Big data platform server storage device

By using electric push rods and inclined transmission blocks to drive the linkage plate in the server storage device, the transition transmission assembly and friction positioning plate are moved downward simultaneously, and the stability and mobility problems of the server storage device in the prior art are solved in multiple parallel settings, achieving higher stability and practicality.

CN223051681UActive Publication Date: 2025-07-01FUJIAN THINKWIN BIG DATA APPLICATION SERVICE CO LTD
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Patent Information

Application Number
CN202421610126.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-09
Publication Date
2025-07-01
Estimated Expiration
2034-07-09

AI Technical Summary

Technical Problem

When existing server storage devices are arranged side by side, the gap is small and there is a lack of manual operation to give way, making it difficult to install and move stably.

Method used

A big data platform server storage device is designed, using electric push rods and inclined transmission blocks to drive the linkage plate, so that the transition transmission assembly and the friction positioning plate are moved downward simultaneously, increasing the support area, and stably connecting the adjacent devices through the assembly assembly.

Benefits of technology

It realizes stable installation and flexible movement of the server storage device when multiple parallel settings are set, enhancing the stability and practicality of the overall device.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of servers, and discloses a big data platform server storage device which comprises a server storage device body, universal wheels installed at the bottom of the server storage device body and a ventilation groove formed in the bottom of the server storage device body. A friction positioning plate and an auxiliary supporting plate are arranged at the bottom of the server storage device body. According to the utility model, the electric push rod drives the corresponding inclined surface transmission pressing block, so that the inclined surface of the electric push rod is gradually contacted with the linkage plate and the downward pressure on the linkage plate is gradually increased by utilizing the inclined surface structure of the electric push rod, and meanwhile, the I-shaped rods and the friction positioning plates in the two transition transmission components synchronously move downwards along with the linkage plate; and the friction positioning plates and the universal wheels are tightly attached to the ground of the placement position of the server storage device body until the bottom surfaces of the friction positioning plates and the bottom surfaces of the universal wheels are coplanar, so that the supporting area of the whole device on the placement position is increased, and the use stability of the whole device is guaranteed.
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Description

Technical Field

[0001] The utility model relates to the technical field of servers, and in particular to a big data platform server storage device. Background Art

[0002] At present, for the server storage device of the big data platform, in addition to the basic data storage function, the hardware structure of the server storage device is also within the scope of improvement of technical personnel in related fields. For example, the patent document with application number 202121829789.3 discloses that "the utility model is provided with an auxiliary mobile structure, so that when the position of the main body and the storage cabinet needs to be adjusted, the working door can be opened and the adjustment knob can be turned to drive the universal wheel to move down to abut against the ground to form support for the base. At this time, the position of the base, storage cabinet and main body can be conveniently adjusted, and after the adjustment is completed, the universal wheel can be reset, and the base can be supported by the support legs, thereby ensuring the stability of the base, storage cabinet and main body, and the practicality is high."

[0003] From the perspective of the disclosed technical content, the existing technology meets the requirements of mobile and stable installation of server storage devices by alternately using supporting structures and mobile structures. However, in reality, multiple server storage devices are arranged in parallel in the placement space with small gaps and lack of space for manual operations. Therefore, the above-mentioned existing technology is not practical in reality. Utility Model Content

[0004] In view of the deficiencies in the prior art, the present invention provides a big data platform server storage device, which solves the problems raised by the above-mentioned background technology.

[0005] The utility model provides the following technical solution: a big data platform server storage device, comprising a server storage device body, a universal wheel installed at the bottom of the server storage device body, and a ventilation slot arranged at the bottom of the server storage device body, wherein the bottom of the server storage device body is respectively provided with a friction positioning plate and an auxiliary support plate, wherein the auxiliary support plate is installed on the bottom surface of the server storage device body, and the friction positioning plate is provided with a clearance hole movably sleeved with the universal wheel;

[0006] Transition transmission assemblies are arranged on both sides of the rear end of the bottom of the auxiliary support plate, and a linkage plate is connected between the bottoms of the two transition transmission assemblies. The bottom surfaces of the two transition transmission assemblies are installed on the top surface of the friction positioning plate. A linear transmission unit is installed at the front end of the bottom of the auxiliary support plate. The output structure of the linear transmission unit can perform extrusion transmission on the middle part of the linkage plate, so that the bottom of the transition transmission assembly and the friction positioning plate move downward until the bottom surface of the friction positioning plate is coplanar with the bottom surface of the universal wheel.

