A big data server storage device

By introducing an extendable support mechanism into the big data server storage device, the problem of alignment difficulties caused by the obstruction of the limit block is solved, enabling convenient server positioning and installation and improving the user experience.

CN224577068UActive Publication Date: 2026-07-31SHANGHAI MORPHONEME INFORMATION TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
SHANGHAI MORPHONEME INFORMATION TECH CO LTD
Filing Date
2025-06-27
Publication Date
2026-07-31

AI Technical Summary

Technical Problem

In existing big data server storage devices, the limit blocks are located inside the cabinet, which makes alignment difficult and operation inconvenient.

Method used

The system employs an extendable support mechanism, including an L-shaped fixing plate, a guide slide, a return spring, and an L-shaped support frame. The L-shaped support frame extends to the outside of the cabinet, and the accurate positioning of the placed tray is achieved through the guidance of the guide slide and the compression of the return spring.

Benefits of technology

It avoids alignment difficulties caused by cabinet obstruction, reduces operational complexity, improves ease of use, and supports top-to-bottom placement to further reduce installation difficulty.

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Abstract

This utility model discloses a big data server storage device, relating to the field of server storage technology, comprising: a storage cabinet assembly for fixing multiple sets of extendable support mechanisms; multiple sets of extendable support mechanisms uniformly fixed inside the storage cabinet assembly along the vertical direction, each set of extendable support mechanisms including two sets of extendable support components located symmetrically on both sides inside the cabinet, each set of extendable support components including an L-shaped fixing plate fixedly mounted on the inner wall of the cabinet, the front of the L-shaped fixing plate being fixedly provided with a guide slide rod. This utility model can avoid the problems of difficult alignment and inconvenient use caused by cabinet obstruction. In addition, when placing the L-shaped mounting plate on top of an adjacent L-shaped support frame, a top-to-bottom placement method can be adopted, further reducing the mounting difficulty.
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Description

Technical Field

[0001] This utility model relates to the field of server storage technology, and in particular to a big data server storage device. Background Technology

[0002] A big data server is a server specifically designed for processing and analyzing massive amounts of data. It is typically equipped with a high-performance processor with multiple cores and a high clock speed, capable of handling a large number of computing tasks simultaneously. It also has a large capacity of high-speed memory for fast data reading and storage.

[0003] A search revealed that utility model patent CN222532018U discloses a big data server storage device, including a cabinet, a fan, a heat dissipation window, and a placement mechanism. The storage mechanism can limit and fix the storage mechanism inside the cabinet. The storage mechanism includes components such as a placement frame, a guide groove, a top plate, and a pop-out mechanism. These components work together to store and place the server. The pop-out mechanism allows the placement frame and the server to be popped out, which is convenient for taking out and placing the server. The structure is simple, easy to use, and highly flexible, making it very practical.

[0004] While the aforementioned device can accommodate big data servers, when inserting the frame containing the big data servers into the cabinet, the guide slots on the left and right ends of the frame need to be aligned with the two adjacent sets of limiting blocks. However, since the limiting blocks are located inside the cabinet, the cabinet will obstruct the limiting blocks during alignment, making it difficult for operators to see the exact position of the limiting blocks. This makes the alignment operation difficult and inconvenient in actual use.

[0005] Therefore, it is necessary to invent a big data server storage device to solve the above problems. Utility Model Content

[0006] The purpose of this utility model is to provide a big data server storage device that avoids the problems of difficult alignment and inconvenience caused by cabinet obstruction. In addition, when placing the L-shaped mounting plate on top of the adjacent L-shaped support frame, a top-to-bottom placement method can be adopted to further reduce the mounting difficulty. This solves the problem mentioned in the background art that when inserting the placement frame containing the big data server into the cabinet, the guide grooves on the left and right ends of the placement frame need to be aligned with the two adjacent sets of limiting blocks. However, since the limiting blocks are located inside the cabinet, the cabinet will obstruct the limiting blocks during actual alignment, making it impossible for the operator to see the accurate position of the limiting blocks, resulting in difficult alignment and inconvenience in actual use.

