Server

By setting up bumps and clamping mechanisms in the server chassis, combining the limit guide structure and multi-layer partition design, the problem of the chassis needing to be designed for different hardware configurations is solved, ensuring the stable separation and space utilization of partitions during handling.

CN120276561APending Publication Date: 2025-07-08XFUSION DIGITAL TECH CO LTD
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Patent Information

Application Number
CN202510121854.3
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-01-24
Publication Date
2025-07-08

AI Technical Summary

Technical Problem

Existing server chassis requires different chassis design for different hardware configurations, which increases development costs, and the partition is prone to loosening during handling, resulting in unstable space separation.

Method used

The inner wall of the server chassis is provided with bumps, and the partition is provided with a clamping mechanism and accumulator. The partition position is locked by clamping the bumps through the clamping member, and the limit guide structure and multi-layer partition design ensure that the partition remains stable and separate during the handling process.

Benefits of technology

It realizes stable separation of partition positions during the handling of server chassis, reduces the adaptation demand for different hardware configurations, reduces production costs, and improves space utilization.

✦ Generated by Eureka AI based on patent content.

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Abstract

The embodiment of the invention provides a server. Wherein the box body; a convex block is arranged on the inner wall of the accommodating space; the first partition plates are inserted into the box body at intervals and divide the containing space into a plurality of subspaces, and the subspaces are used for containing functional devices; the first partition plate is provided with a clamping mechanism, a clamping piece of the clamping mechanism is movably connected with the first partition plate, and the clamping piece is clamped with the protruding block so that the positions of the first partition plate and the box body can be locked in the direction that the first partition plate is pulled out of the box body. The clamping piece can move relative to the box body in the width direction of the first partition plate so that locking of the first partition plate and the box body can be relieved. According to the server provided by the invention, the partition plate of the server case can be limited in the insertion and extraction direction of the partition plate in the server case, and effective partition of the partition plate to the space in the case is ensured.
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Description

Technical Field

[0001] This application relates to the technical field of servers, and particularly to a server. Background Art

[0002] A server generally includes a server chassis and various pluggable functional devices (such as a computing module, a storage module, an input / output module, etc.) disposed within the chassis. In the server chassis, partition members are usually provided to divide the space within the chassis into different regions, and each pluggable functional device is disposed in a different region. Since different server hardware configurations are different, the types and quantities of the pluggable functional devices included are also different. Therefore, different chassis need to be designed according to different hardware configuration requirements to accommodate different functional devices, which increases the development cost of the server. Summary of the Invention

[0003] An embodiment of this application provides a server that can limit the position of the server chassis partition within the server chassis along the insertion and extraction direction of the partition, ensuring the effective partitioning of the space within the chassis by the partition.

[0004] To achieve the above object, the embodiment of this application adopts the following technical solutions:

[0005] An embodiment of this application provides a server, including:

[0006] A box body; having an accommodation space, and convex blocks are provided on the inner wall of the accommodation space;

[0007] A plurality of first partitions are inserted into the box body at intervals, dividing the accommodation space into a plurality of sub-spaces for placing functional devices;

[0008] The first partition is provided with a clamping mechanism, and the clamping member of the clamping mechanism is movably connected to the first partition. The clamping member is clamped with the convex block to lock the position of the first partition and the box body along the direction in which the first partition is pulled out of the box body; the clamping member can move relative to the box body along the width direction of the first partition and the box body to release the locking between the first partition and the box body.

[0009] According to the server provided by the embodiment of this application, by providing convex blocks on the inner wall of the accommodation space of the box body and a clamping mechanism on the first partition, the clamping member of the clamping mechanism is movably connected to the first partition. After the first partition is inserted into the accommodation space, the clamping member can be clamped with the convex block. In this way, the position of the first partition and the box body can be locked along the direction in which the first partition is pulled out of the box body; thus, after the first partition is inserted into the accommodation space of the box body, the clamping member locks the first partition along the direction in which the first partition is pulled out of the box body. During the process of carrying, transferring, or moving the server chassis, along the direction in which the first partition is pulled out of the box body, the relative position between the first partition and the box body remains unchanged, and it can be ensured that the first partition effectively partitions the space within the box body.

[0010] In addition, in the embodiments of the present application, the clamping member can move relative to the box body along the width direction of the first partition. In this way, when it is necessary to disassemble the first partition from the box body, the clamping member can move relative to the box body along the width direction of the first partition, thereby releasing the lock between the first partition and the box body, facilitating the disassembly of the first partition from the box body, thereby changing the size of the sub - space after the first partition divides the accommodation space, and facilitating the server chassis to adapt to functional devices of different sizes.

[0011] In one implementation, the movable assembly further includes:

[0012] An energy - storing member, which is arranged on the first partition; the energy - storing member abuts against the clamping member, and the energy - storing member is used to provide a force towards the inner wall of the accommodation space to the clamping member.

[0013] In the embodiments of the present application, by arranging an energy - storing member on the first partition, the energy - storing member abuts against the clamping member. In this way, the energy - storing member can provide a force towards the inner wall of the accommodation space to the clamping member. After the clamping member is clamped with the convex block, the clamping member can maintain the state of being clamped with the convex block under the action of the force provided by the energy - storing member. In this way, during the handling, transportation or transfer of the server chassis, the clamping member can be locked with the convex block under the action of the energy - storing member, and the first partition can be locked with the box body along the insertion and extraction direction, ensuring the effectiveness of the first partition in dividing the space inside the box body.

[0014] In one implementation, a first rotating shaft is arranged on the first partition, and the clamping member includes a hook, and the hook is connected to the first rotating shaft so that the hook is rotatably connected to the first partition;

[0015] During the process of inserting the first partition into the accommodation space, the hook rotates towards the inner wall of the accommodation space around the first rotating shaft so that the hook is clamped to the convex block.

[0016] In the embodiments of the present application, by arranging a first rotating shaft on the first partition and setting the clamping member as a hook, the hook is rotatably connected to the first partition through the first rotating shaft; in this way, during the process of inserting the first partition into the accommodation space, the hook can rotate towards the inner wall of the accommodation space around the first rotating shaft, thus facilitating the clamping of the hook with the convex block. When it is necessary to pull out the first partition from the box body, the hook can be rotated, so that the hook is disengaged from the convex block; it is convenient to release the clamping between the hook and the convex block, thereby facilitating the disassembly of the first partition from the box body.

[0017] In one implementation, the clamping mechanism further includes:

[0018] An operating member, which is movably arranged on the first partition, the operating member is connected to the hook, and the operating member is used to drive the hook to rotate relative to the first partition so that the hook disengages from the convex block.

[0019] In the embodiment of the present application, an operating member is movably arranged on the first partition, and the operating member is connected to the hook. In this way, when it is necessary to pull out the first partition from the box body, the operating member can be operated to make the operating member move relative to the first partition; when the operating member moves relative to the first partition, the hook connected to the operating member can be driven to rotate relative to the first partition, and the rotation of the hook causes the hook to disengage from the convex block, facilitating the removal of the first partition from the box body.

[0020] In one implementation, the hook is provided with a second rotating shaft, and the operating member is provided with a sliding groove, and the second rotating shaft is inserted into the sliding groove.

[0021] When the operating member moves relative to the first partition, the second rotating shaft slides along the sliding groove, and the hook disengages from the convex block.

[0022] In the embodiment of the present application, by providing a second rotating shaft on the hook and a sliding groove on the operating member, and inserting the second rotating shaft into the sliding groove; in this way, when it is necessary to remove the first partition from the box body, the operating member can be operated, and the operating member moves relative to the first partition. At this time, the operating member can drive the hook to rotate around the first rotating shaft through the second rotating shaft. When the hook rotates, the second rotating shaft can slide along the sliding groove. In this way, it is convenient for the hook to rotate relative to the first partition and for the hook to disengage from the convex block.

[0023] In one implementation, the first partition is provided with an operation hole, and the operating member is arranged in the operation hole.

[0024] Along the insertion and extraction direction of the first partition, the size of the operation hole is larger than the size of the operating member, and the operating member moves along the insertion and extraction direction of the first partition in the operation hole to drive the hook to rotate relative to the first partition.

[0025] In the embodiment of the present application, by providing an operation hole on the first partition and arranging the operating member in the operation hole; in this way, in the thickness direction of the first partition, the operating member can be in the same plane as the first partition, which can reduce the occupation of the accommodation space inside the box body by the operating member. In addition, along the insertion and extraction direction of the first partition, the size of the operation hole can be larger than the size of the operating member. In this way, it is convenient for the operating member to move relative to the first partition in the operation hole and for the operating member to drive the hook to rotate relative to the first partition.

[0026] In one implementation, the side of the convex block facing the opening has a first guiding inclined surface. There is a first distance between the end of the first guiding inclined surface close to the inner wall of the box body and the opening of the accommodation space, and a second distance between the end of the first guiding inclined surface far from the inner wall of the box body and the opening; the first distance is less than the second distance.

