecting frame. By setting the connecting frame as an intermediate connecting structure on the inner side of the outer shell, a bidirectional detachable connection between the bottom plate and the side plate is realized, forming a stable three-point support structure system. At the same time, the locking rods fixedly connected to the two sides of the connecting frame provide accurate positioning and reliable connection points for the bottom plate and the side plate, ensuring the positional accuracy and connection stability between the components during the assembly and disassembly process.
[0009] The present invention is further configured such that a base is fixedly provided below the base plate, and a plug assembly is detachably provided on one side of the housing. By setting a fixed base below the base plate, a stable support function for the industrial control computer is provided. At the same time, the detachable plug assembly on one side of the housing realizes modular management and flexible configuration of the interface, allowing users to quickly replace different types and quantities of interface modules according to actual application needs without replacing the entire housing structure, which significantly improves the adaptability and expandability of the industrial control computer.
[0010] The present invention is further configured such that heat dissipation grooves are symmetrically provided on both sides of the outer shell. By symmetrically providing heat dissipation grooves on both sides of the outer shell, an effective air circulation channel is formed, and a scientific hot airflow guidance path is established. This ensures that air can enter from one side, pass through the internal heat source area, and be discharged from the other side, thereby achieving efficient heat dissipation and temperature control of the internal electronic components. This effectively solves the problem of excessive internal temperature and local hot spots caused by long-term operation of traditional industrial control computers, and significantly improves the stability of the system and the service life of the components.
[0011] The present invention is further configured such that a fan assembly is detachably provided on the inner side of the housing. By providing a detachable fan assembly on the inner side of the housing, an organic combination of active heat dissipation and natural heat dissipation is achieved. The detachable design of the fan assembly allows maintenance personnel to clean or replace the fan directly without disassembling the entire housing.
[0012] The present invention is further provided with a detachable handle on one side of the side plate. By providing a detachable handle on one side of the side plate, a convenient gripping point is provided for the handling and installation of the industrial control computer, enabling operators to safely and easily handle and position the equipment.
[0013] The present invention is further configured such that one end of the locking block adopts a hemispherical structure design, the locking groove is adapted to one end of the locking block, and the inner wall edge of the locking groove adopts a rounded corner structure design, and one end of the top block adopts a chamfered structure design. Through the cooperation between the hemispherical structure design of one end of the locking block and the rounded corner structure of the inner wall of the locking groove, a smooth transition and self-guiding function are realized in the locking block during the locking and unlocking process, which greatly reduces the operating resistance and wear degree in the locking process. At the same time, the chamfered structure of one end of the top block further optimizes the assembly guidance effect.
[0014] The present invention is further configured such that a rotating plate is fixedly connected to one end of the adapter, thereby forming a rotating handle structure that is easy to operate, so that the operator does not need to use any additional tools. The design of the rotating plate provides a larger operating lever arm and a more comfortable operating feel.
[0015] (III) Beneficial Effects
[0016] Compared with the prior art, the present invention provides an industrial control computer housing assembly, which has the following advantages:
[0017] 1. By employing a modular design for components such as the base plate, outer shell, side plates, and connecting frames, this invention overcomes the significant technical deficiency of existing industrial computer housings, which are mostly designed as integrated structures. This utility model adopts a modular design concept, dividing the industrial computer housing into multiple independent functional modules such as the outer shell, base plate, and side plates. These modules are quickly assembled and disassembled via detachable connecting mechanisms such as locking rods, locking sleeves, and locking blocks. This modular design allows for easy disassembly of the outer shell and side plates when a part malfunctions or needs upgrading or replacement, significantly reducing maintenance costs and update difficulty, shortening equipment downtime, and improving the operating efficiency and reliability of the industrial control system. Furthermore, the modular structure design greatly enhances the expandability and compatibility of the industrial computer, enabling users to flexibly adjust component configurations according to different application scenarios and functional requirements. For example, different specifications of connector components can be replaced according to interface requirements, effectively adapting to the increasingly diversified and personalized development trend of industrial automation systems and improving the technological innovation and market competitiveness of industrial computer products.
