Big data server cabinet

By introducing sliding components and locking components into the server cabinet, the problem of fixed distance of the placing board in the prior art is solved, and the server is highly flexible in adjusting the server and the stability of the placing board is achieved, making it easy to operate and use.

CN120091523AInactive Publication Date: 2025-06-03XUZHOU XINRUIMING CULTURE MEDIA CO LTD
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Patent Information

Application Number
CN202510246708.3
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-04
Publication Date
2025-06-03
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The distance between the placed boards in the existing server cabinet is fixed and cannot be adjusted, resulting in only servers with a height less than the distance between the two placed boards, which is poor in practicality.

Method used

A big data server cabinet is designed to quickly adjust the distance between adjacent placement plates by setting sliding parts, threaded rods, sliders and sliders in the cabinet body, and ensure the stability and convenient operation of the placement plates through locking components and pulling components.

Benefits of technology

It realizes flexible adjustment of the distance between the placing boards, adapts to server placement at different heights, improves the practicality of the cabinet and the stability of the server, and ensures the security of the placing boards and the convenience of operation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of server cabinets, in particular to a big data server cabinet which comprises a cabinet body, and three placing plates are arranged in the cabinet body; mounting grooves are formed in the upper surfaces of the two placing plates located on the lower portion, sliding grooves are formed in the lower surfaces of the two placing plates located on the upper portion, threaded rods with the left end and the right end opposite in thread direction are horizontally and rotationally installed in the mounting grooves, sliding blocks are symmetrically connected to the threaded rods in a threaded and sleeving mode, and sliding rods are horizontally and fixedly installed in the sliding grooves; the sliding rods are symmetrically sleeved with sliding blocks in a sliding mode, and two hinged rods which are arranged in a crossed mode are arranged between every two containing plates. Through cooperation of the supporting component, the multiple threaded rods, the multiple sliding blocks, the multiple sliding rods and the multiple sliding blocks, the distance between every two adjacent containing plates can be rapidly adjusted, the distance between every two adjacent containing plates is not constant any more, a server capable of being placed is not at a certain height any more, and the practicability of the device is improved.
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Description

Technical Field

[0001] The present invention relates to the technical field of server cabinets, and in particular to a big data server cabinet. Background Art

[0002] In order to perform operations and storage on a large amount of data, various data storage centers and computing centers have been established in large numbers. Among them, big data servers, as important devices for processing and storing big data, are widely used. Server cabinets are devices used to install multiple servers inside themselves, enabling multiple servers to work together to perform operations and storage on a large amount of data, facilitating management and saving space.

[0003] In existing server cabinets, the distance between multiple placement boards for placing servers is constant and cannot be adjusted. Only servers with a height less than the distance between two placement boards can be placed. If the height of the server to be placed is greater than the distance between two placement boards, then the server cannot be placed inside the cabinet body, and the practicality is poor. Summary of the Invention

[0004] The purpose of the present invention is to solve the following disadvantages in the prior art: the distance between multiple placement boards for placing servers in existing server cabinets is constant and cannot be adjusted. Only servers with a height less than the distance between two placement boards can be placed. If the height of the server to be placed is greater than the distance between two placement boards, then the server cannot be placed inside the cabinet body, and the practicality is poor. A big data server cabinet is proposed.

[0005] In order to achieve the above purpose, the present invention adopts the following technical scheme:

[0006] A big data server cabinet includes a cabinet body. Three placement boards are provided inside the cabinet body. The bottom of the lowermost placement board is horizontally slidably configured inside the cabinet body through a sliding member;

[0007] Installation grooves are provided on the upper surfaces of the two lower placement boards, and sliding grooves are provided on the lower surfaces of the two upper placement boards. A threaded rod with opposite thread directions at both left and right ends is horizontally rotatably installed in the installation groove. U-shaped sliders are symmetrically threadedly sleeved on the threaded rod. A sliding rod is horizontally fixedly installed in the sliding groove. U-shaped sliding blocks are symmetrically slidably sleeved on the sliding rod. A support member is provided between each two placement boards. The support member includes two hinged rods arranged in a cross shape. Rotating shafts are rotatably installed inside the sliders and the sliding blocks. Both ends of multiple hinged rods are respectively fixedly sleeved on multiple rotating shafts. One end of the threaded rod passes through the placement board and is fixedly installed with an adjusting wheel.