[0027] In the embodiment of the present application, by providing a first guiding inclined surface on the side of the bump facing the opening of the accommodating space, there is a first distance between the end of the first guiding inclined surface close to the inner wall of the box body and the opening, and a second distance between the end of the first guiding inclined surface far from the inner wall of the box body and the opening, and the first distance is less than the second distance; thus, when the first partition is inserted into the box body, the hook first contacts the end of the first guiding inclined surface close to the inner wall of the box body. During the process of continuously inserting the first partition into the box body, the first guiding inclined surface exerts a force on the hook, and the hook rotates relative to the first partition. When the hook passes over the bump, the force exerted by the bump on the hook disappears, and the hook resets under the action of the energy storage member, so as to achieve clamping with the bump. The setting of the first guiding inclined surface facilitates the movement of the hook along the first guiding inclined surface, facilitates the hook to pass over the bump when the first partition is inserted into the box body, and improves the convenience of inserting the first partition into the box body.

[0028] In one implementation, the hook has a second guiding inclined surface. When the hook is clamped with the bump, the second guiding inclined surface is located on the side of the hook facing away from the bump, and the inclination direction of the second guiding inclined surface is the same as the inclination direction of the first guiding inclined surface on the bump.

[0029] By providing a second guiding inclined surface on the hook, when the hook is clamped to the bump, the second guiding inclined surface is located on the side of the hook facing away from the bump, and in addition, the inclination direction of the second guiding inclined surface is the same as the inclination direction of the first guiding inclined surface on the bump; thus, during the process of inserting the first partition into the box body, it can be that the second guiding inclined surface of the hook first contacts the bump. Due to the existence of the second inclined surface, the force exerted by the bump on the hook can have a component force perpendicular to the inner wall of the box body and pointing towards the inside of the box body. The component force perpendicular to the inner wall of the box body provided by the bump to the hook can drive the hook to rotate relative to the first partition, and the bump can slide relative to the hook along the second guiding inclined surface on the hook, which facilitates the hook to pass over the bump and be clamped to the side of the bump facing away from the opening, facilitating the insertion of the first partition into the box body.

[0030] In one implementation, the box body has a first wall and a second wall, and the accommodating space is located between the first wall and the second wall. Along the width direction of the first partition, the first wall is located on one side of the first partition, and the second wall is located on the other side of the first partition; the bump includes:

[0031] A first sub-bump, provided on the first wall;

[0032] A second sub-bump, provided on the second wall;

[0033] The clamping member includes:

[0034] A first sub-clamping member, along the width direction of the first partition, provided on one side of the first partition; the first sub-clamping member is clamped to the first sub-bump;

[0035] The second sub - clamping member is arranged on the other side of the first partition along the width direction of the first partition, and the second sub - clamping member is clamped to the second sub - bump.

[0036] The operating member of the clamping mechanism is connected to the first sub - clamping member and the second sub - clamping member.

[0037] In the embodiment of the present application, the first sub - bump is arranged on the first wall of the box body, the second sub - bump is arranged on the second wall of the box body, the accommodating space is located between the first wall and the second wall. Along the width direction of the first partition, the first wall is on one side of the first partition, and the second wall is on the other side of the second partition; the first sub - clamping member is arranged on one side of the first partition along the width direction of the first partition, the first sub - clamping member is clamped to the first sub - bump, and the second sub - clamping member is clamped to the second sub - bump; in this way, the relative position between the first partition and the box body can be restricted from both sides of the first partition, improving the stability of the limit of the first partition.

[0038] In one implementation, at least one of the first partition and the inner wall of the accommodating space is provided with a limit guiding structure, and the guiding wire microstructure extends along the insertion and extraction direction of the first partition. The limit guiding structure is used to limit the position of the first partition and the box body in the thickness direction of the first partition.

[0039] In the embodiment of the present application, by providing a limit guiding structure on at least one of the first partition and the inner wall of the through - accommodating space, the guiding wire microstructure extends along the insertion and extraction direction of the first partition. In this way, during the process of inserting the first partition into the accommodating space or pulling it out of the accommodating space, the limit guiding structure can guide the first partition, facilitating the smooth insertion or extraction of the first partition; in addition, since the first partition is inserted and extracted along the limit guiding structure, the limit guiding structure can limit the first partition in the thickness direction of the first partition, improving the stability of the connection between the first partition and the box body and the effectiveness of the first partition in partitioning the accommodating space in the box body.

[0040] In one implementation, the limit guiding structure includes:

[0041] The first groove is arranged on the inner wall of the accommodating space, and the first partition is inserted into the first groove; the first groove is used to limit the position of the first partition and the box body in the thickness direction of the first partition.

[0042] In the embodiment of the present application, by providing the first groove on the inner wall of the accommodating space as the limit guiding structure, the first partition can be inserted into the first groove. In this way, the first partition can switch positions between multiple first grooves, so that the size of the sub - space in the accommodating space in the box body separated by the first partition can be adjusted conveniently. In addition, the first groove can limit the position of the first partition and the box body in the thickness direction of the first partition, ensuring the effectiveness of the first partition in partitioning the accommodating space in the box body.

[0043] In one implementation, the limit guiding structure includes:

[0044] A second groove is provided on the side of the first partition facing the inner wall of the accommodation space, and the convex block is inserted into the second groove.

[0045] In the embodiment of the present application, a second groove is provided on the side of the first partition facing the inner wall of the accommodation space, and the convex block is inserted into the second groove. In this way, the convex block can limit the position of the first partition in the thickness direction of the first partition through the second groove, and the first groove can limit the position of the first partition and the box body along the thickness direction of the first partition, so as to ensure the effectiveness of the first partition in separating the accommodation space in the box body.

[0046] In one implementation, along the width direction of the first partition, at least one layer of second partitions is provided on the first partition, and second partitions are provided on the opposite sides of adjacent first partitions.

[0047] In the embodiment of the present application, along the width direction of the first partition, at least one layer of second partitions is provided on the first partition. In this way, the second partition can further partition the sub-space partitioned by the first partition, facilitating the adjustment of the size of the sub-space in the height direction of the box body. In addition, second partitions are provided on the opposite sides of adjacent first partitions. In this way, the adjacent first partitions are independent of each other, facilitating the disassembly and position adjustment of the first partition and facilitating the adjustment of the size of the sub-space.

[0048] In one implementation, the second partition includes:

[0049] A mounting portion connected to the first partition;

[0050] A supporting portion connected to the mounting portion. Along the thickness direction of the first partition, the supporting portion protrudes from the surface of the first partition, and the supporting portion protrudes from the surface of the mounting portion on the side facing away from the first partition to support the functional device.

[0051] In the embodiment of the present application, it is connected to the first partition through the mounting portion, and the supporting portion connected to the mounting portion protrudes from the surface of the first partition and protrudes from the surface of the mounting portion on the side facing away from the first partition. In this way, it is convenient for the supporting portion to support the functional device.

[0052] In one implementation, the first partition is provided with a through hole, and along the thickness direction of the first partition, the through hole penetrates through the two surfaces of the first partition; the supporting portion is inserted into the through hole, and the supporting portion protrudes from the two surfaces opposite to each other in the thickness direction of the first partition.

[0053] In the embodiments of the present application, through holes penetrating through two surfaces of the first partition are provided along the thickness direction of the first partition, the supporting portion is inserted through the through holes, and the supporting portion protrudes from the two surfaces in the thickness direction of the first partition. In this way, only by installing one installation portion, the supporting portion can protrude and be formed on the two surfaces in the thickness direction of the first partition, reducing the number of times the second partition needs to be installed and improving the installation efficiency of the second partition.

[0054] In one implementation, along the insertion and extraction direction of the first partition, the through holes are intermittently arranged, and the supporting portion has an avoidance notch for avoiding the part of the first partition located between two adjacent through holes.

[0055] In the embodiments of the present application, by intermittently arranging the through holes along the insertion and extraction direction of the first partition, the strength of the first partition can be improved; an avoidance notch is provided on the supporting portion to avoid the part of the first partition located between two adjacent through holes. In this way, it is convenient for the supporting portion to pass through the through hole to the other side of the first partition and for the supporting portion to protrude from the two surfaces of the first partition along the thickness direction.

[0056] In one implementation, the through hole includes a notch formed on one side edge of the first partition, and a guiding groove is provided on the side of the supporting portion facing away from the installation portion. The guiding groove communicates with a second groove on the side edge of the first partition to form a limiting and guiding structure.

[0057] In the embodiments of the present application, by forming one of the through holes as a notch on the edge of one side of the first partition, after the second partition is installed on the first partition and the supporting portion is inserted into the through hole, a certain distance is formed between the supporting surface of the supporting portion and the inner wall of the accommodating space. After the functional device is supported on the supporting portion, there is a certain distance between the functional device and the inner wall of the accommodating space, which is convenient for dissipating heat from the functional device and avoiding the electronic components on the functional device. In addition, a guiding groove is provided on the side of the supporting portion facing away from the installation portion, and the guiding groove communicates with the second groove. In this way, when the first partition is inserted and extracted, the convex block can move in the second groove, facilitating the insertion and extraction of the first partition.

[0058] In one implementation, the supporting portion is provided with a limiting notch for limiting the functional device.

