A computing power server modular installation structure

CN224773402UActive Publication Date: 2026-09-18MIDDLE EAST GROUP IOT TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202522264873.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-10-25
Publication Date
2026-09-18
Estimated Expiration
2035-10-25

AI Technical Summary

Technical Problem

[0002]随着云计算、大数据及人工智能技术的快速发展,算力服务器在数据中心与高性能计算场景中的应用愈发广泛,数据中心对有限空间内服务器的安装密度、稳定性及可维护性要求不断提升,但当前算力服务器安装结构仍存在诸多不足:传统安装需依赖螺丝、卡扣等紧固件,安装过程繁琐且耗时,不利于大规模部署;人工紧固易因力度不均或振动导致连接松动,影响服务器稳定运行;服务器检修或更换时拆卸复杂,尤其在高密度安装环境下操作空间狭小,维护效率低;部分紧凑化设计牺牲通风空间,导致散热性能受限,缩短服务器使用寿命;另有设计为实现特殊功能采用复杂连杆、凸轮机构,增加零件数量与装配难度,推高生产成本及故障风险

Benefits of technology

本实用新型通过安装基板和多个连接部实现服务器的标准化安装,提高通用性与互换性,便于批量生产和快速部署;利用倾斜设置的滑槽与滑动件配合,使服务器在安装过程中可自动带动压紧块压紧,无需额外紧固操作,简化安装流程并提升效率,同时提供均匀且持续的压紧力,确保连接稳定可靠,减少振动或运输导致的松动风险;安装基板上的通风口促进空气流通,有效提升散热效率,保障服务器在高负载下的稳定运行;连接块上的取放槽便于工具伸入,使服务器的安装与拆卸更加方便快捷,降低维护成本与时间;合理的滑槽倾斜角度设计兼顾压紧力与操作便捷性,弹性件的加入使滑动件能够自动复位,进一步增强装置的使用便利性与可靠性;整体结构紧凑、布局合理,有助于在有限空间内容纳更多服务器,提高数据中心的算力密度,并通过简化安装、提升可靠性与降低维护需求带来显著的成本节约和长期经济效益,特别适用于大规模数据中心和高性能计算环境。

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Abstract

The utility model provides a kind of computing power server modularization installation structure, it is related to computer hardware technical field, including installation base plate, first connecting block, second connecting block, compression assembly and air vent are equipped on base plate, connecting block opens and takes out slot;Compression assembly contains inclined sliding slot, sliding member, compression block and elastic member.The server pressure drives sliding member to slide along sliding slot, so that compression block compresses server, and elastic member helps sliding member reset.The structure does not need additional fastening, improves installation maintenance efficiency and connection stability, air vent guarantees heat dissipation, simple structure, applicable to data center and other scenes.
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Description

Technical Field

[0001] This utility model relates to the field of computer hardware technology, specifically a modular installation structure for a computing server. Background Technology

[0002] With the rapid development of cloud computing, big data, and artificial intelligence technologies, computing servers are increasingly being used in data centers and high-performance computing scenarios. Data centers are constantly raising their requirements for the installation density, stability, and maintainability of servers within limited spaces. However, current computing server installation structures still have many shortcomings: traditional installations rely on screws, clips, and other fasteners, making the installation process cumbersome and time-consuming, which is not conducive to large-scale deployment; manual tightening is prone to loosening due to uneven force or vibration, affecting the stable operation of the server; disassembly is complex when repairing or replacing servers, especially in high-density installation environments where the operating space is limited, resulting in low maintenance efficiency; some compact designs sacrifice ventilation space, leading to limited heat dissipation performance and shortening the service life of the server; other designs use complex linkages and cam mechanisms to achieve special functions, increasing the number of parts and assembly difficulty, driving up production costs and failure risks.

[0003] In response, we propose a modular installation structure for computing servers. Utility Model Content

[0004] The purpose of this invention is to provide a modular installation structure for a computing server to solve the problems mentioned in the background art.