[0007] According to one aspect of this disclosure, the following technical solution is provided: a big data server storage device, comprising:

[0008] A storage cabinet assembly for securing multiple sets of extendable support mechanisms;

[0009] Multiple sets of extendable support mechanisms are uniformly fixed vertically inside the storage cabinet assembly. Each set of extendable support mechanisms includes two sets of symmetrical extendable support components located on both sides inside the cabinet. Each set of extendable support components includes an L-shaped fixing plate fixed to the inner wall of the cabinet. A guide slide rod is fixedly installed on the front of the L-shaped fixing plate. A return spring A and an L-shaped support frame are sequentially sleeved on the guide slide rod from back to front. The return spring A is fixedly connected between the inner wall of the L-shaped fixing plate and the L-shaped support frame. The L-shaped support frame extends to the outside of the cabinet. A guide channel is provided through the front of the L-shaped support frame. The guide slide rod is slidably installed inside the guide channel. A locking hole is provided through the sliding groove at the front end of the side of the L-shaped fixing plate.

[0010] Multiple server placement mechanisms mounted on adjacent extendable support mechanisms are used to support big data servers.

[0011] According to at least one embodiment of the big data server storage device disclosed herein, the storage cabinet component includes a cabinet body, the front of the cabinet body is provided with an opening, a plurality of heat dissipation channels A are evenly provided on both sides of the cabinet body, and support legs are fixedly provided at the four corners of the bottom of the cabinet body.

[0012] According to at least one embodiment of the big data server storage device of the present disclosure, any group of the server placement mechanisms includes a placement tray, and the top of the placement tray is evenly provided with a plurality of heat dissipation channels B.

[0013] According to at least one embodiment of the big data server storage device of the present disclosure, each of the four corners of the top of the placement tray is fixedly provided with an L-shaped limiting plate, and the four L-shaped limiting plates limit the big data server placed on the top of the placement tray.

[0014] According to at least one embodiment of the big data server storage device of the present disclosure, both sides of the placement tray are provided with placement components, and any group of placement components includes an L-shaped mounting plate fixedly disposed on the side of the placement tray.

[0015] According to at least one embodiment of the big data server storage device of this disclosure, a locking bolt adapted to a locking hole is slidably provided through the inner front end of the L-shaped mounting plate, and a fixing collar and a return spring B are sleeved on the outer side of the locking bolt. The fixing collar is fixedly connected between the L-shaped mounting plate and the return spring B, and the return spring B is fixedly connected to the locking bolt.

[0016] The technical effects and advantages of this utility model are as follows:

[0017] This invention features an extendable support mechanism to facilitate the support of servers housing big data servers. Since the front end of the L-shaped support extends outside the cabinet, the cabinet does not obstruct the front end of the L-shaped mounting plate. After placing the two L-shaped mounting plates on either side of the placement tray onto the tops of the two adjacent L-shaped support frames, the placement tray is pushed backward. As the tray moves backward, the two L-shaped mounting plates slide on top of the two L-shaped support frames. Simultaneously, as the L-shaped mounting plates move backward, they drive the L-shaped support frames backward through the short ends of the L-shaped support frames. The L-shaped support frames are guided by guide rods and guide channels, simultaneously compressing the adjacent return spring A until the server placement mechanism reaches the predetermined position. Compared to existing technologies, this invention avoids the difficulty of alignment and inconvenience caused by cabinet obstruction. Furthermore, when placing the L-shaped mounting plates onto the tops of adjacent L-shaped support frames, a top-to-bottom placement method can be used, further reducing the difficulty of placement. Attached Figure Description

[0018] The accompanying drawings illustrate exemplary embodiments of the present disclosure and, together with the description thereof, serve to explain the principles of the present disclosure. These drawings are included to provide a further understanding of the present disclosure and are incorporated in and constitute a part of this specification.

[0019] Figure 1 This is a schematic diagram of the overall structure of a big data server storage device according to one embodiment of the present disclosure.

[0020] Figure 2 This is a schematic diagram of the extendable support mechanism structure of a big data server storage device according to one embodiment of the present disclosure.

[0021] Figure 3 This is a schematic diagram of the server placement mechanism of a big data server storage device according to one embodiment of the present disclosure.