[0059] By providing a limiting notch on the supporting portion, the limiting notch can limit the functional device, improving the stability of the functional device installed in the accommodating space. BRIEF DESCRIPTION OF THE DRAWINGS

[0060] Figure 1 is a schematic structural diagram of a server chassis in a server provided by some embodiments of the present application;

[0061] Figure 2It is a schematic exploded view of a server chassis in a server provided by some embodiments of the present application;

[0062] Figure 3 It is a schematic view of one structure of a first partition in a server provided by some embodiments of the present application;

[0063] Figure 4 It is along Figure 3 A cross-sectional view taken along line A-A in

[0064] Figure 5 It is Figure 4 A partial enlarged view at B in

[0065] Figure 6 It is a schematic exploded view of the engagement mechanism cooperating with the first partition in a server provided by some embodiments of the present application;

[0066] Figure 7 It is another exploded view of the cooperation between the box body and the first partition in a server provided by some embodiments of the present application;

[0067] Figure 8 It is Figure 7 A partial enlarged view at C in

[0068] Figure 9 It is another schematic view of the first partition in a server provided by some embodiments of the present application;

[0069] Figure 10 It is a schematic view of the cooperation between the first partition and the second partition in a server provided by some embodiments of the present application;

[0070] Figure 11 It is another schematic view of the cooperation between the first partition and the second partition in a server provided by some embodiments of the present application;

[0071] Figure 12 It is a top view of the cooperation between the first partition and the second partition in a server provided by some embodiments of the present application;

[0072] Figure 13 It is another top view of the cooperation between the first partition and the second partition in a server provided by some embodiments of the present application;

[0073] Figure 14 It is a bottom view of the cooperation between the first partition and the second partition in a server provided by some embodiments of the present application;

[0074] Figure 15 It is another schematic view of the cooperation between the first partition and the second partition in a server provided by some embodiments of the present application.

[0075] Explanation of reference numerals:

[0076] 10 - Box body; 20 - First partition; 30 - Second partition; 40 - Clamping mechanism;

[0077] 110 - Accommodating space; 210 - Operation hole; 220 - Second groove; 230 - Installation position;

[0078] 111 - Sub - space; 112 - Protrusion; 113 - First wall; 114 - Second wall; 115 - First groove; 116 - Opening; 221 - Insertion opening; 424 - Hook; 425 - Elastic piece; 427 - First rotating shaft; 428 - Operating part;

[0079] 1121 - First guiding inclined surface; 1122 - First sub - protrusion; 1123 - Second sub - protrusion; 4241 - Second rotating shaft; 4242 - Second guiding inclined surface; 4243 - First sub - clamping part; 4244 - Second sub - clamping part; 4281 - Slide groove. Detailed implementation manners

[0080] Next, the technical solutions in the embodiments of the present application will be described in conjunction with the accompanying drawings in the embodiments of the present application. For the convenience of clearly describing the technical solutions in the embodiments of the present application, the first, second, etc. descriptions that appear in the embodiments of the present application are only for schematic and distinguishing the described objects, without order, and do not represent special limitations on the number of devices in the embodiments of the present application, and cannot constitute any limitation to the embodiments of the present application.

[0081] In order to enable those skilled in the art to better understand the technical solutions in the present application, the technical solutions in the embodiments of the present application will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present application. Obviously, the described embodiments are only a part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present application.

[0082] It should be noted that many specific details are set forth in the following description to facilitate a full understanding of the present application. However, the present application may be implemented in other ways different from those described herein. Therefore, the protection scope of the present application is not limited by the specific implementation manners disclosed below.

[0083] In the description of the present application, it should be understood that the orientation or positional relationship indicated by terms such as "upper", "lower", "horizontal", "bottom", "inner", "outer" (if any) is based on the orientation or positional relationship shown in the drawings. It is only for the convenience of describing the present application and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and thus should not be construed as a limitation to the present application. In the present application, unless otherwise clearly specified and defined, the first feature being "on" or "under" the second feature may mean that the first and second features are in direct contact, or the first and second features are indirectly in contact through an intermediate medium.

[0084] In the present application, unless otherwise clearly specified and defined, terms such as "connected", "coupled", "fixed" should be understood in a broad sense. For example, it may be a fixed connection, a detachable connection, or integrated; it may be directly connected, or indirectly connected through an intermediate medium, and it may be the internal communication of two elements or the interaction relationship between two elements. However, indicating a direct connection means that there is no connection relationship constructed through an excessive structure between the two connected main bodies, and only a connection structure is used to connect them to form a whole. For those of ordinary skill in the art, the specific meanings of the above terms in the present application can be understood according to specific circumstances.

[0085] In the present application, descriptions such as "first", "second", etc. are only for descriptive purposes and should not be construed as indicating or implying their relative importance or implicitly specifying the quantity of the indicated technical features. Thus, features defined with "first", "second" may explicitly or implicitly include at least one such feature.

[0086] Figure 1 is a schematic structural diagram of a server chassis in a server provided in some embodiments of the present application, Figure 2 is an exploded structural diagram of a server chassis in a server provided in some embodiments of the present application.

[0087] Servers now play important roles in various industries such as data storage, information interaction, and instruction control. Servers can include rack servers, cabinet servers, high-density servers, or blade servers, etc. It can be understood that in the embodiments of the present application, the types of servers are only shown as some specific examples and do not limit the specific types of servers.

[0088] In some examples, referring to Figure 1 as shown, the server may include a server chassis. The server chassis can be made of metal materials such as sheet metal or aluminum alloy.

[0089] In some examples, the server chassis may include a housing 10. The housing 10 may have a receiving space 110. The receiving space 110 may be provided with pluggable functional devices. Among them, the pluggable functional devices may include a computing module, a storage module, an input / output module, and a power module, etc. It can be understood that other types of functional devices may also be provided inside the server chassis. The functional devices shown in the embodiments of the present application are only used as some specific examples for illustration, and do not limit the specific types of functional devices.

[0090] In some examples, the computing module may be a computing node of the server. The computing module may include a circuit board and a central processing unit (CPU) and a memory module disposed on the circuit board. The computing module may include a graphics processing unit (GPU), etc. It can be understood that in some examples of the embodiments of the present application, the types of the computing module are only shown as some specific examples, and do not limit the specific types of the computing module.

[0091] In some examples, the storage module may include an expansion memory card, a hard disk, such as a solid state disk (SSD), etc.

[0092] In some examples, the input / output module may be a network card. The input / output module may be a network interface module. For example, it may be an Ethernet port or a fiber channel port, etc.

[0093] In some examples, the power module may provide stable power supply for the server to ensure the normal operation of the server. Multiple power modules may be provided to prevent the server from crashing due to the failure of a single power module.

[0094] In some examples, for the convenience of arranging and laying out the functional devices in the receiving space 110. Referring to Figure 2 As shown, the server chassis may include a first partition 20. The first partition 20 may be disposed in the receiving space 110. The first partition 20 may divide the receiving space 110 into multiple sub-spaces 111.

[0095] In some examples, multiple first partitions 20 may be provided in the receiving space 110. The multiple first partitions 20 may be inserted into the receiving space 110 at intervals. In this way, the first partition 20 may divide the receiving space 110 into multiple sub-spaces 111.

[0096] In some examples, the sizes of the multiple sub-spaces 111 may be the same. For example, the multiple first partitions 20 may be evenly spaced in the receiving space 110.

[0097] In some examples, the sizes of multiple sub-spaces 111 can be different. For example, the spacing distances between one of the multiple first partitions 20 and the first partitions 20 on both sides are different.

[0098] In some examples of the embodiments of the present application, bumps 112 are provided on the inner wall of the accommodation space 110; multiple first partitions 20 are inserted into the box body 10 at intervals, dividing the accommodation space 110 into multiple sub-spaces 111, and the sub-spaces 111 are used to place functional devices. Among them, the first partition 20 is provided with a clamping mechanism 40. The clamping member of the clamping mechanism 40 is movably connected to the first partition 20, and the clamping member is used to be clamped with the bump 112 to lock the positions of the first partition 20 and the box body 10 along the direction in which the first partition 20 is pulled out of the box body 10.

[0099] In this way, after the first partition 20 is inserted into the accommodation space 110 of the box body 10, the clamping member of the clamping mechanism 40 locks the first partition 20 along the direction in which the first partition 20 is pulled out of the box body 10. During the process of carrying, transferring or moving the server, along the direction in which the first partition 20 is pulled out of the box body 10, the relative positions of the first partition 20 and the box body 10 remain unchanged, which can ensure that the partition effectively separates the space inside the box body 10.

[0100] In addition, in the embodiments of the present application, the clamping member of the clamping mechanism 40 can move relative to the box body 10 along the width direction of the first partition 20. In this way, when it is necessary to disassemble the first partition 20 from the box body 10, the clamping member of the clamping mechanism 40 can move relative to the box body 10 along the width direction of the first partition 20, so as to release the locking of the first partition 20 and the box body 10, which is convenient for disassembling the first partition 20 from the box body 10, thereby changing the size of the sub-space 111 after the first partition 20 divides the accommodation space 110, and facilitating the server chassis to adapt to functional devices of different sizes.

[0101] In some examples, refer to Figure 1 and Figure 2 As shown. The server chassis may include a box body 10. The box body 10 may have an accommodation space 110.

[0102] In some examples, the box body 10 can be made of aluminum alloy, stainless steel or sheet metal, etc. It can be understood that in some examples of the embodiments of the present application, the specific material of the box body 10 is only shown as some specific examples, and is not a limitation on the specific material of the box body 10. In some examples, the box body 10 can also be made of other types of materials, and the embodiments of the present application do not limit this.

[0103] Figure 3 It is a schematic structural diagram of a first partition in a server provided by some embodiments of the present application.

[0104] In some examples, refer to Figure 3As shown, the server chassis may include a plurality of first partition plates 20. Refer to Figure 1 and Figure 2 As shown, the first partition plate 20 may be inserted into the box body 10 to divide the accommodation space 110 into a plurality of sub - spaces 111.