[0007] Preferably, a weight-reducing groove is provided inside the friction positioning plate to reduce the self-weight of the overall device while ensuring the use strength, and the bottom surface of the friction positioning plate can be coplanar with the bottom surface of the universal wheel.

[0008] Preferably, both of the two transition transmission components are composed of a guiding sleeve, an I-shaped rod, and a spring. The top of the guiding sleeve is fixedly connected to the surface of the rear end of the bottom of the auxiliary support plate. The two ends of the I-shaped rod are respectively clamped inside the guiding sleeve and fixedly connected to the top surface of the friction positioning plate. The two ends of the spring are respectively fixedly connected to the surface of one end of the I-shaped rod and the inner wall of the bottom of the guiding sleeve. The two transition transmission components can move synchronously with the friction positioning plate and perform an automatic reset operation on the friction positioning plate before and after movement.

[0009] Preferably, the linkage plate is of an inverted V-shaped structure, and the two ends of the linkage plate are respectively fixedly connected to the surfaces of the other ends of the two I-shaped rods. As a transition transmission structure, the linkage plate can enable the two transition transmission components to perform synchronous transmission operations after being pressed.

[0010] Preferably, the linear transmission unit includes an electric push rod and an inclined surface transmission pressing block. The output end of the electric push rod is drivingly connected to one end of the inclined surface transmission pressing block. The other end of the inclined surface transmission pressing block, as the output structure of the linear transmission unit, can squeeze and drive the middle part of the linkage plate, so that the I-shaped rod and the friction positioning plate move downward until the bottom surface of the friction positioning plate is coplanar with the bottom surface of the universal wheel. The linear transmission unit serves as the power for the activity adjustment of the transition transmission component, improving the automatic use effect of the overall device.

[0011] Preferably, limiting grooves are respectively provided inside the front and rear ends of the friction positioning plate, and assembly components are sleeved inside the two limiting grooves. Both of the two assembly components are composed of an assembly plate, a threaded rod, and a nut. The two ends of the threaded rod are respectively fixedly connected to the top surface of one end of the assembly plate and penetrate through the corresponding limiting groove and extend to the outside of the top of the friction positioning plate. The nut is threadedly connected to the surface of one end of the threaded rod. By using the limiting groove to provide a space for making way and taking the assembly component as a transition structure, finally, two adjacent friction positioning plates can be integrally assembled and connected, fully ensuring the stability of the multiple server storage device bodies arranged during use.

[0012] Preferably, the two assembly plates are respectively clamped inside the two limiting grooves, and the length value of the assembly plate is not less than one-half of the length value of the corresponding limiting groove, ensuring the structural strength of the assembly connection while ensuring the assembly space for making way.

[0013] Compared with the prior art, the present utility model has the following beneficial effects:

[0014] 1. The utility model sets an electric push rod to drive a corresponding inclined plane transmission pressing block, so that the inclined plane gradually contacts the linkage plate and uses its own inclined plane structure to gradually increase the downward pressure on the linkage plate. At the same time, the I-shaped rod and the friction positioning plate inside the two transition transmission components will move downward synchronously with the linkage plate until the bottom surface of the friction positioning plate is coplanar with the bottom surface of the universal wheel, and both are closely attached to the ground at the placement position of the server storage device body, thereby increasing the support area of the overall device at the placement position and ensuring the stability of the overall device during use. Moreover, since the friction positioning plate, the transition transmission component, the auxiliary support plate, and the linear transmission unit are all arranged at the bottom of the server storage device body, they will not occupy the peripheral space of the server storage device body when multiple server storage device bodies are placed side by side, and the practicability is strong.

