Built-in network cabinet architecture of layered partition type data machine room

By employing a layered partition design and a card slot structure, the problem of rapid deployment and flexible assembly of network cabinets in data centers has been solved, enabling convenient installation and efficient management, and improving the space utilization and operation and maintenance efficiency of data centers.

CN224124417UActive Publication Date: 2026-04-14AEROSPACE HAIYING SAFETY TECH ENG CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-29
Publication Date
2026-04-14

AI Technical Summary

Technical Problem

The welding process for existing network cabinets in data centers is complex and cannot meet the needs for rapid deployment and flexible assembly, resulting in low assembly efficiency and increased labor costs.

Method used

It adopts a layered partition design, which allows for quick insertion and release of the plug slots via the clips. Combined with the sliding structure of the movable plate and slots, it simplifies the installation process and enables convenient disassembly through bolt connections. The multi-layer layout using tripods and partitions improves space utilization.

Benefits of technology

It enables rapid deployment and flexible assembly of network cabinets, reduces assembly complexity and labor costs, improves space utilization and equipment management efficiency, and enhances the convenience of cable management and maintenance.

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Abstract

The utility model relates to the technical field of network cabinets, in particular to a built-in network cabinet framework of a layered partition type data machine room, which comprises two end plate assemblies. Clamping heads are fixed to the two ends of the two opposite end faces of the two movable plates, and the clamping heads penetrate into the inserting grooves. A clamping groove is formed in one side wall of each inserting block, and the clamping heads are clamped and matched with the corresponding clamping grooves and limit the inserting blocks in the inserting grooves; by arranging a matching structure of the slidable movable plate, the clamping head, the inserting groove, the inserting block and the clamping groove, welding equipment does not need to be used, the connecting base and the supporting plate can be driven to drive the movable plate to slide by rotating the adjusting screw, the clamping head is rapidly clamped into or separated from the clamping groove of the inserting block, all the parts are convenient to mount and dismount through the design, the assembling complexity is reduced, and the assembling efficiency is improved. The assembling efficiency is improved, the engineering time and the labor cost are reduced, and the requirements for rapid deployment and flexible assembly of the network cabinets in the data machine room are met.
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Description

Technical Field

[0001] This utility model relates to the field of network cabinet technology, specifically to a layered partitioned data center built-in network cabinet architecture. Background Technology

[0002] With the sweeping wave of digitalization, data centers, as a critical infrastructure of the information age, are becoming increasingly important. Data centers bear the heavy responsibility of data storage, processing, and transmission, serving as a support platform for enterprise operations and management, as well as the development of advanced technologies. They are widely used in finance, healthcare, education, government, and many other fields. The built-in network rack architecture, as the core component of a data center, must accommodate various critical hardware such as servers, network equipment, and storage devices to achieve high-speed data interaction and stable processing.

[0003] Utility model patent application number CN202322909802.1 discloses a network cabinet. The network cabinet includes a frame welding assembly and a cabinet door. The cabinet door is hinged to the frame welding assembly. The frame welding assembly includes a base plate, uprights, and a top plate. The base plate has multiple first slots, and the top plate has second slots corresponding to the first slots. The two ends of the uprights are respectively inserted into the first and second slots. The base plate, uprights, and top plate form a frame, and the uprights are welded to the base and top plates. This network cabinet, by setting multiple first slots on the base plate and second slots on the top plate corresponding to the first slots, and inserting the two ends of the uprights into the first and second slots, and welding the uprights to the base and top plates, adopts a method of splicing before welding. The uprights can be quickly positioned by inserting them into the slots of the top and bottom plates. Welding after positioning eliminates the time required for positioning each upright during direct welding, shortening the working time and improving welding quality and efficiency.