[0008] Preferably, the left and right side walls of the slider are respectively in sliding contact with the left and right groove walls of the installation groove, and the left and right side walls of the sliding block are respectively in sliding contact with the left and right groove walls of the sliding groove.

[0009] Preferably, the sliding member includes two convex blocks symmetrically and fixedly installed on the lower surface of the lowermost placing plate, and convex grooves are symmetrically and horizontally opened at the bottom of the cabinet body. The two convex blocks are respectively slidably arranged in the two convex grooves.

[0010] Preferably, two pairs of fixing blocks are fixedly installed on the surface of the cabinet body. A rotating rod is vertically rotatably installed between each pair of fixing blocks. A cabinet door is fixedly sleeved on the rotating rod. A U-shaped handle is fixedly installed on the surface of the cabinet door. Magnetic strips are adhered to the mutually approaching surfaces of the cabinet doors. The mutually approaching surfaces of the two magnetic strips have opposite magnetic poles.

[0011] Preferably, a locking component is provided on the surface of the lowermost placing plate, and the locking component is used to lock the positions of multiple placing plates.

[0012] Preferably, the locking component includes a mounting plate fixedly installed on the surface of the lowermost placing plate, two spring rods respectively fixedly installed on the left and right side walls of the mounting plate, and two locking blocks respectively fixedly installed at the mutually remote ends of the two spring rods. A slot for inserting the mounting plate and the two spring rods is opened on the inner wall of the cabinet body. Locking grooves for inserting the locking blocks are opened on the left and right groove walls in the slot. The two spring rods are controlled to contract together through a pulling component.

[0013] Preferably, the pulling component includes two pulling plates respectively fixedly sleeved on the two spring rods. An installation opening is opened on the surface of the lowermost placing plate. The ends of the two pulling plates away from the spring rods both penetrate through the installation opening, and anti-slip layers are adhered to the surfaces. The anti-slip layer is made of rubber.

[0014] Preferably, inclined openings are symmetrically opened at the notch of the slot. The locking block is triangular in shape. The inclined surfaces of the two inclined openings are respectively arranged face to face with the inclined surfaces of the two locking blocks.

[0015] Preferably, two spherical grooves are opened on the lower surface of the convex block. Rolling balls are respectively and rotatably embedded in the spherical grooves. The rolling balls are in rolling contact with the convex groove.

[0016] Compared with the prior art, the beneficial effects of the present invention are:

[0017] 1. Through the cooperation between the supporting component, multiple threaded rods, multiple sliders, multiple sliding rods and multiple sliding blocks, the distance between two adjacent placing plates can be quickly adjusted. The distance between two adjacent placing plates is no longer constant, and the servers that can be placed are no longer of a certain height, improving the practicability of the device;

[0018] 2. The locking component can lock the positions of multiple placement boards located inside the cabinet, preventing the multiple placement boards slidably arranged inside the cabinet from moving horizontally inside the cabinet under the action of external forces, which may cause the multiple placement boards to rush out of the cabinet, thus making the cabinet unable to provide effective protection for multiple servers.

[0019] 3. When it is necessary to place or take out a server, the locking of the placement board can be released by pulling the component, and then the placement board can be controlled to move horizontally inside the cabinet until all the multiple placement boards are moved out of the cabinet. At this time, placement or taking out of the server can be carried out. The external operating space is large and the light is good, without the need to carry out operations in the narrow and dim space inside the cabinet, which is convenient for operation.