[0015] 2. After the two assembly components of the utility model are combined with the two limit slots in the middle of the adjacent two friction positioning plates, they can be integrally assembled, so that the two server storage device bodies placed side by side can be used in a relatively integrated structure, further enhancing the stability during the use of the overall device. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] Figure 1 is a front view schematic diagram of the structure of the utility model;

[0017] Figure 2 is a bottom view schematic diagram of the structure of the utility model;

[0018] Figure 3 is a top view schematic diagram of the friction positioning plate of the structure of the utility model;

[0019] Figure 4 is a partial cross-sectional view schematic diagram of the transition transmission component of the structure of the utility model;

[0020] Figure 5 is the structure of the utility model Figure 4 is an enlarged schematic diagram of part A in the figure.

[0021] In the figure: 1. Server storage device body; 2. Universal wheel; 3. Ventilation slot; 4. Friction positioning plate; 5. Auxiliary support plate; 6. Transition transmission component; 61. Guide sleeve; 62. I-shaped rod; 63. Spring; 7. Linear transmission unit; 71. Electric push rod; 72. Inclined plane transmission pressing block; 8. Limit slot; 9. Assembly component; 91. Assembly plate; 92. Threaded rod; 93. Nut; 10. Linkage plate. DETAILED DESCRIPTION OF THE EMBODIMENTS

[0022] The following will be combined with the drawings in the embodiments of the utility model to clearly and completely describe the technical solutions in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, not all of the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the utility model.

[0023] Embodiment 1

[0024] See also Figure 1-2 , Figure 4-5 A big data platform server storage device comprises a server storage device body 1, a universal wheel 2 installed at the bottom of the server storage device body 1, and a ventilation slot 3 arranged at the bottom of the server storage device body 1. A friction positioning plate 4 and an auxiliary support plate 5 are respectively arranged at the bottom of the server storage device body 1. The auxiliary support plate 5 is installed on the bottom surface of the server storage device body 1. A yield hole for movably sleeved with the universal wheel 2 is opened inside the friction positioning plate 4.

[0025] A weight-reducing groove is provided inside the friction positioning plate 4, which reduces the weight of the entire device while ensuring the use strength. The bottom surface of the friction positioning plate 4 can be arranged coplanar with the bottom surface of the universal wheel 2;

[0026] Transition transmission components 6 are provided on both sides of the rear end of the bottom of the auxiliary support plate 5, and a linkage plate 10 is connected between the bottoms of the two transition transmission components 6. The bottom surfaces of the two transition transmission components 6 are installed on the top surface of the friction positioning plate 4. The two transition transmission components 6 are composed of a guide sleeve 61, an I-shaped rod 62, and a spring 63. The top of the guide sleeve 61 is fixedly connected to the surface of the rear end of the bottom of the auxiliary support plate 5. The two ends of the I-shaped rod 62 are respectively clamped in the inside of the guide sleeve 61 and fixedly connected to the top surface of the friction positioning plate 4. The two ends of the spring 63 are respectively fixedly connected to the surface of one end of the I-shaped rod 62 and the inner wall of the bottom of the guide sleeve 61. The two transition transmission components 6 can move synchronously with the friction positioning plate 4 and automatically reset the friction positioning plate 4 before and after the movement. The linkage plate 10 is an inverted V-shaped structure, and the two ends of the linkage plate 10 are respectively fixedly connected to the surface of the other end of the two I-shaped rods 62. The linkage plate 10, as a transition transmission structure, can make the two transition transmission components 6 perform synchronous transmission after being compressed.

[0027] A linear transmission unit 7 is installed at the front end of the bottom of the auxiliary support plate 5. The output structure of the linear transmission unit 7 can squeeze the middle part of the linkage plate 10 to move the bottom of the transition transmission assembly 6 and the friction positioning plate 4 downward until the bottom surface of the friction positioning plate 4 is coplanar with the bottom surface of the universal wheel 2.

