A rack-mounted super-converged appliance structure with shockproof support

By designing anti-vibration brackets on the rack-mounted hyperconverged integrated machine and utilizing components such as spring-loaded telescopic rods and shock absorbers, the problems of equipment damage and loose wires caused by vibration were solved, achieving stable operation and long service life of the equipment.

CN224319622UActive Publication Date: 2026-06-02XINJIANG BOYUAN HONGTU INFORMATION TECH CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
XINJIANG BOYUAN HONGTU INFORMATION TECH CO LTD
Filing Date
2025-04-18
Publication Date
2026-06-02

AI Technical Summary

Technical Problem

Rack-mounted hyperconverged infrastructure is easily damaged by vibration during handling or movement, and connecting wires are prone to loosening, lacking effective protective measures.

Method used

A rack-mounted hyperconverged integrated machine structure with shock-absorbing bracket was designed, including protective components, auxiliary components, shock absorbers, and support bases. The wires are fixed by spring-loaded telescopic rods and limiting plates, the shock absorbers absorb vibrations, the support bases improve stability, and the auxiliary components and protective cabinets provide buffering and fixation.

Benefits of technology

It effectively prevents wires from loosening, ensures equipment stability and hardware safety, extends equipment life, reduces the impact of vibration on the equipment, and ensures normal operation.

✦ Generated by Eureka AI based on patent content.

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Abstract

This utility model discloses a rack-mounted hyperconverged integrated machine structure with a shock-absorbing bracket, including a hyperconverged integrated machine body. The hyperconverged integrated machine body is equipped with protective components, and auxiliary components are set on the rack. The protective components on the hyperconverged integrated machine body can not only install and protect the hyperconverged integrated machine body, ensuring the normal operation of the rack-mounted hyperconverged integrated machine, but also adapt to wires of different diameters and buffer when the wires are shaken, preventing the wires from loosening due to shaking, thereby ensuring the stability of the wire connection. At the same time, the auxiliary components on the protective components can further fix and protect the hyperconverged integrated machine body, preventing it from displacement or collision during vibration, ensuring the stability and safety of the internal hardware equipment, effectively extending the service life of the equipment, and ensuring its normal operation.
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Description

Technical Field

[0001] This utility model relates to the field of hyperconverged infrastructure technology, specifically to a rack-mounted hyperconverged infrastructure structure with a shock-absorbing bracket. Background Technology

[0002] Rack-mounted hyperconverged appliances are solutions that integrate computing, storage, networking, and virtualization resources into a compact device. They are designed to simplify the deployment and management of data centers. This all-in-one design greatly simplifies the complex technology stack of traditional data centers, reduces physical footprint, and improves resource utilization efficiency. At the same time, it provides users with a flexible, scalable, and easy-to-manage IT infrastructure solution.

[0003] However, rack-mounted hyperconverged appliances have some shortcomings in actual use. For example, when rack-mounted hyperconverged appliances are handled or moved, they will vibrate, which can damage the internal hardware components and affect their normal operation. In addition, the connecting wires of rack-mounted hyperconverged appliances cannot be properly secured when shaken, which can easily lead to loosening of the connecting wires.

[0004] No effective solutions have yet been proposed to address the problems in the relevant technologies. Utility Model Content

[0005] In response to the problems in related technologies, this utility model proposes a rack-mounted hyperconverged integrated machine structure with anti-vibration brackets to overcome the aforementioned technical problems existing in the existing related technologies.

[0006] Therefore, the specific technical solution adopted by this utility model is as follows:

[0007] A rack-mounted hyperconverged integrated machine structure with shock-absorbing brackets includes a hyperconverged integrated machine body. The hyperconverged integrated machine body is equipped with protective components. The protective components include mounting blocks fixedly installed on both sides of the hyperconverged integrated machine body. The surface of the mounting blocks contacts a placement rack. A protective cabinet is fixedly connected above and below the placement rack. A protective plate is fixedly installed on one side of the hyperconverged integrated machine body. The protective plate has equidistantly distributed protective grooves. Multiple spring-loaded telescopic rods are fixedly connected to the inner wall of the protective grooves. A limiting plate is fixed to one end of each of the multiple spring-loaded telescopic rods. An anti-slip pad is provided on the opposite side of the limiting plate.