[0020] 4. After the server is placed on the placement board, the placement board located above the server can be controlled to move downward until the lower surface of the upper placement board abuts against the upper surface of the server. In this way, the server placed on the placement board can be pressed and clamped to prevent the server placed on the placement board from shifting in position under the influence of external forces. BRIEF DESCRIPTION OF THE DRAWINGS

[0021] Figure 1 It is a front three-dimensional structure schematic diagram of a big data server cabinet proposed by the present invention;

[0022] Figure 2 It is a bottom three-dimensional structure schematic diagram of a big data server cabinet proposed by the present invention;

[0023] Figure 3 It is a partial three-dimensional structure schematic diagram of the lowermost placement board and the cabinet body in a big data server cabinet proposed by the present invention;

[0024] Figure 4 It is a partial top view cross-sectional structure schematic diagram of the cabinet body in a big data server cabinet proposed by the present invention;

[0025] Figure 5 It is a three-dimensional structure schematic diagram of a convex block in a big data server cabinet proposed by the present invention;

[0026] Figure 6 It is Figure 1 The enlarged structure schematic diagram at A in

[0027] Figure 7 It is Figure 1 The enlarged structure schematic diagram at B in

[0028] Figure 8 It is Figure 2 The enlarged structure schematic diagram at C in

[0029] Figure 9 For Figure 3 The enlarged structural schematic diagram at position D in

[0030] Figure 10 For Figure 3 The enlarged structural schematic diagram at position E in

[0031] In the figure: 1 cabinet body, 2 placing plate, 3 threaded rod, 4 slider, 5 slide bar, 6 sliding block, 7 adjusting wheel, 8 installation groove, 9 chute, 10 hinge rod, 11 rotating shaft, 12 convex block, 13 convex groove, 14 fixed block, 15 cabinet door, 16 magnetic strip, 17 mounting plate, 18 spring rod, 19 locking block, 20 slot, 21 locking groove, 22 pull plate, 23 mounting opening, 24 handle, 25 bevel, 26 rolling ball. Specific implementation manner

[0032] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments.

[0033] Referring to Figures 1 - 10 , a big data server cabinet includes a cabinet body 1. There are three placing plates 2 provided inside the cabinet body 1. The bottom of the lowermost placing plate 2 is horizontally slidably configured inside the cabinet body 1 through a sliding member. The sliding member includes two convex blocks 12 symmetrically and fixedly installed on the lower surface of the lowermost placing plate 2. Convex grooves 13 are symmetrically and horizontally opened at the bottom of the cabinet body 1. The two convex blocks 12 are respectively slidably configured in the two convex grooves 13;

[0034] Installation grooves 8 are opened on the upper surfaces of the two lower placing plates 2, and chutes 9 are opened on the lower surfaces of the two upper placing plates 2. Threaded rods 3 with opposite thread directions at both ends are horizontally rotatably installed in the installation grooves 8. U-shaped sliders 4 are symmetrically threaded on the threaded rods 3. Slide bars 5 are horizontally and fixedly installed in the chutes 9. U-shaped sliding blocks 6 are symmetrically slidably sleeved on the slide bars 5. A support member is provided between every two placing plates 2. The support member includes two hinge rods 10 arranged in a cross shape. Rotating shafts 11 are rotatably installed in both the sliders 4 and the sliding blocks 6. Both ends of multiple hinge rods 10 are respectively fixedly sleeved on multiple rotating shafts 11. One end of the threaded rod 3 passes through the placing plate 2 and is fixedly installed with an adjusting wheel 7. The left and right side walls of the slider 4 are respectively in sliding contact with the left and right groove walls of the installation groove 8. The left and right side walls of the sliding block 6 are respectively in sliding contact with the left and right groove walls of the chute 9. Under the limiting action of the groove walls of the installation groove 8, the slider 4 can only move horizontally in the installation groove 8 and cannot rotate together with the threaded rod 3. Under the limiting action of the groove walls of the chute 9, the sliding block 6 can only move horizontally in the chute 9 and cannot rotate on the slide bar 5;