[0004] Although the network cabinet employs a pre-assembly and post-welding method, which improves welding quality and efficiency, the device still presents the following problems in practical use: the welding process not only relies on specialized equipment and operators, but also involves complex equipment handling and debugging procedures during on-site construction. Furthermore, within the compact space of the data center, welding operations are easily constrained by the environment, making it difficult to meet the needs of rapid deployment and flexible assembly. This traditional installation method results in low assembly efficiency, increasing project time and labor costs. Therefore, we propose a layered, partitioned data center-integrated network cabinet architecture. Utility Model Content

[0005] This utility model aims to at least partially solve one of the technical problems in related technologies. Therefore, one objective of this utility model is to propose a layered, partitioned data center built-in network cabinet architecture, which allows for quick insertion and removal of components via locking clips, facilitating easy installation and disassembly and reducing assembly complexity.

[0006] To achieve the above objectives, this utility model provides the following technical solution:

[0007] The layered, partitioned data center with built-in network cabinet architecture includes:

[0008] Two end plate assemblies are arranged symmetrically. Each end plate has a fixed base on its two opposite ends. Each fixed base has a mounting groove on its two opposite ends and a slot at each of its four corners. Two symmetrical movable plates are slidably installed in the mounting grooves. Each movable plate has a locking head at its two opposite ends, which inserts into the slot. Two springs are provided on the left and right sides of the mounting grooves to hold the movable plates in place.

[0009] A connecting seat is rotatably installed at the center of the mounting slot. Both ends of the connecting seat are provided with connecting slots. Support plates are hinged to the connecting slots. Hinge seats are hinged to the ends of the support plates. The hinge seats are fixedly connected to the corresponding movable plates.

[0010] Four pillars are fixedly installed at the four corners between two fixed bases; each pillar has a plug at both the top and bottom, which is engaged with the corresponding slot. Each plug has a slot on one side wall, and the locking head engages with the corresponding slot to confine the plug within the slot.

[0011] In addition, the layered partitioned data center with built-in network cabinet architecture proposed in the application may also have the following additional technical features:

[0012] Specifically, two guide rods are fixedly connected in the mounting groove by bolts, a spring is sleeved on the outside of the guide rod, the guide rod passes through the movable plate and is slidably connected to the movable plate, and a limit ring is fixed coaxially in the middle of the guide rod;

[0013] In this setup, the guide rod serves to guide the horizontal movement of the movable plate.

[0014] Specifically, a drive shaft is coaxially keyed at the bottom center of the connecting seat, the drive shaft passes through the fixed seat and is rotatably connected to the fixed seat, and an adjusting screw is coaxially keyed at the end of the drive shaft;

[0015] Specifically, the adjusting screw has an overall cylindrical shape, and the outer wall of the adjusting screw is provided with multiple anti-slip grooves.

[0016] With these two settings, the installation and disassembly of the cabinet components can be completed simply by manually turning the adjustment screw, which improves the convenience of operation and saves assembly time and labor costs.

[0017] Specifically, the movable plate and the clamping head are integrally formed, and the outer wall of the clamping head has a beveled surface;

[0018] In this design, the one-piece molding process ensures the connection strength between the movable plate and the clamp, while the beveled design improves the ease of installation.

[0019] Specifically, the support column and the insert block are integrally formed, and the insert block is perpendicular to the support column;

[0020] In this design, the one-piece molded structure increases the reliability of the connection between the support column and the insert.

[0021] Specifically, a tripod is fixed between the two fixed seats near the four corners, and multiple partitions are fixed to the tripods from top to bottom;

[0022] Specifically, the end of the tripod is fixedly connected to the fixed base by bolts, and the partition is fixedly connected to the tripod by bolts.

[0023] In both of these setups, the multi-layered partitions create multiple independent equipment installation areas, facilitating the classification, arrangement, and management of network devices with different functions.

[0024] Compared with the prior art, the beneficial effects of this utility model are as follows:

[0025] 1. By setting up a sliding movable plate and a matching structure with the card head, slot, plug and card slot, no welding equipment is needed. The connecting seat and support plate can be driven to slide by rotating the adjusting screw, so that the card head can quickly engage or disengage from the plug and card slot. This design makes the installation and disassembly of each component convenient, reduces the complexity of assembly, improves the assembly efficiency, reduces the engineering time and labor costs, and meets the needs of rapid deployment and flexible assembly of network cabinets in data centers.