[0008] Furthermore, in order to better provide auxiliary shock absorption and protection for the rack-mounted hyperconverged all-in-one machine, an auxiliary component is provided on the rack. The auxiliary component includes multiple placement slots opened on the rack, and multiple auxiliary holes are opened on the inner wall of the multiple placement slots. A spring-loaded telescopic rod II is fixedly connected to the inner wall of the auxiliary hole. An auxiliary plate is fixed to one end of the spring-loaded telescopic rod II, and one side of the auxiliary plate is in contact with the surface of the mounting block.

[0009] Furthermore, in order to better assist in heat dissipation and impurity filtration of the rack-mounted hyperconverged all-in-one machine, heat dissipation vents are provided at the top and bottom of the protective cabinet. Filter frames are snapped into the inner walls of the heat dissipation vents, and filter screens and activated carbon plates are installed on the inner walls of the filter frames.

[0010] Furthermore, in order to better improve the protection of the rack-mounted hyperconverged all-in-one machine, a placement opening is provided on one side of the protective cabinet. A protective door is hinged to the inner wall of the placement opening, and a sealing gasket is provided on one side of the protective door. The sealing gasket is adapted to the inner wall of the placement opening.

[0011] Furthermore, in order to better provide auxiliary shock absorption and protection for the protective cabinet when it is moved, multiple shock absorbers are fixedly connected to the bottom of the protective cabinet, and support bases are fixed below the shock absorbers.

[0012] Furthermore, in order to better move the rack-mounted hyperconverged all-in-one machine, casters are installed under the support base, and a fixing screw is threaded onto the support base, with a fixing plate fixed to one end of the fixing screw.

[0013] Furthermore, in order to better dissipate heat from the rack-mounted hyperconverged appliance, the hyperconverged appliance body is provided with equally spaced heat dissipation holes, and a handle is fixedly installed on one side of the hyperconverged appliance body.

[0014] The beneficial effects of this utility model are as follows:

[0015] (1) The protective components installed on the hyperconverged integrated machine can not only install and protect the hyperconverged integrated machine and ensure the normal operation of the rack-mounted hyperconverged integrated machine, but also adapt to wires of different diameters and buffer when the wires are shaken to prevent the wires from loosening due to shaking, thereby ensuring the stability of the wire connection. At the same time, the auxiliary components installed on the protective components can further fix and protect the hyperconverged integrated machine to prevent it from being displaced or collided during vibration, ensuring the stability and safety of the internal hardware equipment, effectively extending the service life of the equipment, and ensuring its normal operation.

[0016] (2) By installing shock absorbers and support bases in the protective cabinet, vibrations from the ground or other directions can be absorbed, further reducing the impact of vibrations on the equipment, making it more stable during placement and use, and avoiding equipment shaking or damage due to uneven ground or vibration. Attached Figure Description

[0017] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0018] Figure 1 This is a schematic diagram of the main structure of a rack-mounted hyperconverged integrated machine with shock-absorbing support according to an embodiment of the present utility model;

[0019] Figure 2 This is a schematic diagram of the protective component structure of a rack-mounted hyperconverged integrated machine with shock-absorbing bracket according to an embodiment of the present invention. Figure 1 ;

[0020] Figure 3 This is a schematic diagram of the protective component structure of a rack-mounted hyperconverged integrated machine with shock-absorbing bracket according to an embodiment of the present invention. Figure 2 ;

[0021] Figure 4 This is a schematic diagram of the auxiliary component structure of a rack-mounted hyperconverged integrated machine with shockproof support according to an embodiment of the present utility model;

[0022] Figure 5 This is a schematic diagram of the filter frame, filter screen, and activated carbon plate structure of a rack-mounted hyperfusion integrated machine with shockproof support according to an embodiment of the present utility model.

[0023] In the picture:

[0024] 1. Hyper-converged integrated unit; 2. Protective components; 201. Mounting block; 202. Placement frame; 203. Protective cabinet; 204. Protective plate; 205. Spring-loaded telescopic rod one; 206. Limiting plate; 207. Anti-slip mat; 3. Auxiliary components; 301. Spring-loaded telescopic rod two; 302. Auxiliary plate; 4. Filter frame; 5. Filter screen plate; 6. Activated carbon plate; 7. Protective door; 8. Sealing gasket; 9. Shock absorber; 10. Support base; 11. Casters; 12. Fixing screw; 13. Fixing plate; 14. Heat dissipation holes; 15. Handle. Detailed Implementation

[0025] 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.