[0005] To achieve the above objectives, this utility model provides the following technical solution: including: Mounting base plate to provide a mounting foundation for the server; Multiple connecting parts are disposed on the mounting base plate for coupling with the server, and the connecting parts include a first connecting block and a second connecting block; A clamping assembly is disposed on the mounting base plate. The clamping assembly includes an inclined sliding groove, a sliding member that can slide along the sliding groove, and a clamping block connected to the sliding member. When the server presses against the abutment portion that cooperates with the sliding member, it can drive the sliding member to slide along the inclined sliding groove, thereby causing the clamping block to move towards the server to clamp the server. A ventilation opening is provided on the mounting base plate for ventilating the server. The pick-and-place slots are provided on the first connecting block and the second connecting block to facilitate the pick-and-place operation of the server.

[0006] Preferably, the first connecting block and the second connecting block are spaced apart along the length direction of the mounting substrate, and the structures of the first connecting block and the second connecting block are adapted to couple with different parts of the server.

[0007] Preferably, the clamping assembly further includes an elastic element, and a clamping groove is formed on the mounting base plate, with the elastic element disposed within the clamping groove of the mounting base plate. The elastic element includes a sliding ring and a fixed ring arranged sequentially from high to low in the pressure groove along the height direction. A pressure rod is fixedly provided on the sliding ring. The sliding ring is slidably connected to the mounting base plate. One end of the pressure rod passes through and is slidably connected to the fixed ring. An elastic element is provided between the sliding ring and the fixed ring. The elastic element is sleeved on the outer periphery of the pressure rod and is used to apply an elastic force to the sliding element so that the sliding element resets when it is not subjected to server pressure.

[0008] Preferably, there are multiple ventilation openings, and the multiple ventilation openings are evenly distributed along the length direction of the mounting base plate.

[0009] Preferably, the pick-and-place slot is a U-shaped slot, with the opening of the U-shaped slot facing outwards from the mounting base plate, making it easy for tools to reach in and remove the server.

[0010] Preferably, the inclination direction of the slide groove forms a preset angle with the length direction of the mounting substrate, the preset angle being 30°-60°, so that when the sliding member slides, it can drive the clamping block to generate displacement in a direction perpendicular to the surface of the mounting substrate.

[0011] Compared with the prior art, the beneficial effects of this utility model are: This invention achieves standardized server installation through a mounting base and multiple connecting parts, improving versatility and interchangeability, facilitating mass production and rapid deployment. The inclined sliding grooves and sliding components automatically engage the clamping blocks during installation, eliminating the need for additional tightening operations, simplifying the installation process and improving efficiency. Simultaneously, it provides uniform and continuous clamping force, ensuring stable and reliable connections and reducing the risk of loosening due to vibration or transportation. Ventilation vents on the mounting base promote airflow, effectively improving heat dissipation efficiency and ensuring stable server operation under high loads. The slots on the connecting blocks facilitate tool insertion, making server installation and disassembly more convenient and faster, reducing maintenance costs and time. The reasonable inclined angle design of the sliding grooves balances clamping force and ease of operation, and the addition of elastic components allows the sliding components to automatically reset, further enhancing the ease of use and reliability of the device. The overall structure is compact and rationally laid out, helping to accommodate more servers in a limited space, increasing the computing density of data centers. By simplifying installation, improving reliability, and reducing maintenance requirements, it brings significant cost savings and long-term economic benefits, making it particularly suitable for large-scale data centers and high-performance computing environments. Attached Figure Description

[0012] Figure 1 This is an axonometric view of the structure of this utility model.

[0013] Figure 2 This utility modelFigure 1 A cross-sectional structural diagram.

[0014] Figure 3 This utility model Figure 2 A magnified schematic diagram of the structure at point A in the middle.