[0105] It can be understood that in some examples of the embodiments of the present application, the partitioning manner of the first partition plate 20 for the accommodation space 110 may be the same as, similar to, or close to that of the foregoing embodiments of the present application. Specifically, reference may be made to the detailed description of the foregoing embodiments of the present application, and the embodiments of the present application will not be elaborated herein.

[0106] In some examples, refer to Figure 3 As shown, the first partition plate 20 may be provided with a clamping mechanism 40. The clamping member (not labeled in the figure) of the clamping mechanism 40 may be clamped with the convex block to lock the positions of the first partition plate 20 and the box body 10 in the direction of pulling out the box body 10 along the first partition plate 20.

[0107] In some examples, the clamping member can move relative to the box body 10 along the width direction of the first partition plate 20 to release the lock between the first partition plate and the box body.

[0108] In some examples, the clamping member can move along the width direction of the first partition plate 20. For example, after the first partition plate 20 is inserted into the box body 10, the clamping member can move towards the box body 10 along the width direction of the first partition plate 20, so as to be clamped with the convex block 112, in order to lock the relative positions between the first partition plate 20 and the box body 10.

[0109] In some examples, when it is necessary to pull out the first partition plate 20 from the box body 10, the clamping member can move away from the box body 10 along the width direction of the first partition plate 20, so as to disengage from the convex block 112. In this way, the lock between the first partition plate 20 and the box body 10 can be released, so as to facilitate pulling out the first partition plate 20 from the box body 10.

[0110] According to the server provided by the embodiments of the present application, by providing a convex block 112 on the inner wall of the accommodation space 110 of the box body 10 and providing a clamping mechanism 40 on the first partition plate 20, the clamping member of the clamping mechanism 40 is movably connected to the first partition plate 20. After the first partition plate 20 is inserted into the accommodation space 110, the clamping member can be clamped with the convex block 112. In this way, the positions of the first partition plate 20 and the box body 10 can be locked in the direction of pulling out the box body 10 along the first partition plate 20; in this way, after the first partition plate 20 is inserted into the accommodation space of the box body 10, the clamping member locks the first partition plate 20 in the direction of pulling out the box body 10 along the first partition plate 20. During the process of carrying, transferring or moving the server chassis, along the direction of pulling out the box body 10 along the first partition plate 20, the relative positions of the first partition plate 20 and the box body 10 remain unchanged, which can ensure that the first partition plate 20 effectively partitions the space inside the box body 10.

[0111] In addition, in the embodiments of the present application, the clamping member can move relative to the box body 10 along the width direction of the first partition plate 20. Thus, when it is necessary to disassemble the first partition plate 20 from the box body 10, the clamping member can move relative to the box body 10 along the width direction of the first partition plate 20, so as to release the locking between the first partition plate 20 and the box body 10, facilitating the disassembly of the first partition plate 20 from the box body 10, thereby changing the size of the sub-space after the first partition plate 20 divides the accommodation space, and facilitating the server chassis to adapt to functional devices of different sizes.

[0112] Figure 4 is along Figure 3 The cross-sectional view taken along line A-A in Figure 5 is Figure 4 The partial enlarged view at B in

[0113] In some examples, referring to Figure 4 and Figure 5 as shown, the bump 112 can be detachably connected to the inner wall of the box body 10. Thus, when adjusting the position of the first partition plate 20, the position of the bump 112 can be adjusted synchronously, which can reduce the occupation of the position of the accommodation space 110 by the bump 112 and improve the utilization rate of the space in the accommodation space 110. For example, a buckle can be provided on the inner wall of the box body 10, and the bump 112 is clamped with the box body 10. The direction in which the bump 112 is clamped with the box body 10 can intersect with the insertion and extraction direction of the first partition plate 20 (for example, it can be perpendicular or approximately perpendicular). Thus, the insertion and extraction of the first partition plate 20 will not affect the position of the bump 112 on the box body 10. It can ensure that the position of the bump 112 on the box body 10 is fixed.

[0114] In some examples, the bump 112 can be connected to the box body 10 through components such as screws, bolts or screws.

[0115] In some examples, the bump 112 can be a protruding structure formed by stamping the box body 10.

[0116] In some examples, referring to Figure 4 and Figure 5 as shown, the clamping member can include a hook 424. The hook 424 can be movably connected to the first partition plate 20.

[0117] In some examples, the hook 424 can be clamped with the bump 112 to lock the first partition plate 20 and the box body 10.

[0118] In some examples, the hook 424 can be clamped to a side of the bump 112 facing away from the opening 116 of the accommodation space 110 (referring to Figure 1 and Figure 2 as shown).

[0119] In some examples, the bump 112 can be fixed to the inner wall of the box body 10. Referring toFigure 5 As shown, during the process of inserting the first partition plate 20 into the box body 10 in the direction indicated by the arrow e in Figure 5 the hook 424 first contacts the side of the bump 112 facing the opening 116 of the accommodation space 110 (refer to Figure 1 and Figure 2 as shown). Continuing to insert the first partition plate 20 in the direction indicated by the arrow e in Figure 5 the hook 424 crosses over the bump 112 and is snapped onto the side of the bump 112 facing away from the opening 116 of the accommodation space 110.

[0120] In some examples, when the first partition plate 20 moves relative to the box body 10 in the opposite direction of the arrow e in Figure 5 the hook 424 is snapped onto the side wall of the bump 112 facing away from the opening 116 of the accommodation space 110. The bump 112 blocks the movement of the hook 424, thereby blocking the movement of the first partition plate 20, which is convenient for limiting the position of the first partition plate 20.

[0121] In the embodiment of the present application, by providing the bump 112 on the inner wall of the box body 10 and providing the hook 424 on the first partition plate 20 in a movable connection; after the first partition plate 20 is inserted into the box body 10, the hook 424 can be snapped onto the side of the bump 112 facing away from the opening 116 of the accommodation space 110. In this way, since the hook 424 abuts against the side of the bump 112 facing away from the opening 116 of the accommodation space 110, when the server chassis is carried, transferred or transported, the hook 424 and the bump 112 are locked to each other, and the position between the first partition plate 20 and the box body 10 can be locked in the direction of pulling out the box body 10 along the first partition plate 20. The first partition plate 20 can be kept in the position of separating the accommodation space 110, ensuring the effectiveness of the first partition plate 20 in separating the accommodation space 110.

[0122] In some examples, referring to Figure 5 as described, the clamping mechanism 40 may include a force storage member (not labeled in the figure). The force storage member may be provided on the first partition plate 20.

[0123] In some examples, the force storage member may abut against the clamping member. The force storage member can be used to provide a force acting towards the inner wall of the accommodation space 110 to the clamping member.

[0124] In some examples, the force storage member may be an elastic member. After the first partition plate 20 is inserted into the accommodation space 110, the inner wall of the accommodation space 110 compresses the clamping member towards the first partition plate 20, causing the clamping member to compress the elastic member. At this time, the elastic member stores energy and provides a force acting towards the inner wall of the accommodation space 110 to the clamping member.

[0125] In some examples, the energy storage member may include two magnetic members with the same poles facing each other. For example, two magnets with the same poles facing each other. One of the magnets is fixedly arranged on the first partition plate 20, and the other magnet is fixedly arranged on the hook 424. After the first partition plate 20 is inserted into the accommodation space 110, the inner wall of the accommodation space 110 compresses the clamping member towards the first partition plate 20, the distance between the two magnetic members with the same poles facing each other decreases, and the repulsive force between the two magnetic members increases. Thus, the repulsive force between the two magnets with the same poles facing each other can provide a force acting on the hook 424 towards the inner wall of the accommodation space 110.

[0126] It can be understood that in some examples of the embodiments of the present application, the specific type of the energy storage member is only shown as some specific examples. In other examples, the energy storage member may also be of other types, and the embodiments of the present application will not list them one by one.

[0127] In the embodiments of the present application, by arranging the energy storage member on the first partition plate 20, the energy storage member abuts against the hook 424. Thus, the energy storage member can provide a force acting on the hook 424 towards the inner wall of the accommodation space 110. After the hook 424 is clamped with the convex block 112, the hook 424 can remain in the clamped state with the convex block 112 under the action of the force provided by the energy storage member. In this way, during the handling, transportation or transfer of the server chassis, the hook 424 can remain clamped with the convex block 112 under the action of the energy storage member, and the locking state of the first partition plate 20 along the insertion and extraction direction with the box body 10 can be maintained, ensuring the effectiveness of the first partition plate 20 in partitioning the space inside the box body 10.

[0128] Figure 6 It is an exploded structural schematic diagram of the cooperation between the clamping mechanism and the first partition plate in the server provided by some embodiments of the present application.

[0129] In some examples, referring to Figure 5 and Figure 6 as shown, a first rotating shaft 427 may be provided on the first partition plate 20. The hook 424 may be rotatably connected to the first partition plate 20 through the first rotating shaft 427.

[0130] In some examples, referring to Figure 5 as shown, along the insertion direction of the first partition plate 20 ( Figure 5 the direction indicated by the arrow e in Figure 5 ), the first rotating shaft 427 may be located on one side of the convex block 112. For example,

[0131] in Figure 5As shown, the cross-sectional shape of the hook 424 can be approximately triangular, and the first rotating shaft 427 can pass through one of the angles of the triangle, and a protruding portion 426 can be provided at another angle of the triangle. The protruding portion 426 can protrude from the side of the triangle. The protruding portion 426 can be used for engaging with the bump 112.