[0028] The linear drive unit 7 includes an electric push rod 71 and an inclined plane drive pressing block 72. The output end of the electric push rod 71 is drivingly connected to one end of the inclined plane drive pressing block 72. The other end of the inclined plane drive pressing block 72 serves as the output structure of the linear drive unit 7 and can squeeze and drive the middle part of the linkage plate 10, so that the I-shaped rod 62 and the friction positioning plate 4 move downward until the bottom surface of the friction positioning plate 4 is coplanar with the bottom surface of the universal wheel 2. The linear drive unit 7 serves as the power for the active adjustment of the transition drive assembly 6, improving the automatic use effect of the overall device.

[0029] Working principle: During use, when the server storage device body 1 needs to be conveniently moved, the universal wheel 2 can be used as the moving support, enabling the server storage device body 1 to have a flexible moving effect. When the server storage device body 1 needs to be stably placed at a designated position for use, the electric push rod 71 is started. The output end of the electric push rod 71 drives the inclined plane drive pressing block 72, so that the inclined plane of the inclined plane drive pressing block 72 gradually contacts the linkage plate 10 and gradually increases the downward pressure on the linkage plate 10 by using its own inclined plane structure.

[0030] At the same time, the I-shaped rod 62 and the friction positioning plate 4 inside the two transition drive assemblies 6 will move downward synchronously with the linkage plate 10, and the corresponding two springs 63 are synchronously compressed and contracted until the bottom surface of the friction positioning plate 4 is coplanar with the bottom surface of the universal wheel 2, and both are closely attached to the ground at the placement position of the server storage device body 1, increasing the support area of the overall device at the placement position and ensuring the stability of the overall device during use.

[0031] Embodiment 2

[0032] Please refer to Figure 1-5 , a big data platform server storage device, including a server storage device body 1, universal wheels 2 installed at the bottom of the server storage device body 1, and ventilation slots 3 provided at the bottom of the server storage device body 1. Friction positioning plates 4 and auxiliary support plates 5 are respectively provided at the bottom of the server storage device body 1. The auxiliary support plates 5 are installed on the bottom surface of the server storage device body 1. A relief hole for movably sleeving the universal wheel 2 is provided inside the friction positioning plate 4;

[0033] A weight reduction groove is provided inside the friction positioning plate 4 to reduce the self-weight of the overall device while ensuring the use strength. The bottom surface of the friction positioning plate 4 can be coplanar with the bottom surface of the universal wheel 2;

[0034] On both sides of the rear end of the bottom of the auxiliary support plate 5, transition drive components 6 are provided. A linkage plate 10 is connected between the bottoms of the two transition drive components 6. The bottoms of the two transition drive components 6 are both mounted on the top surface of the friction positioning plate 4. The two transition drive components 6 are each composed of a guide sleeve 61, an I-shaped rod 62, and a spring 63. The top of the guide sleeve 61 is fixedly connected to the surface of the rear end of the bottom of the auxiliary support plate 5. The two ends of the I-shaped rod 62 are respectively clamped inside the guide sleeve 61 and fixedly connected to the top surface of the friction positioning plate 4. The two ends of the spring 63 are respectively fixedly connected to the surface of one end of the I-shaped rod 62 and the inner wall of the bottom of the guide sleeve 61. The two transition drive components 6 can move synchronously with the friction positioning plate 4 and perform an automatic reset operation on the friction positioning plate 4 before and after movement. The linkage plate 10 is of an inverted V-shaped structure, and the two ends of the linkage plate 10 are respectively fixedly connected to the surfaces of the other ends of the two I-shaped rods 62. The linkage plate 10 serves as a transition drive structure and can enable the two transition drive components 6 to perform synchronous drive operations after being pressed;