[0015] In the figure: 1. First connecting block; 2. Second connecting block; 4. Ventilation opening; 43. Pick-up and drop slot; 6. Pressing block; 7. Slide groove; 9. Sliding ring; 10. Fixing ring; 11. Mounting base plate; 12. Elastic element; 14. Pressure rod. Detailed Implementation

[0016] 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.

[0017] In the description of this utility model, it should be noted that the terms "upper", "lower", "inner", "outer", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model.

[0018] Example 1 like Figures 1-3 As shown, a modular installation structure for a computing server according to this utility model includes: Mounting base plate 11 provides a mounting base for the server; Multiple connecting parts are disposed on the mounting base plate 11 for coupling with the server, and the connecting parts include a first connecting block 1 and a second connecting block 2; A clamping assembly is disposed on the mounting base plate 11. The clamping assembly includes an inclined slide groove 7, a sliding member that can slide along the slide groove 7, and a clamping block 6 connected to the sliding member. When the server presses against the abutment part that cooperates with the sliding member, it can drive the sliding member to slide along the inclined slide groove 7, thereby causing the clamping block 6 to move towards the server to clamp the server. A ventilation port 4 is formed on the mounting base plate 11 for ventilating the server. The pick-and-place slot 43 is provided on the first connecting block 1 and the second connecting block 2 to facilitate the pick-and-place operation of the server.

[0019] The first connecting block 1 and the second connecting block 2 are spaced apart along the length of the mounting base plate 11, and the structures of the first connecting block 1 and the second connecting block 2 are adapted to couple with different parts of the server.

[0020] The clamping assembly further includes an elastic element, and a pressure groove is formed on the mounting base plate 11, with the elastic element disposed within the pressure groove of the mounting base plate 11. The elastic element includes a sliding ring 9 and a fixed ring 10 arranged sequentially from high to low in the pressure groove along the height direction. A pressure rod 14 is fixedly provided on the sliding ring 9. The sliding ring 9 is slidably connected to the mounting base plate 11. One end of the pressure rod 14 passes through and is slidably connected to the fixed ring 10. An elastic element 12 is provided between the sliding ring 9 and the fixed ring 10. The elastic element 12 is sleeved on the outer periphery of the pressure rod 14 and is used to apply an elastic force to the sliding element so that the sliding element resets when it is not subjected to server pressure.

[0021] There are multiple ventilation openings 4, and the multiple ventilation openings 4 are evenly distributed along the length direction of the mounting base plate 11.

[0022] The pick-and-place slot 43 is a U-shaped slot, with the opening of the U-shaped slot facing outward of the mounting base plate 11, making it easy for tools to reach in and remove the server.

[0023] The inclination direction of the slide groove 7 forms a preset angle with the length direction of the mounting base plate 11, the preset angle being 30°-60°, so that when the sliding member slides, it can drive the clamping block 6 to generate displacement in a direction perpendicular to the surface of the mounting base plate 11.

[0024] First, the mounting base 11 serves as the foundation platform for the entire device, providing a stable mounting surface for the server. The server achieves initial positioning and coupling through cooperation with the first connecting block 1 and the second connecting block 2.

[0025] When the server is placed in position and a certain amount of pressure is applied, its bottom contacts and pushes the abutment of the clamping component. This action causes the slider to slide along the inclined groove 7. Since the groove 7 forms a preset angle of 30°-60° with the length direction of the mounting base plate 11, the horizontal movement of the slider is converted into a vertical displacement of the clamping block 6 towards the server, thereby achieving automatic clamping of the server.

[0026] During the clamping process, the elastic element system begins to function: the pressure rod 14 moves the sliding ring 9 downwards, compressing the elastic element 12 located between the sliding ring 9 and the fixed ring 10. This process stores some energy, preparing for subsequent reset.