[0018] 2. By employing a hemispherical structure design at one end of the locking block, and a rounded corner design at the inner edge of the locking groove, and a chamfered design at one end of the top block, this invention completely solves the major technical defect of cumbersome assembly and disassembly of industrial control computer housing components in existing technologies. This invention innovatively designs a quick assembly and disassembly mechanism that requires no professional tools. Through simple rotation and pulling operations, the linkage structure of the adapter and the adapter groove enables rapid release and locking of the locking block. The entire assembly and disassembly process of the industrial control computer housing component can be completed with simple rotation and insertion operations, eliminating the need for various sizes of screwdrivers, wrenches, Allen wrenches, snap ring pliers, and other professional tools. The hemispherical design of the locking block combined with the rounded corner structure of the inner wall of the locking groove greatly reduces friction during the locking process. The friction resistance allows the locking block to slide smoothly into and out of the locking slot, ensuring the smoothness and stability of the disassembly and assembly operations. The chamfered design at one end of the top block further optimizes the guiding effect during the assembly process, greatly reducing the difficulty of operation. This user-friendly structural design allows maintenance personnel to quickly complete disassembly and assembly operations even in situations where the internal space of the industrial control computer is limited, significantly reducing the difficulty of operation and hand fatigue. At the same time, the locking connection mechanism replaces the traditional method of connecting with multiple screws of different specifications, eliminating the need for frequent tool changes and greatly reducing the risk of damage to the outer casing or internal components due to operational errors. Especially in emergency fault handling and on-site maintenance, this quick disassembly and assembly mechanism can complete the disassembly and assembly work that originally took half an hour or even longer in a few minutes, greatly improving the maintainability and service response speed of the industrial control system and providing a solid guarantee for the continuity and stability of industrial automated production. Attached Figure Description
[0019] Figure 1 This is a schematic diagram of the overall structure of an industrial control computer housing assembly according to the present invention;
[0020] Figure 2 This is a cross-sectional schematic diagram of the dispersed structure of the part in this utility model with the retaining sleeve and retaining rod removed;
[0021] Figure 3 This is a cross-sectional structural diagram of the locking sleeve, locking rod, locking block and matching parts in this utility model;
[0022] Figure 4 This is a schematic diagram of the dispersed structure of the locking sleeve, locking rod, locking block and matching parts in this utility model;
[0023] Figure 5 This is a cross-sectional view of the locking sleeve, locking rod, locking block, and matching parts of this utility model from a second angle.
[0024] In the diagram: 1. Outer shell; 2. Base plate; 3. Side plate; 4. Locking sleeve; 5. Locking rod; 6. Top block; 7. Locking groove; 8. Locking block; 9. Adapter plate; 10. Clearance groove; 11. Adapter spring; 12. Adapter sleeve; 13. Adapter groove; 14. Rotating groove; 15. Rotating block; 16. Connecting bracket; 17. Base; 18. Socket assembly; 19. Heat dissipation groove; 20. Fan assembly; 21. Handle; 22. Rotating plate. Detailed Implementation
[0025] It should be noted that, unless otherwise specified, the embodiments and features described in this application can be combined with each other. The present invention will now be described in detail with reference to the accompanying drawings and embodiments.
[0026] It should be noted that, unless otherwise specified, all technical and scientific terms used in this application have the same meaning as commonly understood by one of ordinary skill in the art to which this application pertains.
[0027] In this utility model, unless otherwise stated, the orientations used, such as "up" and "down", usually refer to the direction shown in the accompanying drawings, or to the vertical, perpendicular, or gravitational direction; similarly, for ease of understanding and description, "left" and "right" usually refer to the left and right shown in the accompanying drawings; "inner" and "outer" refer to the inner and outer contours of each component itself, but the above directional terms are not used to limit this utility model.
[0028] Please see Figures 1-5An industrial control computer housing assembly includes a housing 1, a detachable base plate 2 at the bottom of the housing 1, a detachable side plate 3 on one side of the housing 1, a detachable locking sleeve 4 on the outer side of the housing 1, a detachable locking rod 5 on the inner side of the locking sleeve 4, the locking rod 5 being fixedly disposed on the inner side of the housing 1, a top block 6 being fixedly connected to one end of the locking rod 5, a locking groove 7 being formed between the top block 6 and the locking rod 5, a detachable locking block 8 being disposed in the locking groove 7, an adapter plate 9 being connected to one end of the locking block 8, a clearance groove 10 being formed on the outer side of the locking sleeve 4, an adapter spring 11 being movably disposed on the inner side of the clearance groove 10, the two ends of the adapter spring 11 being connected to the adapter plate 9 and the inner wall of the clearance groove 10 respectively, an adapter 12 being rotatably disposed on the outer side of the locking sleeve 4, an adapter groove 13 being formed on the side wall of the adapter 12, a rotating groove 14 being formed on the outer side of the locking sleeve 4, a rotating block 15 being fixedly disposed on the inner side of the adapter 12, and the rotating block 15 being movably disposed in the rotating groove 14.