[0035] The staff can control the rotation of the threaded rod 3 by rotating the adjustment wheel 7. During the rotation of the threaded rod 3, the two symmetrically threaded sliders 4 sleeved on the threaded rod 3 will move relatively in the horizontal direction. When the two sliders 4 move closer to each other in the horizontal direction, under the action of the two cross - arranged hinge rods 10, the placement plate 2 located above the threaded rod 3 will move vertically upward, and thus the distance between the two placement plates 2 will gradually increase. When the two sliders 4 move away from each other in the horizontal direction, under the action of the two cross - arranged hinge rods 10, the placement plate 2 located above the threaded rod 3 will move vertically downward, and thus the distance between the two placement plates 2 will gradually decrease;

[0036] That is, the distance between multiple placement plates 2 is no longer constant. The staff can quickly adjust the distance between two adjacent placement plates 2 according to the height of the server to be placed. The servers that can be placed are not of a certain height, which improves the practicability of the device;

[0037] At the same time, after the server is placed on the placement plate 2, the placement plate 2 located above the server can be controlled to move downward until the lower surface of the upper placement plate 2 abuts against the upper surface of the server. In this way, the server placed on the placement plate 2 can be pressed and clamped, avoiding the position deviation of the server placed on the placement plate 2 due to the influence of external forces, and improving the stability of the server during operation.

[0038] Two pairs of fixing blocks 14 are fixedly installed on the surface of the cabinet body 1. A rotating rod is vertically rotatably installed between each pair of fixing blocks 14. A cabinet door 15 is fixedly sleeved on the rotating rod. A U - shaped handle 24 is fixedly installed on the surface of the cabinet door 15. Magnetic strips 16 are bonded to the mutually - facing surfaces of the cabinet doors 15, and the mutually - facing surfaces of the two magnetic strips 16 have opposite magnetic poles;

[0039] When the two cabinet doors 15 are rotated relative to each other until they abut against each other, the cabinet body 1 can be closed, and at this time, the two magnetic strips 16 will attract each other, thus simply locking the two cabinet doors 15.

[0040] The surface of the lowermost placement plate 2 is provided with a locking component for locking the positions of multiple placement plates 2. The locking component includes a mounting plate 17 fixedly installed on the surface of the lowermost placement plate 2, two spring rods 18 respectively fixedly installed on the left and right side walls of the mounting plate 17, and two locking blocks 19 respectively fixedly installed at the mutually - remote ends of the two spring rods 18. Slots 20 for the insertion of the mounting plate 17 and the two spring rods 18 are provided on the inner wall of the cabinet body 1. Locking grooves 21 for the insertion of the locking blocks 19 are provided on the left and right groove walls of the slot 20. The two spring rods 18 are controlled to contract together through a pulling component;

[0041] The pulling component includes two pulling plates 22 respectively and fixedly sleeved on two spring rods 18. An installation opening 23 is formed on the surface of the lowermost placing plate 2. One ends of the two pulling plates 22 away from the spring rods 18 both penetrate through the installation opening 23, and anti-slip layers are adhered to the surfaces. The material of the anti-slip layer is rubber;

[0042] In the initial state, the ends of the two locking blocks 19 will respectively insert into the two locking grooves 21, so as to complete the locking of multiple placing plates 2, and prevent the multiple placing plates 2 slidably arranged in the cabinet body 1 from moving horizontally in the cabinet body 1 under the action of an external force, which may cause the multiple placing plates 2 to rush out of the cabinet body 1, resulting in the cabinet body 1 being unable to provide effective protection for multiple servers;

[0043] When it is necessary to place or take out a server, first control the two pulling plates 22 to move closer to each other horizontally. Then, the two spring rods 18 will contract together, and the two locking blocks 19 will respectively move out of the two locking grooves 21, thus unlocking the placing plate 2. Then control the multiple placing plates 2 to move horizontally in the cabinet body 1 until the multiple placing plates 2 all move out of the cabinet body 1. At this time, placing or taking out the server can be carried out. The external operation space is large and the light is good, without the need to carry out the operation in the narrow and dim space inside the cabinet body 1, which is convenient for operation;