[0026] 2. By using tripods and partitions, the vertical space of the data center can be fully utilized to achieve a layered layout of network cabinets, improving space utilization. The tripods are bolted together to securely connect to the mounting bases and partitions, which not only facilitates installation and disassembly but also enhances the overall structural stability and load-bearing capacity. The multi-layered partitions form multiple independent equipment installation areas, facilitating the classification, arrangement, and management of network devices with different functions. This makes the data center cabling more organized, effectively improving the problem of chaotic cable management within the data center. It also facilitates maintenance personnel in quickly locating and repairing equipment, improving the convenience and efficiency of data center operation and maintenance. Attached Figure Description

[0027] Figure 1 This is a schematic diagram of the overall structure of this utility model;

[0028] Figure 2 This is a schematic diagram of the overall exploded structure of this utility model;

[0029] Figure 3This is an exploded view of the mid-end plate assembly of this utility model;

[0030] Figure 4 This is one of the partial structural schematic diagrams of the mid-end plate assembly of this utility model;

[0031] Figure 5 This is the second partial structural schematic diagram of the mid-end plate assembly of this utility model;

[0032] In the picture:

[0033] 1. End plate assembly; 10. End plate; 11. Fixing base; 110. Mounting groove; 111. Slot; 12. Guide rod; 120. Limiting ring; 13. Movable plate; 14. Clip; 140. Inclined surface; 15. Connecting base; 150. Connecting groove; 16. Adjusting screw; 17. Support plate; 18. Hinge; 19. Spring;

[0034] 2. Support column; 20. Insert block; 200. Slot;

[0035] 3. Tripod;

[0036] 4. Partition. Detailed Implementation

[0037] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings. 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.

[0038] This embodiment provides a technical solution:

[0039] Please see Figures 1-5As shown, the layered partitioned data center with built-in network cabinet architecture includes: two end plate assemblies 1, symmetrically arranged; each end plate 10 has a fixing seat 11 fixed to one of its two opposite ends; each fixing seat 11 has a mounting groove 110 on one of its two opposite ends, and slots 111 at each of its four corners; two symmetrical movable plates 13 are slidably installed in the mounting grooves 110. Two opposing end faces of plate 13 are each fixed with a clip 14, which is inserted into the slot 111. Two springs 19 are provided on the left and right sides of the mounting groove 110 to abut against the movable plate 13. A connecting seat 15 is rotatably installed at the center of the mounting groove 110. Both ends of the connecting seat 15 are provided with connecting grooves 150. A support plate 17 is hinged to the connecting groove 150. A hinge seat 18 is hinged to the end of the support plate 17. The hinge seat 18 is fixedly connected to the corresponding movable plate 13.

[0040] With the above configuration, the symmetrically arranged end plate assembly 1 and the fixed connection between the end plate 10 and the fixed base 11 provide a stable foundation. The movable plate 13 and the locking head 14, which are slidably installed in the mounting groove 110, cooperate with the slot 111 to achieve quick positioning and initial fixation, facilitating subsequent assembly. The linkage structure composed of the connecting base 15, the support plate 17 and the hinge base 18 allows the movable plate 13 to slide by rotating the connecting base 15, so that the locking head 14 can be accurately engaged in the slot 111 without the need for complicated tools, thus simplifying the installation process.

[0041] Understandably, the end plate 10 and the mounting base 11 are fixedly connected by bolts, a connection method with significant advantages. On the one hand, bolted connections are simple to operate, requiring no complex processes or specialized equipment; installers can quickly complete the assembly using conventional tools, shortening the construction cycle. On the other hand, this connection method offers good disassembly; when the cabinet is partially damaged or the layout needs to be adjusted, the bolts can be easily removed to replace or repair the end plate 10 or the mounting base 11, effectively reducing maintenance difficulty and costs, while also facilitating the transportation and storage of the cabinet.