[0029] The inner side of the outer casing 1 is provided with a connecting frame 16. The two sides of the connecting frame 16 are detachably connected to the bottom plate 2 and the side plate 3 respectively. Some of the locking rods 5 are fixedly connected to the two sides of the connecting frame 16.
[0030] A base 17 is fixedly installed below the base plate 2, and a socket assembly 18 is detachably installed on one side of the outer shell 1.
[0031] The outer casing 1 has symmetrical heat dissipation slots 19 on both sides.
[0032] A fan assembly 20 is detachably provided on the inside of the housing 1.
[0033] A handle 21 is detachably provided on one side of the side panel 3.
[0034] In this embodiment, when the device needs to be assembled, the connector assembly 18 is first detachably installed on the back side of the housing 1. Then, the fan assembly 20 is installed inside the housing 1, and the fan assembly 20 is aligned with the heat dissipation slot 19 on one side of the housing 1. Then, one side of the connecting bracket 16 is detachably connected to the base plate 2. Then, other peripheral components that need to be installed can be installed on one side of the base plate 2 and inside the housing 1, avoiding interference in the installation position. Then, the base plate 2 is detachably installed on the lower side of the housing 1. Then, one side of the side plate 3 is detachably connected to the connecting bracket 16. Then, the side plate 3 is detachably connected to one side of the housing 1, thereby completing the assembly of the industrial control computer housing 1. When active cooling is required, the fan assembly 20 is turned on. The fan assembly 20 starts, allowing outside air to enter the inside of the housing 1 through one side heat dissipation slot 19. Then, carrying the heat and air inside the housing 1, it is blown out from the heat dissipation slot 19 on the other side of the housing 1, realizing effective air circulation and ensuring the heat dissipation effect.
[0035] Please see Figures 3-5As a further implementation of the overall equipment: one end of the locking block 8 adopts a hemispherical structure design, the locking groove 7 is adapted to one end of the locking block 8, and the inner wall edge of the locking groove 7 adopts a rounded corner structure design, and one end of the top block 6 adopts a chamfered structure design.
[0036] The adapter 12 is fixedly connected to a rotating plate 22 at one end.
[0037] More specifically, when internal components require maintenance, the outer shell 1, base plate 2, or even side plate 3 can be disassembled as needed. First, rotate the rotating plate 22 forward, causing the adapter 12 to rotate. Then, the adapter 12 will rotate the adapter slot 13, and simultaneously, the adapter 12 will rotate the inner rotating block 15 in the rotating slot 14. When the rotating block 15 rotates to the other end of the rotating slot 14, the adapter 12 and the rotating plate 22 can no longer rotate, and the adapter 12 will then move the adapter slot 13 to the position corresponding to the adapter plate 9. At this point, the outer wall of the adapter plate 9 is no longer limited by the inner wall of the adapter 12. Then, the locking sleeve 4 is pulled to one side, causing the locking sleeve 4 to move the locking block 8. As the components move, the inner wall of the locking groove 7 presses against one end of the locking block 8. Due to the hemispherical structure of one end of the locking block 8 and the rounded corners of the inner wall of the locking groove 7, the locking groove 7 presses against the locking block 8, causing the locking block 8 to slide out of the locking groove 7. The locking block 8 will then drive the adapter plate 9 to slide outward, allowing the adapter plate 9 to pass through the adapter groove 13 and move to the outside of the adapter 12. At the same time, the adapter plate 9 will drive multiple adapter springs 11 to stretch outward. After the locking sleeve 4 is completely removed from the outside of the locking rod 5, the adapter springs 11 pull the adapter plate 9 and the locking block 8 to slide inward and reset. Then, following the above steps, remove the locking sleeves 4 in other corresponding positions, and then remove the side plate 3. Then, the outer shell 1 can be removed from the base plate 2. The components installed on the inner side of the outer shell 1 and on the base plate 2 can then be disassembled, repaired, maintained, or even replaced. After maintenance or replacement, the outer shell 1 is reinstalled onto the base plate 2, ensuring that the locking rod 5, which is fixedly connected to the outer shell 1, passes through the pre-drilled mounting hole on the base plate 2. Then, the locking sleeve 4 is fitted from the underside of the base plate 2 to the outside of the locking rod 5. During this fitting process, the chamfered outer wall of one end of the top block 6 pushes the locking block 8 outwards, causing the locking block 8 to slide the adapter plate 9 outwards again. The adapter plate 9 then pulls the adapter spring 11 outwards again. When the locking sleeve 4 is fully fitted to the outside of the locking rod 5, the locking block 8 aligns with the locking groove 7. Then, the adapter spring 1... 