[0132] In some examples, the energy storage member can be a torsion spring, and the torsion spring can be sleeved on the first rotating shaft 427. One end of the torsion spring can be connected to the first partition 20, and the other end of the torsion spring can be connected to the hook 424.

[0133] Refer to Figure 5 As shown, the torsion spring can provide a force to the hook 424 along the Figure 5 direction indicated by the arrow f in the figure, so that the hook 424 can maintain the engaged state with the bump 112 under the action of the torsion spring.

[0134] In some examples, refer to Figure 5 As shown, when the first partition 20 is inserted into the box body 10 along the Figure 5 direction indicated by the arrow e in the figure, and after the hook 424 and the bump 112 contact the side facing the opening 116 of the accommodation space 110, as the first partition 20 continues to be inserted into the box body 10 along the Figure 5 direction indicated by the arrow e in the figure, the bump 112 exerts a force on the hook 424. After the hook 424 receives the force from the bump 112, it rotates in the opposite direction of the arrow f in the Figure 5 figure, the torsion spring is compressed, and the torsion spring generates a force on the hook 424 along the Figure 5 direction indicated by the arrow f in the figure. The hook 424 continuously abuts against the side of the bump 112 facing the inside of the box body 10; until the hook 424 crosses the bump 112, the force of the torsion spring on the hook 424 drives the hook 424 to rotate along the Figure 5 direction indicated by the arrow f in the figure, so that the hook 424 is engaged with the bump 112. Thus, the relative position between the first partition 20 and the box body 10 is limited.

[0135] In some examples, during the process of carrying, transporting, or transferring the server chassis, due to the continuous force provided by the torsion spring to the hook 424, the hook 424 is engaged with the bump 112, and the bump 112 forms a block in the direction of pulling out the first partition 20 from the box body 10 along the hook 424, which can ensure that the position between the first partition 20 and the box body 10 remains unchanged, and thus can ensure the effectiveness of the separation of the accommodation space 110 by the first partition 20.

[0136] In some examples, when it is necessary to disassemble the first partition 20 from the box body 10, the hook 424 can be rotated in the opposite direction of the Figure 5 direction indicated by the arrow f in the figure, so that the hook 424 is disengaged from the bump 112, and then alongFigure 5 Pull out the first partition plate 20 in the opposite direction of the direction indicated by the arrow e. In this way, it is convenient to disassemble the first partition plate 20 and insert it into other positions of the accommodation space 110, which is convenient for adjusting the size of the sub-space 111, improving the adaptability to functional devices of different sizes, unifying the specifications of the server chassis, and eliminating the need to design the server chassis separately for functional devices of different sizes, effectively saving the processing and production costs of the server chassis.

[0137] In some examples, referring to Figure 5 and Figure 6 as shown, the energy storage member may include a spring piece 425. The spring piece 425 may be fixed on the first partition plate 20. The free end of the spring piece 425 may abut against the hook 424.

[0138] In some examples, the free end of the spring piece 425 may abut against the side of the hook 424 facing away from the bump 112.

[0139] In some examples, the spring piece 425 provides a force to the hook 424 towards the inner wall of the accommodation space 110, so that the hook 424 remains locked with the bump 112. It can be understood that in some examples of the embodiments of the present application, the working principle of the spring piece 425 driving the hook 424 to keep the hook 424 and the bump 112 in a locked state may be similar to or analogous to that of the torsion spring in the foregoing embodiments of the present application. Specifically, reference may be made to the detailed description of the working principle of the hook 424 in the foregoing embodiments of the present application, and the embodiments of the present application will not elaborate herein.

[0140] In some examples of the embodiments of the present application, by providing a first rotating shaft 427 on the first partition plate 20, the hook 424 is rotatably connected to the first partition plate 20 through the first rotating shaft 427; in addition, along the insertion and extraction direction of the first partition plate 20, the first rotating shaft 427 is located at one of the bumps 112. In this way, when it is necessary to pull out the first partition plate 20 from the box body 10, the hook 424 can be rotated, so that the hook 424 is disengaged from the bump 112; it is convenient for the hook 424 to release the lock with the bump 112, so as to facilitate the disassembly of the first partition plate 20 from the box body 10.

[0141] In some examples, referring to Figure 5 and Figure 6 as shown, for the convenience of operating the hook 424, so that the hook 424 rotates relative to the first partition plate 20 and disengages from the bump 112. The movable assembly 420 may include an operating member 428. The operating member 428 may be provided on the first partition plate 20.

[0142] In some examples, the operating member 428 may be connected to the hook 424. The operating member 428 may be used to drive the hook 424 to disengage from the bump 112.

[0143] In some examples, the operating member 428 can be fixedly connected to the hook 424. The operating member 428 can include a handle, an operating rod, etc. Refer to Figure 5 As shown, when it is necessary to remove the first partition 20 from the box body 10, the operator can operate the operating member 428. For example, move the operating member 428 in the opposite direction of the direction indicated by the arrow f in Figure 5 so that the operating member 428 drives the hook 424 to rotate in the opposite direction of the direction indicated by the arrow f in Figure 5 so that the hook 424 rotates and disengages from the bump 112; then, the first partition 20 can be pulled out of the box body 10.

[0144] In some examples of the embodiments of the present application, by movably arranging the operating member 428 on the first partition 20, the operating member 428 is connected to the hook 424. In this way, when it is necessary to pull out the first partition 20 from the box body 10, the operating member 428 can be operated so that the operating member 428 moves relative to the first partition 20; the operating member 428 moves relative to the first partition 20, thereby driving the hook 424 connected to the operating member 428 to rotate relative to the first partition 20, and the rotation of the hook 424 causes the hook 424 to disengage from the bump 112, facilitating the removal of the first partition 20 from the box body 10.

[0145] In some examples, refer to Figure 5 As shown, a second rotating shaft 4241 can be provided on the hook 424. The second rotating shaft 4241 can be arranged in a staggered manner with the first rotating shaft 427. For example, when the cross-sectional shape of the hook 424 is approximately triangular, the first rotating shaft 427 can be located at one of the angles of the triangle, and the second rotating shaft 4241 can be located at another angle of the triangle.

[0146] In some examples, a sliding groove 4281 is provided on the operating member 428. The second rotating shaft 4241 can pass through the sliding groove 4281.

[0147] In some examples, the sliding groove 4281 can be a groove provided on the operating member 428.

[0148] In some examples, the sliding groove 4281 can be a notch provided on the operating member 428.

[0149] In some examples, when the operator operates the operating member 428, the operating member 428 can move relative to the first partition 20. For example, refer to Figure 5 As shown, the operator can operate the operating member 428 in the opposite direction of the direction indicated by the arrow e in Figure 5 so that the operating member 428 moves relative to the first partition 20 in the opposite direction of the direction indicated by the arrow e in Figure 5 so that the operating member 428 moves relative to the first partition 20 in the opposite direction of the direction indicated by the arrow e in

[0150] In some examples, refer toFigure 5 As shown, since the operating member 428 moves relative to the first partition 20 in the opposite direction of the arrow 5 in Figure 8 and the chute 4281 is a long strip-shaped groove extending in the direction shown by g, the groove wall of the chute 4281 limits the second rotating shaft 4241, so that the second rotating shaft 4241 can move in the opposite direction of the arrow e in Figure 5 while the rotation point of the first rotating shaft 427 and the first partition 20 is fixed; therefore, the hook 424 rotates relative to the first partition 20 in the opposite direction of the arrow f in Figure 5 . That is to say, the second rotating shaft 4241 provided on the hook 424 rotates relative to the first partition 20 around the first rotating shaft 427 in the opposite direction of the arrow f in Figure 5 .

[0151] In some examples, the rotation of the second rotating shaft 4241 can be decomposed into moving in the opposite direction of the arrow e in Figure 5 and moving in the direction shown by the arrow g in Figure 5 . That is to say, the second rotating shaft 4241 can slide along the chute 4281. In this way, it is convenient for the hook 424 to move relative to the first partition 20, and thus it is convenient to disengage the hook 424 from the bump 112.

[0152] In some examples of the embodiments of the present application, by providing the chute 4281 on the operating member 428, the second rotating shaft 4241 is inserted into the chute 4281; in this way, the second rotating shaft 4241 can be limited by the chute 4281, which is convenient for driving the hook 424 to rotate around the first rotating shaft 427. In addition, the chute 4281 can play a guiding role for the second rotating shaft 4241 when the hook 424 rotates, improving the stability of the hook 424 rotating around the first rotating shaft 427.

[0153] In some examples of the embodiments of the present application, by providing the second rotating shaft 4241 on the hook 424 and the chute 4281 on the operating member 428, the second rotating shaft 4241 is inserted into the chute 4281; in this way, when it is necessary to disassemble the first partition 20 from the box body 10, the operating member 428 can be operated, and the operating member 428 moves relative to the first partition 20. At this time, the operating member 428 can drive the hook 424 to rotate around the first rotating shaft 427 through the second rotating shaft 4241. When the hook 424 rotates, the second rotating shaft 4241 can slide along the chute 4281. In this way, it is convenient for the hook 424 to rotate relative to the first partition 20 and for the hook 424 to disengage from the bump 112.

