Shock-absorbing mounting and installation device for a main computer

The shock-absorbing mounting device for mainframe computers addresses the issue of dimension mismatch by using an adjustable mechanism with an electric motor drive and damping units to stabilize and absorb vibrations, enhancing hardware security.

DE202026101935U1Active Publication Date: 2026-05-28LIU YANBO XIAN CITY +1
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Patent Information

Authority / Receiving Office
DE · DE
Patent Type
Utility models
Current Assignee / Owner
LIU YANBO XIAN CITY
Filing Date
2026-04-08
Publication Date
2026-05-28

AI Technical Summary

Technical Problem

Conventional shock-absorbing mounting devices for mainframe computers lack flexibility in adapting to the actual dimensions of the mainframe, leading to instability and potential hardware damage from vibrations.

Method used

A shock-absorbing fastening and mounting device with an electric motor drive system that adjusts to different mainframe dimensions by using sliding blocks, rotary blocks, and damping units with springs to absorb vibrations and maintain stability.

Benefits of technology

The device effectively adapts to various mainframe dimensions, ensuring stable clamping and preventing hardware loosening while absorbing high-frequency vibrations and reducing rigid shocks.

✦ Generated by Eureka AI based on patent content.

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Abstract

A shock-absorbing fastening and mounting device for a mainframe computer, comprising a housing (1), characterized in that the inner wall of the housing (1) is fixedly connected to an electric motor drive (2), a sliding block (3) is fixedly arranged at the output of the electric motor drive (2), the outer wall of the sliding block (3) is rotatably connected to rotary blocks (4), the surfaces of the rotary blocks (4) are rotatably connected to base plates (6), the outer walls of the base plates (6) are slidably connected to the outer wall of a guide block (5), the outer walls of the base plates (6) are fixedly connected to clamping plates (7), the outer walls of the clamping plates (7) are fixedly connected to sliding rods (8), the outer walls of the sliding rods (8) are slidably connected to support blocks (9), and the underside of the housing (1) is fixedly connected to a damping unit.
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Description

Technical area

[0001] The present utility model relates to the technical field of the assembly of mainframe computers, in particular a shock-absorbing fastening and mounting device for a mainframe computer. State of the art

[0002] The mainframe computer is the central component of a computer system. It integrates essential hardware such as the central processing unit (CPU), RAM, and hard drive, directs the computer to perform a wide variety of complex tasks, and controls the entire operation of the computer. In daily use, the mainframe computer can be exposed to various vibrations, such as those from the table on which it is placed, as well as from ambient vibrations. Such vibrations can loosen the internal hardware of the mainframe computer: for example, the hard drive's read / write head can collide with the disk due to vibrations, corrupting data. Components and interfaces on the motherboard can also experience poor contact due to vibrations, impairing the proper functioning of the mainframe computer.Using a shock-absorbing mounting and fixing device can effectively prevent these problems. It reduces the impact of vibrations on the mainframe computer, extends the lifespan of the mainframe hardware, ensures the stability and reliability of the mainframe's operation, and enables continuous and efficient computer operation. Conventional devices typically use clamping structures with fixed dimensions that cannot be flexibly adjusted to the actual dimensions of the mainframe computer. This is because their design lacks adjustable mechanisms. As soon as the dimensions of the mainframe computer do not match the device, achieving a stable mount becomes difficult. Content of the utility model

[0003] To remedy the aforementioned deficiencies, the present utility model provides a shock-absorbing fastening and mounting device for a main computer, which aims to solve the problem of the lack of flexible adaptation to the actual dimensions of the main computer.

[0004] To achieve the aforementioned purpose, the present utility model provides the following technical solution: A shock-absorbing fastening and mounting device for a mainframe computer comprises a housing. The inner wall of the housing is rigidly connected to an electric motor drive. A sliding block is rigidly arranged at the output of the electric motor drive. The outer wall of the sliding block is rotatably connected to pivot blocks. The surfaces of the pivot blocks are rotatably connected to base plates. The outer walls of the base plates are slidably connected to the outer wall of a guide block. The outer walls of the base plates are rigidly connected to clamping plates. The outer walls of the clamping plates are rigidly connected to sliding rods. The outer walls of the sliding rods are slidably connected to support blocks. The underside of the housing is rigidly connected to a damping unit. Preferably, the damping unit comprises support columns.The surfaces of the support columns are rigidly connected to the underside of the housing. The undersides of the support columns are rigidly connected to springs II. The outer walls of springs II are rigidly connected to a base. The outer walls of the support columns are slidably connected to the inner wall of the base.