[0042] Please see Figure 3 As shown, in this embodiment, two guide rods 12 are fixedly connected to the mounting groove 110 by bolts. A spring 19 is sleeved on the outside of the guide rods 12. The guide rods 12 pass through the movable plate 13 and are slidably connected to the movable plate 13. A limit ring 120 is coaxially fixed in the middle of the guide rods 12. The guide rods 12 provide guidance and limit for the movable plate 13, preventing displacement during sliding and ensuring accurate engagement between the clamp head 14 and the slot 111 and the slot 200, thus improving assembly accuracy. The limit ring 120 limits the spring 19.

[0043] In this embodiment, a drive shaft is coaxially keyed to the bottom center of the connecting seat 15. The drive shaft passes through the fixed seat 11 and is rotatably connected to the fixed seat 11. An adjusting screw 16 is coaxially keyed to the end of the drive shaft. By rotating the adjusting screw 16, the connecting seat 15 can be rotated, thereby adjusting the position of the movable plate 13, which is convenient to operate.

[0044] In this embodiment, the adjusting screw 16 is cylindrical in shape, and its outer wall is provided with multiple anti-slip grooves. The anti-slip groove design of the adjusting screw 16 increases friction and facilitates precise force application and adjustment.

[0045] In this embodiment, the movable plate 13 and the latch 14 are integrally formed, and the outer wall of the latch 14 has a bevel 140. The integrally formed movable plate 13 and latch 14 have better connection strength, ensuring the reliable connection between the movable plate 13 and the latch 14, and ensuring the limiting effect of the latch 14 on the insertion block 20. The bevel 140 design on the outer wall of the latch 14 plays a guiding role when inserted into the slot 111, reducing assembly difficulty and speeding up installation.

[0046] Please see Figures 1-2 As shown, four pillars 2 are fixedly installed at the four corners between two fixed seats 11; both the upper and lower ends of the pillars 2 are fixed with inserts 20, the inserts 20 are inserted into the corresponding slots 111, and a slot 200 is opened on one side wall of each insert 20. The slot head 14 is engaged with the corresponding slot 200 and restricts the insert 20 in the slot 111.

[0047] With the above setup, the plugs 20 at both ends of the four pillars 2 are inserted into the slots 111 of the mounting base 11, and the locking heads 14 and slots 200 are engaged to form a stable four-corner support system, which enhances the overall rigidity and stability of the cabinet, while also facilitating disassembly and reassembly.

[0048] In this embodiment, the support column 2 and the insertion block 20 are integrally formed, with the insertion block 20 perpendicular to the support column 2. This design ensures the integrity and stability of the support column 2 and the insertion block 20, improves the reliability of the insertion block 20's engagement with the slot 111 and the card slot 200, and effectively supports the weight of each component of the cabinet.

[0049] Please see Figures 1-2 As shown, in this embodiment, tripods 3 are fixed near the four corners between the two fixed bases 11, and multiple partitions 4 are fixed to the multiple tripods 3 from top to bottom. The multiple partitions 4 form a layered layout, making full use of vertical space and realizing the classified installation and management of equipment; the ends of the tripods 3 are fixedly connected to the fixed bases 11 by bolts, and the partitions 4 are fixedly connected to the tripods 3 by bolts. The bolt connection method facilitates the adjustment of the position of the partitions 4 or their disassembly and maintenance as needed, enhancing the flexibility of the cabinet.

[0050] During installation, the user first aligns the upper and lower insert blocks 20 with the corresponding slots 111 and inserts them. When the insert blocks 20 move to the inclined surface 140 of the locking head 14, the locking head 14 retracts into the mounting groove 110 under the pressure of the insert blocks 20. At this time, the locking head 14 drives the movable plate 13 to slide along the two guide rods 12, and the spring 19 is compressed by the movable plate 13. When the insert blocks 20 are fully inserted into the slots 111, the locking head 14 moves to the slot 200. Under the elastic action of the spring 19, the movable plate 13 slides along the guide rods 12 and drives the locking head 14 to be locked into the slot 200. The insert blocks 20 are then restricted in the slots 111, and the support column 2 is fixed to the fixing base 11.