[0022] The specific labels in the attached figures are as follows:

[0023] 1. Storage cabinet components; 11. Cabinet body; 12. Ventilation channel A; 13. Support legs;

[0024] 2. Extendable support mechanism; 21. L-shaped fixing plate; 22. Guide slide rod; 23. Return spring A; 24. L-shaped support frame; 25. Guide channel; 26. Locking hole;

[0025] 3. Server placement mechanism; 31. Placement tray; 32. Heat dissipation channel B; 33. L-shaped limiting plate; 34. L-shaped mounting plate; 35. Locking bolt; 36. Fixing collar; 37. Return spring B. Detailed Implementation

[0026] For descriptive purposes, this disclosure may use spatial relative terms such as “below,” “under,” “below,” “down,” “above,” “above,” “higher,” and “side (e.g., in a “sidewall”)” to describe the relationship between one component and another component as shown in the accompanying drawings. In addition to the orientations depicted in the drawings, the spatial relative terms are also intended to encompass different orientations of the device during use, operation, and / or manufacture. For example, if the device in the drawings is flipped, a component described as “below” or “under” other components or features would subsequently be positioned “above” said other components or features. Thus, the exemplary term “below” can encompass both “above” and “below” orientations. Furthermore, the device may be otherwise positioned (e.g., rotated 90 degrees or in other orientations), thus interpreting the spatial relative descriptive terms used herein accordingly.

[0027] Figure 1 This is a schematic diagram of the overall structure of a big data server storage device according to one embodiment of the present disclosure.

[0028] Figure 2 This is a schematic diagram of the extendable support mechanism 2 of a big data server storage device according to one embodiment of the present disclosure.

[0029] Figure 3 This is a schematic diagram of the server placement mechanism 3 of a big data server storage device according to one embodiment of the present disclosure.

[0030] like Figures 1-3 As shown, the big data server storage device disclosed herein may include: a storage cabinet component 1, multiple sets of extendable support mechanisms 2 uniformly fixed in the vertical direction inside the storage cabinet component 1, and multiple sets of server placement mechanisms 3 mounted on adjacent extendable support mechanisms 2, etc.

[0031] like Figure 1 As shown in the present disclosure, the storage cabinet assembly 1 includes a cabinet body 11, with an opening on the front of the cabinet body 11, and multiple heat dissipation channels A12 evenly provided on both sides of the cabinet body 11. Support legs 13 are fixedly provided at the four corners of the bottom of the cabinet body 11.

[0032] Therefore, multiple heat dissipation channels A12 can assist in better heat dissipation of the big data servers during operation.

[0033] like Figure 2 As shown, in a preferred embodiment, any set of extendable support mechanisms 2 includes two sets of extendable support components located symmetrically on both sides inside the cabinet 11. Each set of extendable support components includes an L-shaped fixing plate 21 fixedly mounted on the inner wall of the cabinet 11. A guide slide rod 22 is fixedly mounted on the front of the L-shaped fixing plate 21. A return spring A23 and an L-shaped support frame 24 are sequentially sleeved on the guide slide rod 22 from back to front. The return spring A23 is fixedly connected between the inner wall of the L-shaped fixing plate 21 and the L-shaped support frame 24. The L-shaped support frame 24 extends to the outside of the cabinet 11. A guide channel 25 is provided through the front of the L-shaped support frame 24. The guide slide rod 22 is slidably mounted inside the guide channel 25. A locking hole 26 is provided through the sliding groove at the front end of the side of the L-shaped fixing plate 21.

[0034] Therefore, when actually supporting the server placement mechanism 3 containing the big data server, since the front end of the L-shaped support frame 24 extends to the outside of the cabinet 11, the cabinet 11 will not obstruct the front end of the L-shaped fixing plate 21. Thus, after placing the two L-shaped mounting plates 34 on the sides of the placement tray 31 onto the tops of the two adjacent L-shaped support frames 24, pushing the placement tray 31 backward causes the two L-shaped mounting plates 34 to slide on top of the two L-shaped support frames 24. Simultaneously, as the L-shaped mounting plates 34 continue to move backward, the L... The L-shaped mounting plate 34 drives the L-shaped support frame 24 to move backward synchronously through the short end of the L-shaped support frame 24. When the L-shaped support frame 24 moves backward, it is guided by the guide slide rod 22 and the guide channel 25, and at the same time, it compresses the adjacent reset spring A23 until the server placement mechanism 3 reaches the predetermined position. Compared with the prior art, it can avoid the problem of difficult alignment and inconvenient use caused by the cabinet 11 blocking the view. In addition, when the L-shaped mounting plate 34 is placed on top of the adjacent L-shaped support frame 24, a top-to-bottom placement method can be adopted to further reduce the mounting difficulty.