[0005] Preferably, the outer wall of the sliding block is slidably connected inside the housing. The outer wall of the guide block is rigidly connected inside the housing.

[0006] Preferably, the outer walls of the standing plates are slidably connected to the outer wall of the housing. The outer walls of the clamping plates are slidably connected to the surface of the housing. The undersides of the support blocks are rigidly connected to the surface of the housing.

[0007] Preferably, the underside of the housing is fixedly attached to pivot columns. The outer walls of the pivot columns are rotatably connected to sliding blocks. The inner walls of the sliding blocks are slidably connected to limiting columns. The outer walls of the sliding blocks are fixedly connected to springs I.

[0008] Preferably, the outer walls of the sliding blocks are slidably connected to the inner wall of the base. Both ends of the boundary columns are rigidly connected to the inner wall of the base.

[0009] The present utility model has the following advantageous effects: 1. In the present utility model, the electric motor drive is started to move the sliding block, whereby the two-sided rotary blocks rotate and each move the standing plates, so that the clamping plates move the sliding rods, which slide on the inner walls of the support blocks. This not only achieves the effect of adapting to mainframes of different dimensions, but also ensures the stability of the clamping position and prevents loosening during use. 2. In the present utility model, the housing moves and drives the rotating columns to rotate, which in turn drives the sliding blocks to move, causing the sliding blocks on both sides to move against each other to compress or extend the springs I. Simultaneously, the support columns slide on the inner walls of the base, and the movement of the support columns deforms the springs II. This achieves the effect of absorbing high-frequency vibrations and reducing rigid shocks. Brief description of the attached drawings Fig. Figure 1 is a perspective view of a shock-absorbing fastening and mounting device for a main computer according to the present utility model; Fig. Figure 2 is a schematic representation of the partial structure of clamping plates of the shock-absorbing fastening and mounting device for a main computer according to the present utility model; Fig. Figure 3 is a schematic representation of the partial structure of a base plate of the shock-absorbing fastening and mounting device for a main computer according to the present utility model; Fig. Figure 4 is a schematic representation of the partial structure of a base of the shock-absorbing fastening and mounting device for a main computer according to the present utility model. Explanation of the drawing symbols: 1 housing; 2 Electric motor drive; 3 shift block; 4 Rotary block; 5 guide block; 6 Standing slab; 7 clamping plate; 8 sliding sticks; 9 support block; 10 rotating columns; 11 Sliding block; 12 boundary columns; 13 sockets; 14 Spring I; 15 Support column; 16 Feather II. Examples of implementation

[0010] The technical solution in the embodiments of this utility model is described clearly and completely below with reference to the accompanying drawings in the description of this utility model. Obviously, the described embodiments represent only some, not all, embodiments of this utility model. Based on the embodiments of this utility model, all further embodiments obtained by persons skilled in the art without inventive activity fall within the scope of protection of this utility model.

[0011] With reference to Fig. 1, Fig. 2 and Fig. Section 3 of the present utility model provides an embodiment: A shock-absorbing fastening and mounting device for a mainframe computer comprises a housing 1. The inner wall of the housing 1 is rigidly connected to an electric motor drive 2. A sliding block 3 is rigidly arranged at the output of the electric motor drive 2. The outer wall of the sliding block 3 is rotatably connected to rotary blocks 4. The surfaces of the rotary blocks 4 are rotatably connected to base plates 6. The outer walls of the base plates 6 are slidably connected to the outer wall of a guide block 5. The outer walls of the base plates 6 are rigidly connected to clamping plates 7. The outer walls of the clamping plates 7 are rigidly connected to sliding rods 8. The outer walls of the sliding rods 8 are slidably connected to support blocks 9. The underside of the housing 1 is rigidly connected to a damping unit.