[0044] After the operation is completed, control the placing plate 2 to move back into the cabinet body 1 again, and control the two pulling plates 22 to move closer to each other horizontally. Then, the two spring rods 18 will contract together. During the moving-back process, the mounting plate 17, the two spring rods 18 and the two locking blocks 19 will all enter the slot 20 until the end of the mounting plate 17 abuts against the slot wall of the slot 20. At this time, the two locking blocks 19 will respectively correspond to the positions of the two locking grooves 21. Then release the two pulling plates 22, and the two pulling plates 22 will quickly move back to their original positions under the elastic potential energy of the two spring rods 18, and the two locking blocks 19 will also quickly move back to their original positions under the elastic potential energy of the spring rods 18 and insert into the locking grooves 21 corresponding to their own positions, so as to complete the locking of the multiple placing plates 2 again.

[0045] Oblique openings 25 are symmetrically formed at the notch of the slot 20. The shape of the locking block 19 is triangular, and the inclined surfaces of the two oblique openings 25 are respectively arranged face to face with the inclined surfaces of the two locking blocks 19;

[0046] When it is necessary to lock multiple placement plates 2, it is only necessary to control the placement plate 2 to move into the cabinet body 1. The inclined surfaces of the two locking blocks 19 will respectively slide into contact with the inclined surfaces of the two inclined openings 25. Under the action of the inclined surface pressing, the two spring rods 18 will contract together until the end of the mounting plate 17 abuts against the inner wall of the slot 20. At this time, the two locking blocks 19 will respectively correspond to the positions of the two locking slots 21. At this time, the pressing force of the inner wall of the slot 20 on the locking block 19 disappears, and the two locking blocks 19 will quickly move back under the elastic potential energy of the spring rods 18 and respectively insert into the two locking slots 21, thus completing the locking of the placement plate 2 without the need to manually control the two pull plates 22 to approach each other, which is more convenient.

[0047] Two spherical grooves are formed in the lower surface of the convex block 12, and rolling balls 26 are respectively and rotatably embedded in the spherical grooves. The rolling balls 26 are in rolling contact with the convex groove 13.

[0048] The rolling balls 26 can reduce the friction between the contact surfaces of the convex block 12 and the convex groove 13, avoiding jamming when controlling the movement of the placement plate 2.

[0049] In the present invention, the staff can control the rotation of the threaded rod 3 by rotating the adjusting wheel 7. During the rotation of the threaded rod 3, the two symmetrically threaded sliders 4 sleeved on the threaded rod 3 will move relatively in the horizontal direction. When the two sliders 4 move closer to each other in the horizontal direction, under the action of the two cross-set hinge rods 10, the placement plate 2 located above the threaded rod 3 will move vertically upward, and then the distance between the two placement plates 2 will gradually increase. When the two sliders 4 move away from each other in the horizontal direction, under the action of the two cross-set hinge rods 10, the placement plate 2 located above the threaded rod 3 will move vertically downward, and then the distance between the two placement plates 2 will gradually decrease. That is, the distance between the multiple placement plates 2 is no longer constant. The staff can quickly adjust the distance between two adjacent placement plates 2 according to the height of the server to be placed. The servers that can be placed are not of a certain height, improving the practicability of the device.

[0050] The above is only a preferred specific embodiment of the present invention, but the protection scope of the present invention is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present invention, according to the technical solution and inventive concept of the present invention, makes equivalent substitutions or changes, and should be covered by the protection scope of the present invention.