1. Pull the adapter plate 9 inward to slide it, so that the adapter spring 11 retracts into the relief groove 10. The adapter plate 9 will also cause one end of the locking block 8 to re-lock into the locking groove 7. Then, rotate the rotating plate 22 in the opposite direction, so that the rotating plate 22 causes the adapter 12 to rotate in the opposite direction. The adapter 12 will also cause the inner rotating block 15 to rotate in the opposite direction along the rotating groove 14. When the rotating block 15 moves to the original end of the rotating groove 14, the rotating plate 22 and the adapter 12 rotate and reset. The adapter groove rotates to a position that does not correspond to the adapter plate 9, so that the inner wall of the adapter 12 limits the outer wall of the adapter plate 9 to prevent accidental unlocking. This realizes the installation of the locking sleeve 4. Then, the other locking sleeves 4 are installed to complete the assembly work.
[0038] In summary, when using or operating the overall equipment: When assembly is required, firstly, the connector assembly 18 is detachably installed on the back of the housing 1. Then, the fan assembly 20 is installed inside the housing 1, aligning the fan assembly 20 with the heat dissipation slot 19 on one side of the housing 1. Next, one side of the connecting bracket 16 is detachably connected to the base plate 2. Then, other peripheral components that need to be installed can be installed on one side of the base plate 2 and inside the housing 1, avoiding interference in the installation position. Then, the base plate 2 is detachably installed on the lower side of the housing 1. Next, one side of the side plate 3 is detachably connected to the connecting bracket 16, and then the side plate 3 is detachably connected to one side of the housing 1, thus completing the assembly of the industrial control computer housing 1. When active cooling is required, the fan assembly 20 is turned on, allowing outside air to enter the inside of the housing 1 through one side heat dissipation slot 19. Then, carrying the heat and air inside the housing 1, it is blown out through the heat dissipation slot 19 on the other side of the housing 1, achieving effective air circulation and ensuring heat dissipation.
[0039] When internal component maintenance is required, the outer shell 1, base plate 2, or even side plate 3 can be disassembled as needed. First, rotate the rotating plate 22 clockwise, causing the adapter 12 to rotate. Then, the adapter 12 will cause the adapter slot 13 to rotate, and simultaneously, the adapter 12 will cause the inner rotating block 15 to rotate in the rotating slot 14. When the rotating block 15 rotates to the other end of the rotating slot 14, the adapter 12 and the rotating plate 22 can no longer rotate, and the adapter 12 will then move the adapter slot 13 to the position corresponding to the adapter plate 9. At this point, the outer wall of the adapter plate 9 is no longer limited by the inner wall of the adapter 12. Then, the locking sleeve 4 is pulled to one side, causing the locking sleeve 4 to move the locking block 8 and other components. The movement causes the inner wall of the locking groove 7 to press against one end of the locking block 8. Due to the hemispherical structure design of one end of the locking block 8 and the rounded corner design of the inner wall of the locking groove 7, the locking groove 7 presses against the locking block 8, causing the locking block 8 to slide out of the locking groove 7. The locking block 8 will also drive the adapter plate 9 to slide outward, so that the adapter plate 9 passes through the adapter groove 13 and moves to the outside of the adapter 12. At the same time, the adapter plate 9 will drive multiple adapter springs 11 to stretch outward. After the locking sleeve 4 is completely removed from the outside of the locking rod 5, the adapter springs 11 pull the adapter plate 9 and the locking block 8 to slide inward and reset. Then, follow the above steps to remove the locking sleeves 4 in other corresponding positions, and then remove the side plate 3. The outer casing 1 can be removed from the base plate 2, allowing for the disassembly, maintenance, and even replacement of components mounted on the inner side of the outer casing 1 and the base plate 2. After maintenance or replacement, the outer casing 1 is reinstalled onto the base plate 2, with the locking rod 5, which is fixedly connected to the outer casing 1, passing through the pre-drilled mounting hole on the base plate 2. Then, the locking sleeve 4 is fitted from the underside of the base plate 2 to the outside of the locking rod 5. During this