[0012] Specifically, the electric motor drive 2, which is rigidly connected to the inner wall of the housing 1, is started. The electric motor drive 2 limits the movement of the sliding block 3, causing it to move within the housing 1. Furthermore, during this movement, the sliding block 3 drives the rotary blocks 4 to rotate, which in turn drives the mounting plates 6 to move in a straight line within the housing 1. Simultaneously, the mounting plates 6 are limited in their movement by the guide block 5, preventing them from deviating. The mounting plates 6 limit the clamping plates 7, so that the outer walls of the clamping plates 7 are rigidly connected to the outer walls of the mounting plates 6. The movement of the mounting plates 6 then drives the clamping plates 7 to move, thus securing the main computer.At the same time, the clamping plates 7 drive the sliding rods 8 to move along the inner walls of the support blocks 9, so that the sliding rods 8 do not deviate during the movement and impair the movement of the clamping plates 7.

[0013] With reference to Fig. 2 and Fig. Section 4 comprises the damping unit support columns 15. The surfaces of the support columns 15 are rigidly connected to the underside of the housing 1. The undersides of the support columns 15 are rigidly connected to springs II 16. The outer walls of the springs II 16 are rigidly connected to a base 13. The outer walls of the support columns 15 are slidably connected to the inner wall of the base 13.

[0014] Specifically, the support columns 15 support and confine the housing 1, such that the support columns 15 are firmly connected to the underside of the housing 1. Furthermore, the support columns 15 on both sides ensure that the housing 1 maintains horizontal balance. The support columns 15 confine the springs II 16, such that the springs II 16 are firmly connected to the underside of the support columns 15 and to the inner wall of the base 13. In addition, when the housing 1 is subjected to vibration, the support columns 15 cause the springs II 16 to deform, so that the forces generated by the deformation of the springs II 16 counteract the vibration forces and inertial forces of the support columns 15 and reduce the effects caused by the vibration.

[0015] With reference to Fig. 1, Fig. 2 and Fig. The outer wall of the sliding block 3 is slidably connected to the inside of the housing 1. The outer wall of the guide block 5 is fixedly connected to the inside of the housing 1. The outer walls of the support plates 6 are slidably connected to the outer wall of the housing 1. The outer walls of the clamping plates 7 are slidably connected to the surface of the housing 1. The undersides of the support blocks 9 are fixedly connected to the surface of the housing 1.

[0016] Specifically, the housing 1 confines the sliding block 3, so that the electric motor drive 2 drives the sliding block 3 to move linearly along the inner wall of the housing 1. It also drives the two-sided rotary blocks 4 to rotate in opposite directions and at the same angle. The rotary blocks 4 drive the support plates 6 to move linearly along the outer wall of the guide block 5, the guide block 5 being fixed within the housing 1 and thus not changing its position. Furthermore, the support plates 6 drive the clamping plates 7 to move along the surface of the housing 1, the clamping plates 7 driving the sliding rods 8 to move linearly along the inner walls of the support blocks 9, so that the clamping plates 7 move linearly to fix the main computer. Simultaneously, the support blocks 9 are fixed to the surface of the housing 1 and their position is not affected by the sliding rods 8.

[0017] With reference to Fig. 1, Fig. 2 and Fig. 4 The underside of the housing 1 is fixedly attached to pivot columns 10. The outer walls of the pivot columns 10 are rotatably connected to sliding blocks 11. The inner walls of the sliding blocks 11 are slidably connected to limiting columns 12. The outer walls of the sliding blocks 11 are fixedly connected to springs 14. The outer walls of the sliding blocks 11 are slidably connected to the inner wall of the base 13. Both ends of the limiting columns 12 are fixedly connected to the inner wall of the base 13.

[0018] Specifically, the housing 1 limits the rotating columns 10, so that during movement, the housing 1 drives the rotating columns 10 to rotate. Furthermore, the rotating columns 10 rotate on the inner walls of the sliding blocks 11 and drive the sliding blocks 11 to move on the outer wall of the limiting columns 12 and on the inner wall of the base 13. Additionally, the sliding blocks 11 move against each other on both sides of the outer wall of the limiting columns 12 to compress or extend the springs I 14, so that the restoring forces generated by the deformation of the springs I 14 serve as damping. The limiting columns 12 are fixedly connected to the inner wall of the base 13, and their position does not change.