[0027] When the server needs to be removed, external force is applied using a tool through the pick-and-place slot 43 to overcome the clamping force and lift the server. As the server pressure is removed, the compressed elastic element 12 releases its stored energy, pushing the sliding ring 9 and the pressure rod 14 upward, causing the sliding element to slide in the opposite direction along the slide groove 7, so that the clamping block 6 returns to its initial position, ready for the next installation.

[0028] Throughout the entire operation, vent 4 continuously provides an airflow channel for the server, ensuring that the heat dissipation requirements of the equipment are met during operation.

[0029] This design not only enables rapid installation and reliable fixation of the server, but also simplifies the maintenance process through a flexible reset mechanism, while ensuring the stability and heat dissipation efficiency of the equipment during operation.

[0030] Finally, it should be noted that the above-described embodiments are merely specific implementations of this utility model, used to illustrate the technical solution of this utility model, and not to limit it. The protection scope of this utility model is not limited thereto. Although this utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that any person skilled in the art can still modify or easily conceive of changes to the technical solutions described in the foregoing embodiments, or make equivalent substitutions for some of the technical features, within the technical scope disclosed in this utility model. These modifications, changes, or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of this utility model, and should all be covered within the protection scope of this utility model. Therefore, the protection scope of this utility model should be determined by the protection scope of the claims.

Claims

1. A computing power server modular installation structure, characterized by, include: Mounting base plate (11) provides a mounting base for the server; Multiple connecting parts are disposed on the mounting base plate (11) for coupling with the server, and the connecting parts include a first connecting block (1) and a second connecting block (2); A clamping assembly is disposed on the mounting base plate (11). The clamping assembly includes an inclined sliding groove (7), a sliding member that can slide along the sliding groove (7), and a clamping block (6) connected to the sliding member. When the server presses against the abutment part that cooperates with the sliding member, it can drive the sliding member to slide along the inclined sliding groove (7), thereby causing the clamping block (6) to move towards the server to clamp the server. A ventilation port (4) is provided on the mounting base plate (11) for ventilating the server. The pick-and-place slot (43) is provided on the first connecting block (1) and the second connecting block (2) to facilitate the pick-and-place operation of the server.

2. The computing power server modular installation structure according to claim 1, wherein, The first connecting block (1) and the second connecting block (2) are spaced apart along the length of the mounting base plate (11), and the structures of the first connecting block (1) and the second connecting block (2) are adapted to couple with different parts of the server. 3.The computing power server modular installation structure according to claim 1, wherein, The clamping assembly further includes an elastic element. A pressure groove is formed on the mounting base plate (11), and the elastic element is disposed within the pressure groove of the mounting base plate (11). The elastic element includes a sliding ring (9) and a fixed ring (10) arranged sequentially from high to low in the pressure groove along the height direction. A pressure rod (14) is fixedly provided on the sliding ring (9). The sliding ring (9) is slidably connected to the mounting base plate (11). One end of the pressure rod (14) passes through and is slidably connected to the fixed ring (10). An elastic element (12) is provided between the sliding ring (9) and the fixed ring (10). The elastic element (12) is sleeved on the outer periphery of the pressure rod (14) and is used to apply an elastic force to the sliding element so that the sliding element resets when it is not subjected to server pressure.

4. The computing power server modular installation structure of claim 1, wherein, There are multiple ventilation openings (4), and the multiple ventilation openings (4) are evenly distributed along the length direction of the mounting base plate (11). 5.The computing power server modular installation structure according to claim 1, wherein, The pick-and-place slot (43) is a U-shaped slot, with the opening of the U-shaped slot facing the outside of the mounting base plate (11), making it easy for tools to reach in and remove the server.

6. The computing power server modular installation structure of claim 1, wherein, The inclined direction of the slide (7) is at a preset angle to the length direction of the mounting base plate (11), the preset angle being 30°-60°, so that when the sliding member slides, it can drive the clamping block (6) to generate displacement in a direction perpendicular to the surface of the mounting base plate (11).