[0026] Example 1:

[0027] like Figures 1-5 As shown, a rack-mounted hyperconverged integrated machine structure with anti-vibration bracket according to an embodiment of the present utility model includes a hyperconverged integrated machine body 1. The hyperconverged integrated machine body 1 is the prior art and will not be described in detail. The hyperconverged integrated machine body 1 has heat dissipation holes 14 distributed at equal intervals, and a handle 15 is fixedly provided on one side of the hyperconverged integrated machine body 1.

[0028] The hyperconverged integrated unit 1 is equipped with a protective component 2. The protective component 2 includes mounting blocks 201 fixedly mounted on both sides of the hyperconverged integrated unit 1. The surface of the mounting blocks 201 contacts a placement frame 202. A protective cabinet 203 is fixedly connected above and below the placement frame 202. A protective plate 204 is fixedly mounted on one side of the hyperconverged integrated unit 1. The protective plate 204 has equidistantly distributed protective grooves. Two spring-loaded telescopic rods 205 are fixedly connected to the inner wall of the protective grooves. A limiting plate 206 is fixed to one end of each of the two spring-loaded telescopic rods 205. An anti-slip pad 207 is provided on the opposite side of the limiting plate 206 to assist in fixing the wires connected to the hyperconverged integrated unit 1 and prevent the wires connected to the hyperconverged integrated unit 1 from becoming loose.

[0029] An auxiliary component 3 is provided on the placement frame 202. The auxiliary component 3 includes five sets of placement slots opened on the placement frame 202. Each placement slot has six auxiliary holes on its inner wall. Three holes are arranged in a group. The number of auxiliary holes and placement slots can be adjusted according to the actual situation. A spring-loaded telescopic rod 301 is fixedly connected to the inner wall of the auxiliary hole. An auxiliary plate 302 is fixed to one end of the spring-loaded telescopic rod 301. One side of the auxiliary plate 302 is in contact with the surface of the mounting block 201.

[0030] The spring-loaded telescopic rod 201 and the spring-loaded telescopic rod 1 205 consist of telescopic rod 1 (small diameter), telescopic rod 2 (large diameter) and their springs. One end of telescopic rod 1 is nested and connected to the inner wall of telescopic rod 2 through a sealing block or sealing gasket. The spring is fitted on the outside of telescopic rod 1 and telescopic rod 2.

[0031] Example 2:

[0032] like Figures 1-5As shown, according to an embodiment of the present invention, a rack-mounted hyperconverged integrated machine structure with shockproof support has heat dissipation vents at the top and bottom of the protective cabinet 203. A filter frame 4 is snapped onto the inner wall of the heat dissipation vent. A filter screen plate 5 and an activated carbon plate 6 are provided on the inner wall of the filter frame 4 for auxiliary filtration of the incoming air. A placement opening is provided on one side of the protective cabinet 203. A protective door 7 is hinged to the inner wall of the placement opening. A sealing gasket 8 is provided on one side of the protective door 7 to improve the tightness between the protective door 7 and the placement opening. The sealing gasket 8 is adapted to the inner wall of the placement opening.

[0033] Four shock absorbers 9 are fixedly connected to the bottom of the protective cabinet 203. They are used to provide auxiliary shock absorption and buffering when the hyper-converged integrated unit 1 is handled or moved. The shock absorbers 9 are existing technology and will not be described in detail. A support base 10 is fixed below the shock absorbers 9. A caster wheel 11 is installed below the support base 10 for handling or moving the hyper-converged integrated unit 1. A fixing screw 12 is threaded onto the support base 10. A fixing plate 13 is fixed to one end of the fixing screw 12 for fixing the protective cabinet 203 when it is parked, thereby improving the stability of the hyper-converged integrated unit 1 during use.

[0034] To facilitate understanding of the above-mentioned technical solutions of this utility model, the working principle or operation method of this utility model in actual process will be described in detail below.

[0035] In summary, with the help of the above-mentioned technical solution of this utility model, when in use, the workers can easily move the equipment by using the movable wheels 11 set under the support base 10. When parked, the fixed screw 12 is rotated to press the fixed plate 13 against the ground to prevent slippage and ensure the stability of the equipment in a static state. The shock absorbers 9 set above the support base 10 and at the bottom of the protective cabinet 203 can absorb ground vibrations through hydraulic or spring buffering mechanisms when encountering bumps during movement.