[0154] In some examples, referring to Figure 5 and Figure 6 as shown, the first partition 20 may be provided with an operation hole 210. The operating member 428 may be disposed in the operation hole 210.

[0155] In some examples, along the thickness direction of the first partition 20, the operation hole 210 can be a blind hole. That is to say, along the thickness direction of the first partition 20, the operation hole 210 can be recessed in one side of the first partition 20, and the operation hole 210 does not penetrate the first partition 20. In this way, the strength of the first partition 20 can be ensured.

[0156] In some examples, along the thickness direction of the first partition 20, the operation hole 210 can be a through hole. That is to say, along the thickness direction of the first partition 20, the operation hole 210 can penetrate both sides of the first partition 20. In this way, it is convenient for the processing of the operation hole 210 and for setting the operating part 428 in the operation hole 210.

[0157] In some examples, referring to Figure 6 as shown, along the insertion and extraction direction of the first partition 20 (for example, it can be the length direction of the first partition 20 or the direction shown by the x-axis in Figure 6 ), the size of the operation hole 210 can be larger than the size of the operating part 428. The operating part 428 can move along the insertion and extraction direction of the first partition 20 within the operation hole 210.

[0158] In some examples, referring to Figure 6 as shown, the operating part 428 can be embedded in the operation hole 210. When an operator operates the operating part 428, the operator's finger can directly reach into the operation hole 210 to operate the operating part 428, which is convenient for operating the operating part 428.

[0159] In some examples, a limiting groove (not shown in the figure) can be provided on the side wall of one of the operating part 428 and the operation hole 210, and a limiting protrusion (not shown in the figure) can be provided on the side wall of the other of the operating part 428 and the operation hole 210. The limiting protrusion can be inserted into the limiting groove. The limiting protrusion can slide in the limiting groove. In this way, it is convenient for the operating part 428 to move relative to the first partition.

[0160] In the embodiments of the present application, by providing the operation hole 210 on the first partition 20 and setting the operating part 428 in the operation hole 210; in this way, in the thickness direction of the first partition 20, the operating part 428 can be in the same plane as the first partition 20, and the occupancy of the accommodating space 110 in the box body 10 by the operating part 428 can be reduced. In addition, along the insertion and extraction direction of the first partition 20, the size of the operation hole 210 can be larger than the gear of the operating part 428. In this way, it is convenient for the operating part 428 to move relative to the first partition 20 within the operation hole 210, and it is convenient for the operating part 428 to drive the hook 424 to rotate relative to the first partition 20.

[0161] In some examples, referring to Figure 5As shown, one side of the bump 112 facing the opening 116 has a first guiding inclined surface 1121. There is a first distance between one end of the first guiding inclined surface 1121 close to the inner wall of the box body 10 and the opening 116, and a second distance between the other end of the first guiding inclined surface 1121 far from the inner wall of the box body 10 and the opening 116; the first distance is less than the second distance.

[0162] In some examples, one corner of the rectangular bump 112 facing the opening 116 and facing away from the inner wall of the box body 10 can be cut to form the first guiding inclined surface.

[0163] In the embodiment of the present application, by arranging the first guiding inclined surface on the side of the bump 112 facing the opening 116 of the accommodation space 110, there is a first distance between one end of the first guiding inclined surface 1121 close to the inner wall of the box body 10 and the opening 116, and a second distance between the other end of the first guiding inclined surface 1121 far from the inner wall of the box body 10 and the opening 116, and the first distance is less than the second distance; thus, when the first partition plate 20 is inserted into the box body 10, the hook 424 first contacts the end of the first guiding inclined surface 1121 close to the inner wall of the box body 10. During the process of the first partition plate 20 being continuously inserted into the box body 10, the first guiding inclined surface 1121 exerts a force on the hook 424, and the hook 424 rotates relative to the first partition plate 20. When the hook 424 passes over the bump 112, the acting force of the bump 112 on the hook 424 disappears, and the hook 424 resets under the action of the energy storage member, so as to realize the clamping connection with the bump 112. The setting of the first guiding inclined surface 1121 facilitates the movement of the hook 424 along the first guiding inclined surface 1121, and when the first partition plate 20 is inserted into the box body 10, the hook 424 can pass over the bump 112, improving the convenience of inserting the first partition plate 20 into the box body 10.

[0164] In some examples, with reference to Figure 6 As shown, the hook 424 can have a second guiding inclined surface 4242. When the hook 424 is clamped with the bump 112, the second guiding inclined surface 4242 is located on the side of the hook 424 facing away from the bump 112, and the inclination direction of the second guiding inclined surface 4242 is the same as that of the first guiding inclined surface 1121 on the bump 112.

[0165] It can be understood that in some examples of the embodiment of the present application, the setting method of the second guiding inclined surface 4242 on the hook 424 can be the same as, similar to or analogous to that of the first guiding inclined surface 1121 on the bump 112. For the specific details, reference can be made to the detailed description of the first guiding inclined surface 1121 in the foregoing embodiments of the present application, and the embodiments of the present application will not elaborate on this.

[0166] By providing a second guiding inclined surface 4242 on the hook 424, when the hook 424 is engaged with the bump 112, the second guiding inclined surface 4242 is located on the side of the hook 424 facing away from the bump 112. Additionally, the inclination direction of the second guiding inclined surface 4242 is the same as that of the first guiding inclined surface 1121. Thus, during the process of inserting the first partition 20 into the box body 10, it can be the case that the second guiding inclined surface 4242 of the hook 424 first contacts the bump 112. Due to the existence of the second inclined surface, the force exerted by the bump 112 on the hook 424 can have a component force perpendicular to the inner wall of the box body 10 and pointing towards the inside of the box body 10. The component force perpendicular to the inner wall of the box body 10 provided by the bump 112 to the hook 424 can drive the hook 424 to rotate relative to the first partition 20, and the bump 112 can slide relative to the hook 424 along the second guiding inclined surface 4242 on the hook 424, facilitating the hook 424 to cross over the bump 112 and engage with the side of the bump 112 facing away from the opening 116, thus facilitating the insertion of the first partition 20 into the box body 10.

[0167] In some examples, the side of the bump 112 facing the opening 116 has a first guiding inclined surface 1121. Additionally, a second guiding inclined surface 4242 can be provided on the hook 424.

[0168] In some examples, referring to Figure 1 and Figure 2 as shown, the box body 10 can have a first wall 113 and a second wall 114. The first wall 113 and the second wall 114 can be two side walls along the Figure 1 and Figure 2 direction of the z-axis shown in

[0169] In some examples, the accommodation space 110 can be located between the first wall 113 and the second wall 114. Along the width direction of the first partition 20 (e.g., Figure 1 and Figure 2 the direction of the z-axis shown in

[0170] In some examples, referring to Figure 4 and Figure 5 as shown, the bump 112 can include a first sub-bump 1122. The first sub-bump 1122 can be provided on the first wall 113.

[0171] In some examples, referring to Figure 4 and Figure 5 as shown, the bump 112 can include a second sub-bump 1123. The second sub-bump 1123 can be provided on the second wall 114.

[0172] In some examples, referring to Figure 4 and Figure 5As shown, the snap-in member may include a first sub-snap-in member 4243. Along the width direction of the first partition 20, the first sub-snap-in member 4243 may be disposed on one side of the first partition 20. The first sub-snap-in member 4243 may be snap-connected to the first sub-projection 1122.

[0173] In some examples, with reference to Figure 4 and Figure 5 As shown, the snap-in member may include a second sub-snap-in member 4244. Along the width direction of the first partition 20, the second sub-snap-in member 4244 may be disposed on the other side of the first partition 20. The second sub-snap-in member 4244 may be snap-connected to the second sub-projection 1123.

[0174] In some examples of the embodiments of the present application, the structures of the first sub-projection 1122 and the second sub-projection 1123 may be the same, similar or analogous. The structures of the first sub-snap-in member 4243 and the second sub-snap-in member 4244 may also be the same, similar or analogous. In this way, it is convenient for the processing and production of the projections 112 and the snap-in members, and the processing production cost can be saved.

[0175] In the embodiments of the present application, by providing a first sub-projection 1122 on the first wall 113 of the box body 10 and a second sub-projection 1123 on the second wall 114 of the box body 10; in addition, along the width direction of the first partition 20, a first sub-snap-in member 4243 is provided on one side of the first partition 20, and the first sub-snap-in member 4243 is snap-connected to the first sub-projection 1122, and a second sub-snap-in member 4244 is provided on the other side of the first partition 20, and the second sub-snap-in member 4244 is snap-connected to the second sub-projection 1123; in this way, the relative positions of the first partition 20 and the box body 10 can be restricted from two side edges of the first partition 20, and the stability of the limit of the first partition 20 is improved.

[0176] In some examples, at least one of the first partition 20 and the inner wall of the accommodation space 110 is provided with a limit guiding structure. The limit guiding structure may extend along the insertion and extraction direction of the first partition 20. The limit guiding structure may be used to define the positions of the first partition 20 and the box body 10 in the thickness direction of the first partition 20 (for example Figure 1 and Figure 2 the direction shown by the y-axis in

[0177] Figure 7 is another exploded view of the cooperation between the box body and the first partition in the server provided by some embodiments of the present application, Figure 8 is Figure 7 the partial enlarged view at C in

[0178] In some examples, with reference to Figure 7 and Figure 8As shown, the limiting and guiding structure may include a first groove 115. The first groove 115 may be provided on the inner wall of the accommodating space 110.