[0051] During disassembly, first use a tool to rotate the adjusting screw 16. The adjusting screw 16 drives the connecting seat 15 to rotate through the drive shaft. The connecting seat 15 simultaneously drives the support plate 17 to move. The support plate 17 pulls the movable plate 13 to overcome the elastic force of the spring 19. The movable plate 13 slides along the guide rod 12 towards the center of the mounting groove 110. At this time, the clamp 14 disengages from the slot 200 of the insert block 20. After the clamp 14 is completely disengaged from the slot 200, the support column 2 can be directly pulled out from the slots 111 at the four corners of the fixed seat 11, and the disassembly is completed.

[0052] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely preferred examples and are not intended to limit the utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claimed utility model. The scope of protection of this utility model is defined by the appended claims and their equivalents.

Claims

1. A layered, partitioned data center with built-in network cabinet architecture, characterized in that: include: Two end plate assemblies (1) are arranged symmetrically; each end plate (10) has a fixed seat (11) fixed on one of its two opposite ends; each of the two fixed seats (11) has a mounting groove (110) on one of its two opposite ends, and a slot (111) is provided at each of the four corners of the fixed seat (11); two symmetrical movable plates (13) are slidably installed in the mounting groove (110), and each of the two opposite ends of the movable plates (13) has a clip (14) fixed at both ends, which is inserted into the slot (111); two springs (19) for pressing against the movable plates (13) are provided on the left and right sides of the mounting groove (110). A connecting seat (15) is rotatably installed at the center of the mounting slot (110). Both ends of the connecting seat (15) are provided with connecting slots (150). A support plate (17) is hinged at each connecting slot (150). A hinge seat (18) is hinged at the end of each support plate (17). The hinge seat (18) is fixedly connected to the corresponding movable plate (13). Four pillars (2) are fixedly installed at the four corners between two fixed seats (11); both the upper and lower ends of the pillars (2) are fixed with plugs (20), the plugs (20) are plugged into the corresponding slots (111), and a slot (200) is opened on one side wall of the plugs (20). The card head (14) is plugged into the corresponding slot (200) and restricts the plugs (20) in the slots (111).

2. The layered partitioned data center built-in network cabinet architecture according to claim 1, characterized in that: Two guide rods (12) are fixedly connected in the mounting groove (110) by bolts. A spring (19) is sleeved on the outside of the guide rod (12). The guide rod (12) passes through the movable plate (13) and is slidably connected with the movable plate (13). A limit ring (120) is fixed coaxially in the middle of the guide rod (12).

3. The layered partitioned data center built-in network cabinet architecture according to claim 1, characterized in that: The bottom center of the connecting seat (15) is coaxially keyed with a drive shaft, which passes through the fixed seat (11) and is rotatably connected to the fixed seat (11). The end of the drive shaft is coaxially keyed with an adjusting screw (16).

4. The layered partitioned data center built-in network cabinet architecture according to claim 3, characterized in that: The overall shape of the adjusting screw (16) is cylindrical, and the outer wall of the adjusting screw (16) is provided with multiple anti-slip grooves.

5. The layered partitioned data center built-in network cabinet architecture according to claim 1, characterized in that: The movable plate (13) and the card head (14) are integrally formed structures, and the outer wall of the card head (14) is provided with a bevel (140).

6. The layered partitioned data center built-in network cabinet architecture according to claim 1, characterized in that: The support column (2) and the insert (20) are integrally formed, and the insert (20) is perpendicular to the support column (2).

7. The layered partitioned data center built-in network cabinet architecture according to claim 1, characterized in that: Tripods (3) are fixed between the two fixed bases (11) near the four corners, and multiple partitions (4) are fixed to the multiple tripods (3) from top to bottom.

8. The layered partitioned data center built-in network cabinet architecture according to claim 7, characterized in that: The end of the tripod (3) is fixedly connected to the fixed seat (11) by bolts, and the partition (4) is fixedly connected to the tripod (3) by bolts.

Citation Information

Patent Citations

  • Network cabinet

    CN221429267U