[0036] During installation, the staff opens the protective door 7 and uses the handle 15 to bring the mounting blocks 201 on both sides of the hyperconverged integrated unit 1 into contact with one of the placement slots on the placement frame 202. The spring-loaded telescopic rod 301 installed in the placement slot pushes the auxiliary plate 302 to fit tightly against the mounting block 201, forming a two-way elastic support. When vibration occurs, the auxiliary plate 302 can further reduce the displacement of the hyperconverged integrated unit 1 through the compression and rebound of the spring-loaded telescopic rod 301, thus avoiding collision with the protective cabinet 203.

[0037] The wires connected to the hyperconverged integrated unit 1 are connected to the spring-loaded telescopic rod 205 set in the protective plate 204, and the limiting plate 206 and anti-slip pad 207 set at one end of the spring-loaded telescopic rod 205. When the hyperconverged integrated unit 1 is vibrated, the elastic deformation of the spring-loaded telescopic rod 205 absorbs the impact force, and the limiting plate 206 clamps the wires through the anti-slip pad 207 to prevent the wires from loosening due to shaking.

[0038] Meanwhile, the heat dissipation vents on the upper and lower sides of the protective cabinet 203 have built-in filter frames 4, and filter screens 5 and activated carbon plates 6 arranged in sequence inside the filter frames 4. These can intercept impurities in the external air and adsorb harmful gases during heat dissipation, ensuring the heat dissipation efficiency of the internal hardware while avoiding pollution. The heat dissipation holes 14 of the hyper-converged integrated body 1 directly promote internal air circulation.

[0039] The above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.

Claims

1. A rack-mounted hyperconverged integrated machine structure with anti-vibration bracket, characterized in that, The system includes a hyperconverged integrated unit (1), which is equipped with a protective component (2). The protective component (2) includes mounting blocks (201) fixedly installed on both sides of the hyperconverged integrated unit (1). The surface of the mounting blocks (201) contacts a placement frame (202). A protective cabinet (203) is fixedly connected above and below the placement frame (202). A protective plate (204) is fixedly installed on one side of the hyperconverged integrated unit (1). The protective plate (204) has equidistantly distributed protective grooves. Multiple spring-loaded telescopic rods (205) are fixedly connected to the inner wall of the protective grooves. A limiting plate (206) is fixed to one end of each of the multiple spring-loaded telescopic rods (205). An anti-slip pad (207) is provided on the opposite side of the limiting plate (206). An auxiliary component (3) is provided on the placement frame (202). The auxiliary component (3) includes multiple placement slots opened on the placement frame (202). Multiple auxiliary holes are opened on the inner wall of the multiple placement slots. A spring-loaded telescopic rod two (301) is fixedly connected to the inner wall of the auxiliary hole. An auxiliary plate (302) is fixed to one end of the spring-loaded telescopic rod two (301). One side of the auxiliary plate (302) is in contact with the surface of the mounting block (201).

2. The rack-mounted hyperconverged integrated machine structure with anti-vibration support according to claim 1, characterized in that, The protective cabinet (203) has heat dissipation vents at the top and bottom. A filter frame (4) is attached to the inner wall of the heat dissipation vent. A filter screen (5) and an activated carbon plate (6) are provided on the inner wall of the filter frame (4).

3. The rack-mounted hyperconverged integrated machine structure with anti-vibration support according to claim 2, characterized in that, The protective cabinet (203) has a placement opening on one side, and a protective door (7) is hinged to the inner wall of the placement opening. A sealing gasket (8) is provided on one side of the protective door (7), and the sealing gasket (8) is adapted to the inner wall of the placement opening.

4. The rack-mounted hyperconverged integrated machine structure with anti-vibration support according to claim 3, characterized in that, Multiple shock absorbers (9) are fixedly connected to the bottom of the protective cabinet (203), and a support base (10) is fixedly connected to the bottom of the shock absorber (9).

5. The rack-mounted hyperconverged integrated machine structure with anti-vibration support according to claim 4, characterized in that, A movable wheel (11) is installed below the support base (10), and a fixing screw (12) is threaded onto the support base (10). A fixing plate (13) is fixed to one end of the fixing screw (12).

6. The rack-mounted hyperconverged integrated machine structure with anti-vibration support according to claim 5, characterized in that, The hyper-converged integrated body (1) has heat dissipation holes (14) distributed at equal intervals, and a handle (15) is fixedly installed on one side of the hyper-converged integrated body (1).