[0019] Operating principle: When it is necessary to secure the mainframe computer, the electric motor drive 2 on the inner wall of the housing 1 is first started to drive the sliding block 3 to move along the inner wall of the housing 1. It then drives the two-sided rotary blocks 4 to rotate, which in turn drive the support plates 6 to move along the outer wall of the guide block 5. The support plates 6 then drive the clamping plates 7 to move along the surface of the housing 1. Simultaneously, the clamping plates 7 drive the sliding rods 8, which are fixed to their outer walls, to move along the inner walls of the support blocks 9. This not only allows the system to adapt to mainframe computers of different dimensions but also ensures the stability of the clamping position and prevents loosening during use.

[0020] When damping is required, the housing 1 first moves, driving the pivot columns 10 to rotate against the inner walls of the sliding blocks 11. The pivot columns 10 then drive the sliding blocks 11 to move against the outer wall of the limiting columns 12 and against the inner wall of the base 13, causing the sliding blocks 11 on both sides to move relative to each other, compressing or extending the springs I 14. Simultaneously, the housing 1 moves, driving the support columns 15 to slide against the inner wall of the base 13. This movement of the support columns 15 drives the springs II 16 to deform. This action effectively absorbs high-frequency vibrations and reduces rigid shocks.

[0021] This means that, when using this device, not only is it achieved that it adapts to mainframe computers of different dimensions, ensures the stability of the clamping position, and prevents loosening during use, but it also ensures the stability of the clamping position and prevents loosening during use. Finally, it should be noted that the foregoing merely represents preferred embodiments of the present utility model and does not serve to limit the present utility model. Although the present utility model has been described in detail with reference to the aforementioned embodiments, those skilled in the art may still make modifications to the technical solutions presented in the aforementioned embodiments or implement equivalent substitutions for some of the technical features.Any modifications, equivalent replacements, improvements and the like made within the spirit and principles of the present utility model shall be included in the scope of protection of the present utility model.

Claims

A shock-absorbing fastening and mounting device for a mainframe computer, comprising a housing (1), characterized in that the inner wall of the housing (1) is fixedly connected to an electric motor drive (2), a sliding block (3) is fixedly arranged at the output of the electric motor drive (2), the outer wall of the sliding block (3) is rotatably connected to rotary blocks (4), the surfaces of the rotary blocks (4) are rotatably connected to base plates (6), the outer walls of the base plates (6) are slidably connected to the outer wall of a guide block (5), the outer walls of the base plates (6) are fixedly connected to clamping plates (7), the outer walls of the clamping plates (7) are fixedly connected to sliding rods (8), the outer walls of the sliding rods (8) are slidably connected to support blocks (9), and the underside of the housing (1) is fixedly connected to a damping unit. The shock-absorbing fastening and mounting device for a main computer according to claim 1, characterized in that the damping unit comprises support columns (15), the surfaces of the support columns (15) are firmly connected to the underside of the housing (1), the undersides of the support columns (15) are firmly connected to springs II (16), the outer walls of the springs II (16) are firmly connected to a base (13), and the outer walls of the support columns (15) are slidably connected to the inner wall of the base (13). The shock-absorbing fastening and mounting device for a main computer according to claim 1, characterized in that the outer wall of the sliding block (3) is slidably connected inside the housing (1), and the outer wall of the guide block (5) is rigidly connected inside the housing (1). The shock-absorbing fastening and mounting device for a main computer according to claim 1, characterized in that the outer walls of the standing plates (6) are slidably connected to the outer wall of the housing (1), the outer walls of the clamping plates (7) are slidably connected to the surface of the housing (1), and the undersides of the support blocks (9) are firmly connected to the surface of the housing (1). The shock-absorbing fastening and mounting device for a main computer according to claim 1, characterized in that the underside of the housing (1) is fixedly attached with pivot columns (10), the outer walls of the pivot columns (10) are rotatably connected with sliding blocks (11), the inner walls of the sliding blocks (11) are slidably connected with limiting columns (12), and the outer walls of the sliding blocks (11) are fixedly connected with springs I (14). The shock-absorbing fastening and mounting device for a main computer according to claim 5, characterized in that the outer walls of the sliding blocks (11) are slidably connected to the inner wall of the base (13), and both ends of the limiting columns (12) are firmly connected to the inner wall of the base (13).