[0179] In some examples, the first partition 20 may be inserted into the first groove 115. That is to say, when the first partition 20 is inserted into the accommodating space 110, the first partition 20 may be inserted from the first groove 115. Thus, the groove walls of the first groove 115 may contact two surfaces of the first partition 20 in the thickness direction, thereby playing a limiting role on the first partition 20.

[0180] In some examples, the first groove 115 may be formed by recessing from the inner wall of the accommodating space 110.

[0181] In some examples, the inner wall of the accommodating space 110 may be stamped to form the first groove 115.

[0182] In some examples, when it is necessary to adjust the size of the sub-space 111 in the box body 10, the first partition 20 may be pulled out from one of the first grooves 115 and inserted into another first groove 115, so as to adjust the size of the sub-space 111.

[0183] In the embodiments of the present application, by providing at least two first grooves 115 on the inner wall of the accommodating space 110, the first partition 20 may be inserted into the first groove 115. In this way, the first partition 20 may switch positions between multiple first grooves 115, so that the size of the sub-space 111 separated by the first partition 20 in the accommodating space 110 of the box body 10 can be conveniently adjusted. In addition, the first groove 115 may limit the position of the first partition 20 and the box body 10 in the thickness direction of the first partition 20, and can ensure the effectiveness of the separation of the accommodating space 110 in the box body 10 by the first partition 20.

[0184] Figure 9 It is another schematic structural diagram of the first partition in the server provided by some embodiments of the present application.

[0185] In some examples, referring to Figure 9 As shown, the limiting and guiding structure may have a second groove 220. The second groove 220 may be provided on the side of the first partition 20 facing the inner wall of the accommodating space 110. That is to say, the second groove 220 may be provided on two side walls of the first partition 20 in the width direction.

[0186] In some examples, referring to Figure 9 As shown, the bump 112 may pass through the second groove 220.

[0187] In some examples, the second groove 220 may be formed by grooving the side of the first partition 20 facing the inner wall of the box body 10.

[0188] In some examples, two sheet metal parts can be overlapped to form the first partition 20, and the thickness of the middle parts of the two sheet metal parts is greater than that of the edges. Thus, after the two sheet metal parts are overlapped, a second groove 220 is formed on the side of the first partition 20.

[0189] In some examples, the operation hole 210 can communicate with the second groove 220. The hook 424 can pass through the second groove 220.

[0190] In some examples, when the first partition 20 is inserted into the box body 10, the convex block 112 can pass through the second groove 220 and cooperate with the hook 424.

[0191] In some examples, the second groove 220 can extend to the end of the first partition 20 and penetrate the end face of the first partition 20. For example, the second groove 220 can penetrate to the end face of the end of the first partition 20 inserted into the accommodation space 110, so as to form an insertion opening 221 on the end face of the end of the first partition 20 inserted into the accommodation space 110. The convex block 112 can be fixed on the inner wall of the accommodation space 110. When inserting the first partition 20 into the accommodation space 110, the insertion opening 221 can be aligned with the convex block 112, and then the first partition 20 is inserted into the accommodation space 110. In this way, the convex block 112 can enter the second groove 220 from the insertion opening 221. Along the thickness direction of the first partition 20, the inner wall of the second groove 220 can contact the side wall of the convex block 112, so as to limit the position of the first partition 20 and the box body 10.

[0192] In some examples, a plurality of convex blocks 112 can be arranged on the inner wall of the box body 10 at intervals along the insertion and extraction direction of the first partition 20. In this way, the plurality of convex blocks 112 can limit the position at a plurality of points with the second groove 220, and the stability of limiting the first partition 20 can be improved.

[0193] In the embodiment of the present application, the second groove 220 is arranged on the side of the first partition 20 facing the inner wall of the accommodation space 110, and the convex block 112 can pass through the second groove 220. In this way, the convex block 112 can limit the position of the first partition 20 in the thickness direction of the first partition 20 through the second groove 220, and the second groove 220 can limit the position of the first partition 20 and the box body 10 in the thickness direction of the first partition 20, which can ensure the effectiveness of the first partition 20 in separating the accommodation space 110 in the box body 10.

[0194] It can be understood that in some examples, a first groove can be arranged on the inner wall of the accommodation space 110. In addition, a second groove 220 is arranged on the side of the first partition 20 facing the inner wall of the accommodation space 110. The first partition 20 can be inserted into the first groove, and the convex block 112 can pass through the second groove 220.

[0195] Figure 10 It is a schematic structural diagram of the cooperation between the first partition board and the second partition board in the server provided by some embodiments of the present application.

[0196] In some examples, referring to Figure 2 and Figure 10 as shown, along the width direction of the first partition board 20 (for example, Figure 2 the direction shown by the z-axis in ), at least one layer of the second partition board 30 is provided on the first partition board 20, and the second partition board 30 is provided on the opposite sides of two adjacent first partition boards 20.

[0197] In some examples, referring to Figure 10 as shown, the second partition board 30 may be a boss protruding from the side wall of the first partition board 20. The second partition board 30 may extend along the insertion and extraction direction of the first partition board 20.

[0198] In some examples, after the first partition board 20 is inserted into the box body 10, the functional device may be arranged on the second partition board 30. Since at least one layer of the second partition board 30 is arranged along the width direction of the first partition board 20, therefore, at least one functional device can be placed between two adjacent first partition boards 20.

[0199] In some examples, the second partition board 30 may be detachably connected to the first partition board 20. The second partition board 30 may be detachably connected to the first partition board 20 by screws, bolts or screws, etc.

[0200] In some examples, along the width direction of the first partition board 20, two layers of the second partition board 30 may be arranged. In this way, the sub-space 111 between two adjacent first partition boards 20 can be divided into upper and lower two spaces, which is convenient for placing functional devices of different sizes.

[0201] In the embodiments of the present application, along the width direction of the first partition board 20, at least one layer of the second partition board 30 is arranged on the first partition board 20. In this way, the second partition board 30 can further divide the sub-space 111 partitioned by the first partition board 20, which is convenient for adjusting the size of the sub-space 111 in the width direction of the first partition board 20. In addition, the second partition board 30 is arranged on the opposite sides of two adjacent first partition boards 20. In this way, the two adjacent first partition boards 20 are independent of each other, which is convenient for the disassembly and position adjustment of the first partition board 20 and convenient for adjusting the size of the sub-space 111.

[0202] Figure 11 It is another schematic structural diagram of the cooperation between the first partition board and the second partition board in the server provided by some embodiments of the present application.

[0203] In some examples, referring to Figure 11 as shown, the second partition board 30 may include a mounting portion 310. The mounting portion 310 may be connected to the first partition board 20.

[0204] In some examples, the installation part 310 can be connected to the surface of the first partition 20 in the thickness direction.

[0205] In some examples, with reference to Figure 11 As shown, the first partition 20 can be provided with an installation position 230. The second partition 30 can be installed at the installation position 230.

[0206] In some examples, there can be multiple installation positions 230. The multiple installation positions 230 can be arranged at intervals along the width direction of the first partition 20.

[0207] In the embodiments of the present application, along the height direction of the first partition 20, multiple installation positions 230 are provided on the first partition 20, and the second partition 30 can be installed on any one of the multiple installation positions 230. In this way, the position of the second partition 30 on the first partition 20 can be adjusted by the different positions of the installation positions 230, so that the size of the sub - space 111 in the height direction can be conveniently adjusted, facilitating the full utilization of the space inside the box 10.

[0208] In some examples, the installation position 230 can be recessed from the surface of the first partition 20. When the installation part 310 is installed at the installation position 230, the surface of the installation part 310 on the side facing away from the installation position 230 can be flush with the surface of the first partition 20.

[0209] In some examples, when the installation part 310 is installed at the installation position 230, the surface of the installation part 310 on the side facing away from the installation position 230 can be recessed from the surface of the first partition 20. In this way, the occupation of the installation part 310 on the accommodation space 110 can be reduced, and the utilization rate of the accommodation space 110 can be improved.

[0210] Figure 12 It is a top view of the cooperation between the first partition and the second partition in the server provided by some embodiments of the present application.

[0211] In some examples, with reference to Figure 12 As shown, the second partition 30 can include a support part 320. With reference to Figure 11 and Figure 12 As shown, the support part 320 can be connected to the installation part 310.

[0212] In some examples, the support part 320 and the installation part 310 can be an integral part. For example, the support part 320 and the installation part 310 can be formed by bending a sheet metal part.

[0213] In some examples, with reference to Figure 12As shown, along the thickness direction of the first partition 20, the support portion 320 can protrude from the surface of the first partition 20. The support portion 320 can protrude from the surface of the mounting portion 310 on the side facing away from the first partition, so as to support the functional device.

[0214] In some examples of the embodiments of the present application, the second partition 30 is formed by constructing the support portion 320 and the mounting portion 310. In this way, it is convenient to mount the second partition 30 on the first partition 20 through the mounting portion 310, and it is convenient for the support portion 320 to support the functional device.

[0215] In some examples, referring to Figure 11 As shown, the first partition 20 can be provided with a through hole 231. Along the thickness direction of the first partition 20, the through hole 231 can penetrate through the two surfaces of the first partition 20.

[0216] Figure 13 It is another top view of the cooperation between the first partition and the second partition in the server provided by some embodiments of the present application.