[0035] At the front end of the bottom of the auxiliary support plate 5, a linear drive unit 7 is installed. The output structure of the linear drive unit 7 can extrude and drive the middle part of the linkage plate 10, causing the bottom of the transition drive component 6 and the friction positioning plate 4 to move downward until the bottom surface of the friction positioning plate 4 is coplanar with the bottom surface of the universal wheel 2;

[0036] The linear drive unit 7 includes an electric push rod 71 and an inclined surface drive pressing block 72. The output end of the electric push rod 71 is drivingly connected to one end of the inclined surface drive pressing block 72. The other end of the inclined surface drive pressing block 72, as the output structure of the linear drive unit 7, can extrude and drive the middle part of the linkage plate 10, causing the I-shaped rod 62 and the friction positioning plate 4 to move downward until the bottom surface of the friction positioning plate 4 is coplanar with the bottom surface of the universal wheel 2. The linear drive unit 7 serves as the power for the active adjustment of the transition drive component 6 and improves the automatic use effect of the overall device;

[0037] Limit slots 8 are respectively opened at the front and rear ends of the friction positioning plate 4. Assembly components 9 are sleeved inside the two limit slots 8. The two assembly components 9 are each composed of an assembly plate 91, a threaded rod 92, and a nut 93. The two ends of the threaded rod 92 are respectively fixedly connected to the top surface of one end of the assembly plate 91 and penetrate through the corresponding limit slot 8 and extend to the outside of the top of the friction positioning plate 4. The nut 93 is threadedly connected to the surface of one end of the threaded rod 92. By using the limit slot 8 to provide a space for making way, and through the assembly component 9 as a transition structure, finally, two adjacent friction positioning plates 4 can be integrally assembled and connected, fully ensuring the stability during the use of a plurality of server storage device bodies 1 arranged in a row. The two assembly plates 91 are respectively clamped inside the two limit slots 8, and the length value of the assembly plate 91 is not less than one-half of the length value of the corresponding limit slot 8, ensuring the structural strength of the assembly connection while ensuring the assembly making-way space.

[0038] Working principle: When in use, when the server storage device body 1 needs to be conveniently moved, the universal wheels 2 can be used as the moving support, so that the server storage device body 1 can have the effect of flexible movement. When the server storage device body 1 is moved to a designated position and needs to be stably placed for use, the electric push rod 71 is started. The output end of the electric push rod 71 drives the inclined plane transmission pressure block 72, so that the inclined plane of the inclined plane transmission pressure block 72 gradually contacts the linkage plate 10 and gradually increases the downward pressure on the linkage plate 10 by using its own inclined plane structure. At the same time, the I-shaped rods 62 and the friction positioning plates 4 inside the two transition transmission components 6 will move downward synchronously with the linkage plate 10, and the corresponding two springs 63 are synchronously compressed and contracted until the bottom surface of the friction positioning plate 4 is coplanar with the bottom surface of the universal wheel 2, and both are closely attached to the ground at the placement position of the server storage device body 1, increasing the support area of the overall device at the placement position and ensuring the stability of the overall device during use;

[0039] For multiple server storage device bodies 1 placed side by side, the assembly plate 91 can be pushed by the threaded rod 92, and then one end of the assembly plate 91 extends into the corresponding limit groove 8 in the other friction positioning plate 4 adjacent to it. The other assembly component 9 also operates according to the above steps, and then the two nuts 93 are rotated until both nuts 93 are attached to the top surface of the corresponding friction positioning plate 4 to ensure the stability of the combination. Thus, by using the assembly of the two assembly components 9 and the corresponding two limit grooves 8, the two server storage device bodies 1 placed side by side can be used in a relatively integrated structure with strong stability.

[0040] It should be noted that in this article, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the term "comprising", "including" or any other variant thereof is intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements not only includes those elements, but also includes other elements not expressly listed, or elements inherent to such process, method, article or device. At the same time, in the drawings of the present utility model, the filling patterns are only for distinguishing layers and are not limited in any other way.