fitting process, the chamfered outer wall of one end of the top block 6 pushes the locking block 8 outward, causing the locking block 8 to slide the adapter plate 9 outward again. The adapter plate 9 then pulls the adapter spring 11 outward again. When the locking sleeve 4 is fully fitted to the outside of the locking rod 5, the locking block 8 aligns with the locking groove 7, and then the adapter spring 11... Pull the adapter plate 9 inward to slide it, so that the adapter spring 11 retracts into the clearance groove 10. The adapter plate 9 will also cause one end of the locking block 8 to re-lock into the locking groove 7. Then rotate the rotating plate 22 in the opposite direction, so that the rotating plate 22 causes the adapter 12 to rotate in the opposite direction. The adapter 12 will also cause the inner rotating block 15 to rotate in the opposite direction along the rotating groove 14. When the rotating block 15 moves to the original end of the rotating groove 14, the rotating plate 22 and the adapter 12 rotate to reset. The adapter groove rotates to a position that does not correspond to the adapter plate 9, so that the inner wall of the adapter 12 limits the outer wall of the adapter plate 9 to prevent accidental unlocking. This realizes the installation of the locking sleeve 4. Then, the other locking sleeves 4 are installed to complete the assembly work.
[0040] Of all the solutions mentioned above, those involving the connection between two components can be selected according to the actual situation, such as welding, bolt and nut connection, bolt or screw connection, or other known connection methods, which will not be elaborated here. For all the fixed connections mentioned above, welding is preferred. Although embodiments of this utility model have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of this utility model. The scope of this utility model is defined by the appended claims and their equivalents.
Claims
1. An industrial computer housing assembly comprising a housing (1), characterised in that: A bottom plate (2) is detachably provided below the outer shell (1). A side plate (3) is detachably provided on one side of the outer shell (1). A retaining sleeve (4) is detachably provided on the outer side of the outer shell (1). A retaining rod (5) is detachably provided on the inner side of the retaining sleeve (4). The retaining rod (5) is fixedly provided on the inner side of the outer shell (1). A top block (6) is fixedly connected to one end of the retaining rod (5). A retaining groove (7) is provided between the top block (6) and the retaining rod (5). A retaining block (8) is detachably provided in the retaining groove (7). A suitable... The fitting plate (9) has a relief groove (10) on the outside of the locking sleeve (4). The relief groove (10) has an adapter spring (11) that is movably provided on the inside. The two ends of the adapter spring (11) are connected to the inner wall of the fitting plate (9) and the relief groove (10) respectively. The locking sleeve (4) has an adapter (12) that is rotatably provided on the outside. The adapter (12) has an adapter groove (13) on the side wall. The locking sleeve (4) has a rotating groove (14) on the outside. The adapter (12) has a rotating block (15) that is fixedly provided on the inside. The rotating block (15) is movably located in the rotating groove (14).
2. An industrial computer housing assembly as defined in claim 1 wherein: The inner side of the outer shell (1) is provided with a connecting frame (16), and the two sides of the connecting frame (16) are detachably connected to the bottom plate (2) and the side plate (3) respectively. Some of the clamping rods (5) are fixedly connected to the two sides of the connecting frame (16).
3. An industrial computer housing assembly as defined in claim 2 wherein: A base (17) is fixedly provided below the base plate (2), and a socket assembly (18) is detachably provided on one side of the outer shell (1).
4. An industrial computer housing assembly as defined in claim 3 wherein: The outer shell (1) has symmetrical heat dissipation grooves (19) on both sides.
5. An industrial computer housing assembly as defined in claim 4 wherein: The fan assembly (20) is detachably provided on the inner side of the housing (1).
6. An industrial computer housing assembly as claimed in claim 5, wherein: The side panel (3) has a detachable handle (21) on one side.
7. An industrial computer housing assembly according to any of claims 1-6, characterized in that: The locking block (8) adopts a hemispherical structure design at one end, the locking groove (7) is adapted to one end of the locking block (8), and the inner wall edge of the locking groove (7) adopts a rounded corner structure design, and the top block (6) adopts a chamfered structure design at one end.
8. An industrial computer housing assembly according to claim 7, wherein: The adapter (12) is fixedly connected to a rotating plate (22) at one end.