[0035] like Figure 3As shown in this disclosure, any set of server placement mechanisms 3 includes a placement tray 31. The top of the placement tray 31 is evenly provided with multiple heat dissipation channels B32. L-shaped limiting plates 33 are fixedly provided at the four corners of the top of the placement tray 31. The four L-shaped limiting plates 33 limit the big data server placed on the top of the placement tray 31. Placement components are provided on both sides of the placement tray 31. Any set of placement components includes an L-shaped mounting plate 34 fixedly provided on the side of the placement tray 31. A locking bolt 35 adapted to the locking hole 26 is slidably provided through the front end of the inner side of the L-shaped mounting plate 34. A fixing collar 36 and a return spring B37 are sleeved on the outer side of the locking bolt 35. The fixing collar 36 is fixedly connected between the L-shaped mounting plate 34 and the return spring B37. The return spring B37 is fixedly connected to the locking bolt 35.

[0036] This allows the big data server to be placed on top of the placement tray 31. At this time, four L-shaped limiting plates 33 are respectively attached to the four corners of the big data server to limit its movement. Multiple heat dissipation channels B32 can better dissipate heat during the operation of the big data server. Subsequently, when the L-shaped mounting plate 34 slides on top of the L-shaped support frame 24 and drives the placement tray 31 to move to the predetermined work position, the locking bolt 35 is pulled outward to avoid it. When the locking bolt 35 moves outward, the fixing collar 36 is compressed by the return spring B37. After the placement tray 31 drives the big data server to the predetermined work position, the locking bolt 35 is released. The compressed fixing collar 36 is driven by the return spring B37 to insert the locking bolt 35 into the inner side of the adjacent locking hole 26 to complete the locking and ensure the installation is stable.

[0037] It should also be noted that any content not described in detail in this specification is prior art known to those skilled in the art.

[0038] Those skilled in the art should understand that the above embodiments are merely for illustrating the present disclosure and are not intended to limit the scope of the disclosure. Those skilled in the art can make other changes or modifications based on the above disclosure, and these changes or modifications still fall within the scope of the present disclosure.

Claims

1. A big data server storage device, characterized by, include: A storage cabinet assembly for securing multiple sets of extendable support mechanisms; Multiple sets of extendable support mechanisms are uniformly fixed vertically inside the storage cabinet assembly. Each set of extendable support mechanisms includes two sets of symmetrical extendable support components located on both sides inside the cabinet. Each set of extendable support components includes an L-shaped fixing plate fixed to the inner wall of the cabinet. A guide slide rod is fixedly installed on the front of the L-shaped fixing plate. A return spring A and an L-shaped support frame are sequentially sleeved on the guide slide rod from back to front. The return spring A is fixedly connected between the inner wall of the L-shaped fixing plate and the L-shaped support frame. The L-shaped support frame extends to the outside of the cabinet. A guide channel is provided through the front of the L-shaped support frame. The guide slide rod is slidably installed inside the guide channel. A locking hole is provided through the sliding groove at the front end of the side of the L-shaped fixing plate. Multiple server placement mechanisms mounted on adjacent extendable support mechanisms are used to support big data servers.

2. The big data server storage apparatus according to claim 1, wherein: The storage cabinet assembly includes a cabinet body with an opening on the front and multiple heat dissipation channels A evenly distributed on both sides of the cabinet body. Support legs are fixedly installed at the four corners of the bottom of the cabinet body.

3. The big data server storage apparatus of claim 2, wherein: Each of the server placement mechanisms includes a placement tray, and the top of the placement tray has multiple heat dissipation channels B evenly distributed.

4. The big data server storage apparatus of claim 3, wherein: Each of the four corners of the top of the placement tray is fixedly equipped with an L-shaped limiting plate, which limits the big data server placed on top of the placement tray.

5. The big data server storage apparatus of claim 4, wherein: Placement components are provided on both sides of the placement tray, and each set of placement components includes an L-shaped mounting plate fixedly disposed on the side of the placement tray.

6. The big data server storage device according to claim 5, characterized in that: A locking bolt adapted to a locking hole is slidably provided through the inner front end of the L-shaped mounting plate. A fixing collar and a return spring B are sleeved on the outer side of the locking bolt. The fixing collar is fixedly connected between the L-shaped mounting plate and the return spring B. The return spring B is fixedly connected to the locking bolt.