[0041] Although the embodiments of the present utility model have been shown and described, those of ordinary skill in the art can understand that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principle and spirit of the present utility model. The scope of the present utility model is defined by the appended claims and their equivalents.

Claims

1. A big data platform server storage device, comprising a server storage device body (1), a universal wheel (2) mounted at the bottom of the server storage device body (1), and a ventilation slot (3) arranged at the bottom of the server storage device body (1), characterized in that: The bottom of the server storage device body (1) is respectively provided with a friction positioning plate (4) and an auxiliary support plate (5), wherein the auxiliary support plate (5) is mounted on the bottom surface of the server storage device body (1), and the friction positioning plate (4) is provided with a clearance hole for movably sleeved with the universal wheel (2); Transition transmission assemblies (6) are arranged on both sides of the rear end of the bottom of the auxiliary support plate (5), and a linkage plate (10) is connected between the bottoms of the two transition transmission assemblies (6). The bottom surfaces of the two transition transmission assemblies (6) are mounted on the top surface of the friction positioning plate (4). A linear transmission unit (7) is mounted on the front end of the bottom of the auxiliary support plate (5). The output structure of the linear transmission unit (7) can perform extrusion transmission on the middle part of the linkage plate (10), so that the bottom of the transition transmission assembly (6) and the friction positioning plate (4) move downward until the bottom surface of the friction positioning plate (4) is coplanar with the bottom surface of the universal wheel (2).

2. A big data platform server storage device according to claim 1, characterized in that: A weight-reducing groove is provided inside the friction positioning plate (4), and the bottom surface of the friction positioning plate (4) can be arranged coplanar with the bottom surface of the universal wheel (2).

3. The big data platform server storage device according to claim 1, characterized in that: The two transition transmission assemblies (6) are composed of a guide sleeve (61), an I-shaped rod (62), and a spring (63). The top of the guide sleeve (61) is fixedly connected to the surface of the rear end of the bottom of the auxiliary support plate (5), the two ends of the I-shaped rod (62) are respectively clamped in the interior of the guide sleeve (61) and fixedly connected to the top surface of the friction positioning plate (4), and the two ends of the spring (63) are respectively fixedly connected to the surface of one end of the I-shaped rod (62) and the inner wall of the bottom of the guide sleeve (61).

4. The big data platform server storage device according to claim 3, characterized in that: The linkage plate (10) is an inverted V-shaped structure, and the two ends of the linkage plate (10) are respectively fixedly connected to the surfaces of the other ends of the two I-shaped rods (62).

5. The big data platform server storage device according to claim 3, characterized in that: The linear transmission unit (7) comprises an electric push rod (71) and an inclined transmission pressure block (72); the output end of the electric push rod (71) is transmission-connected to one end of the inclined transmission pressure block (72); the other end of the inclined transmission pressure block (72) serves as an output structure of the linear transmission unit (7) and is capable of performing extrusion transmission on the middle part of the linkage plate (10), so that the I-shaped rod (62) and the friction positioning plate (4) move downward until the bottom surface of the friction positioning plate (4) is coplanar with the bottom surface of the universal wheel (2).

6. The big data platform server storage device according to claim 1, characterized in that: The friction positioning plate (4) is provided with limiting grooves (8) at the front and rear ends, and the two limiting grooves (8) are sleeved with assembly components (9) inside. The two assembly components (9) are composed of an assembly plate (91), a threaded rod (92), and a nut (93). The two ends of the threaded rod (92) are respectively fixedly connected to the top surface of one end of the assembly plate (91) and pass through the corresponding limiting groove (8) and extend to the outer side of the top of the friction positioning plate (4). The nut (93) is threadedly connected to the surface of one end of the threaded rod (92).

7. A big data platform server storage device according to claim 6, characterized in that: The two assembly plates (91) are respectively clamped inside the two limiting grooves (8), and the length of the assembly plate (91) is not less than half of the length of the corresponding limiting groove (8).

Citation Information

Patent Citations

  • Big data platform server storage device

    CN215647734U