Claims

1. A big data server cabinet, comprising a cabinet body (1), characterized in that: Three placement boards (2) are arranged in the cabinet (1), and the bottom of the lowest placement board (2) is arranged in the cabinet (1) by horizontal sliding through a sliding component; The upper surfaces of the two placement plates (2) located at the bottom are both provided with mounting grooves (8), and the lower surfaces of the two placement plates (2) located at the top are both provided with sliding grooves (9). A threaded rod (3) with opposite thread directions at the left and right ends is horizontally rotatably installed in the mounting groove (8), a U-shaped slider (4) is symmetrically threadedly sleeved on the threaded rod (3), a sliding rod (5) is horizontally fixedly installed in the sliding groove (9), and a U-shaped sliding block (6) is symmetrically slidably sleeved on the sliding rod (5). A supporting component is provided between each two placement plates (2), and the supporting component includes two cross-arranged hinged rods (10), and rotating shafts (11) are rotatably installed in the slider (4) and the sliding block (6). The two ends of the plurality of hinged rods (10) are respectively fixedly sleeved on the plurality of rotating shafts (11), and one end of the threaded rod (3) passes through the placement plate (2) and is fixedly installed with an adjusting wheel (7).

2. A big data server cabinet according to claim 1, characterized in that: The left and right side walls of the sliding block (4) are in sliding contact with the left and right groove walls of the mounting groove (8) respectively, and the left and right side walls of the sliding block (6) are in sliding contact with the left and right groove walls of the sliding groove (9) respectively.

3. A big data server cabinet according to claim 1, characterized in that: The sliding component comprises two convex blocks (12) symmetrically fixedly mounted on the lower surface of the lowest placement plate (2); a convex groove (13) is symmetrically horizontally opened at the bottom of the cabinet (1); and the two convex blocks (12) are respectively slidably arranged in the two convex grooves (13).

4. A big data server cabinet according to claim 1, characterized in that: Two pairs of fixed blocks (14) are fixedly mounted on the surface of the cabinet body (1), a rotating rod is vertically rotatably mounted between each pair of the fixed blocks (14), a cabinet door (15) is fixedly sleeved on the rotating rod, a U-shaped handle (24) is fixedly mounted on the surface of the cabinet door (15), and magnetic strips (16) are bonded to the sides of the cabinet doors (15) that are close to each other, and the magnetic poles of the two magnetic strips (16) that are close to each other are opposite.

5. A big data server cabinet according to claim 1, characterized in that: A locking component is provided on the surface of the lowermost placement plate (2), and the locking component is used to lock the positions of the plurality of placement plates (2).

6. A big data server cabinet according to claim 5, characterized in that: The locking assembly comprises a mounting plate (17) fixedly mounted on the surface of the bottommost placement plate (2), two spring rods (18) respectively fixedly mounted on the left and right side walls of the mounting plate (17), and two locking blocks (19) respectively fixedly mounted on ends of the two spring rods (18) that are away from each other. The inner wall of the cabinet (1) is provided with a slot (20) for inserting the mounting plate (17) and the two spring rods (18), and the left and right slot walls in the slot (20) are both provided with locking slots (21) for inserting the locking blocks (19), and the two spring rods (18) are controlled to retract together by a pulling component.

7. A big data server cabinet according to claim 6, characterized in that: The pulling component comprises two pulling plates (22) respectively fixedly sleeved on two spring rods (18); a mounting opening (23) is provided on the surface of the lowermost placement plate (2); the ends of the two pulling plates (22) away from the spring rods (18) are both extended out of the mounting opening (23); and the surfaces of the two pulling plates (22) are both bonded with an anti-slip layer, wherein the material of the anti-slip layer is rubber.

8. A big data server cabinet according to claim 6, characterized in that: The slot (20) is symmetrically provided with oblique openings (25), the locking block (19) is in the shape of a triangle, and the inclined surfaces of the two oblique openings (25) are respectively arranged face to face with the inclined surfaces of the two locking blocks (19).

9. A big data server cabinet according to claim 3, characterized in that: The lower surface of the convex block (12) is provided with two spherical grooves, in which rolling balls (26) are roamingly embedded, and the rolling balls (26) are in rolling contact with the convex groove (13).

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