[0217] In some examples, referring to Figure 13 As shown, the support portion 320 can be inserted into the through hole 231, and the support portion 320 can protrude from the two surfaces of the first partition 20 opposite to each other in the thickness direction.

[0218] That is to say, referring to Figure 13 As shown, a part of the support portion 320 can be located on one side of the first partition 20, and another part of the support portion 320 can pass through the through hole 231 and protrude from the other side of the first partition 20. In this way, a second partition 30 can form support steps on the opposite sides of the first partition 20 to support the functional devices on both sides of the first partition 20, which can reduce the number of installation times required for the second partition 30 and improve the installation efficiency of the second partition 30 and the first partition 20.

[0219] In some examples, referring to Figure 11 As shown, along the insertion and extraction direction of the first partition 20, the through hole 231 can be intermittently arranged. That is to say, along the insertion and extraction direction of the first partition 20, a plurality of through holes 231 can be intermittently arranged on the first partition 20. In this way, the strength of the first partition 20 can be ensured, and the support performance for the functional device can be ensured.

[0220] In some examples, referring to Figure 11 and Figure 13 As shown, the support portion 320 can be provided with an avoidance notch 321. The avoidance notch can be used to avoid the part of the first partition 20 located between two adjacent through holes 231.

[0221] In some examples, when installing the second partition 30, the avoidance notch 321 can be aligned with the portion of the first partition 20 between two adjacent through holes 231, and then the support portion 320 is passed through the through hole 231. After the installation portion 310 contacts the surface of the first partition 20, connection is made through connection components such as screws, bolts or screws.

[0222] In some examples of the embodiments of the present application, by providing the avoidance notch 321 on the support portion 320, the avoidance notch 321 can avoid the portion of the first partition 20 between two adjacent through holes 231, facilitating the installation of the second partition 30 and improving the installation efficiency of the second partition 30.

[0223] In some examples, referring to Figure 9 As shown, the through hole 231 may include a notch formed on one side edge of the first partition 20. For example, when the width direction of the first partition 20 is arranged in the vertical direction, the through hole 231 may include a notch formed on the bottom edge of the first partition 20. In this way, after the second partition 30 is installed in the notch on the bottom edge of the first partition 20, the bottom of the second partition 30 can directly contact the inner wall of the accommodation space 110, which can reduce the distance between the second partition 30 and the inner wall of the accommodation space 110 and improve the space utilization rate of the accommodation space 110.

[0224] Figure 14 is a bottom view of the cooperation between the first partition and the second partition in the server provided by some embodiments of the present application. Figure 15 is another structural schematic diagram of the cooperation between the first partition and the second partition in the server provided by some embodiments of the present application.

[0225] In some examples, referring to Figure 14 and Figure 15 As shown, a guiding groove 323 may be provided on the side of the support portion 320 facing away from the installation portion 310.

[0226] In some examples, the guiding groove 323 may be recessed in the bottom of the support portion 320.

[0227] In some examples, the guiding groove 323 may communicate with the second groove 220, thereby constructing a limiting and guiding structure. That is to say, the guiding groove 323 may extend along the insertion and extraction direction of the first partition 20.

[0228] In some examples, after the second partition 30 is installed on the first partition 20, the first partition 20 and the second partition 30 can be inserted into the accommodation space 110 as a whole. During the insertion into the accommodation space 110, the second groove 220 can be aligned with the bump 112, so that the bump 112 cooperates with the side wall of the second groove 220 to guide the insertion and extraction direction of the first partition 20. In the embodiments of the present application, by providing a guiding groove 323 on the side of the supporting portion 320 facing away from the mounting portion 310, the guiding groove 323 communicates with the second groove 220. In this way, the bump 112 can move along the second groove 220, and after entering the guiding groove 323, continue to move along the guiding groove 323, which can avoid the influence of the supporting portion 320 on the bump 112, facilitate the insertion of the first partition 20 and the second partition 30 into the accommodation space 110 as a whole, improve the installation and disassembly efficiency of the first partition 20 and the second partition 30, and facilitate the adjustment of the size of the sub-space 111 in the accommodation space 110.

[0229] In some examples, referring to Figure 11 and Figure 13 as shown, the supporting portion 320 can be provided with a limiting notch 322. The limiting notch 322 can be used for limiting functional devices. For example, a limiting protrusion can be provided at the bottom of the functional device. After the functional device is placed on the supporting portion 320, the limiting protrusion at the bottom of the functional device can be inserted into the limiting notch 322, so as to limit the position of the functional device on the supporting portion 320. In this way, it can play a certain protective role for the functional device.

[0230] In some examples, the limiting notch 322 can penetrate through two surfaces of the supporting portion 320. That is to say, the limiting notch 322 can be a through hole.

[0231] In some examples, the limiting notch 322 can be a groove formed by recessing from the supporting surface of the supporting portion 320. That is to say, the limiting notch 322 can be a blind hole.

[0232] In some examples, to ensure the strength of the supporting portion 320, the limiting notch 322 can be provided at the end of the supporting portion 320 along the insertion and extraction direction of the first partition 20.

[0233] In some examples, referring to Figure 11 as shown, along the thickness direction of the first partition 20 (for example Figure 2 the direction shown by the y-axis in Figure 1 and Figure 2The thickness of one end of the first partition 20 (as shown) can be less than the thickness of other parts. In this way, the distance between two adjacent first partitions 20 at the opening 116 of the accommodation space 110 can be greater than the distance at other positions, that is, the distance between two adjacent first partitions 20 at the opening 116 of the accommodation space 110 can be greater than the size of the functional device in the thickness direction of the first partition, facilitating the insertion of the functional device into the sub-space 111 between two adjacent first partitions 20.

[0234] In addition, along the thickness direction of the first partition 20 (for example Figure 2 the direction shown by the y-axis in ), the thickness of one end of the first partition 20 facing the opening 116 (refer to Figure 1 and Figure 2 as shown) can be less than the thickness of other parts. In this way, the other parts with a thicker thickness can have higher strength, facilitating the first partition 20 to support the functional device.

[0235] The above-described embodiments are only specific embodiments of the present application and are not used to limit the protection scope of the present application. Any modifications, equivalent replacements, improvements, etc. made on the basis of the technical solutions of the present application shall be included in the protection scope of the present application.

Claims

1. A server, characterized in that, Comprising: A box body (10); Having an accommodation space (110), and the inner wall of the accommodation space (110) is provided with bumps (112); A plurality of first partition plates (20), which are inserted into the box body (10) at intervals, and divide the accommodation space (110) into a plurality of sub-spaces (111), and the sub-spaces (111) are used for placing functional devices; The first partition plate (20) is provided with a clamping mechanism (40), the clamping member of the clamping mechanism (40) is movably connected to the first partition plate (20), and the clamping member is clamped with the bump (112) to lock the positions of the first partition plate (20) and the box body (10) along the direction in which the first partition plate (20) is pulled out of the box body (10); the clamping member can move relative to the box body (10) along the width direction of the first partition plate (20) to release the locking between the first partition plate (20) and the box body (10).

2. The server according to claim 1, characterized in that The clamping mechanism (40) further includes: A power storage member, which is arranged on the first partition plate (20); the power storage member abuts against the clamping member, and the power storage member is used for providing a force towards the inner wall of the accommodation space (110) to the clamping member.

3. The server according to claim 1, characterized in that, A first rotating shaft (427) is arranged on the first partition plate (20), and the clamping member includes a hook (424), and the hook (424) is connected to the first rotating shaft (427) so that the hook (424) is rotatably connected to the first partition plate (20); During the process of inserting the first partition plate (20) into the accommodation space (110), the hook (424) rotates towards the inner wall of the accommodation space (110) around the first rotating shaft (427) so that the hook (424) is clamped with the bump (112); During the process of pulling the first partition plate (20) out of the accommodation space (110), the hook (424) rotates away from the inner wall of the accommodation space (110) around the first rotating shaft (427) so that the hook (424) disengages from the bump (112).

4. The server according to claim 3, wherein The clamping mechanism (40) further includes: An operating member (428), which is movably arranged on the first partition plate (20), the operating member (428) is connected to the hook (424), and the operating member (428) is used for driving the hook (424) to rotate relative to the first partition plate (10) so that the hook (424) disengages from the bump (112).

5. The server according to claim 4, characterized in that, A second rotating shaft (4241) is arranged on the hook (424), a sliding groove (4281) is arranged on the operating member (428), and the second rotating shaft (4241) passes through the sliding groove (4281); When the operating member (428) moves relative to the first partition plate (20), the second rotating shaft (4241) slides along the sliding groove (4281), and the hook (424) disengages from the bump (112).

6. The server according to claim 4, wherein An operation hole (210) is arranged on the first partition plate (20), and the operating member (428) is arranged in the operation hole (210); Along the insertion and extraction direction of the first partition plate (20), the size of the operation hole (210) is larger than that of the operation member (428). The operation member (428) moves along the insertion and extraction direction of the first partition plate (20) within the operation hole (210) to drive the hook (424) to rotate relative to the first partition plate (20).

7. The server according to claim 1, characterized in that, One side of the bump (412) facing the opening of the accommodation space (110) has a first guiding inclined surface (1121). There is a first distance between one end of the first guiding inclined surface (1121) close to the inner wall of the box body (10) and the opening, and a second distance between the other end of the first guiding inclined surface (1121) far from the inner wall of the box body (10) and the opening; the first distance is less than the second distance; and / or The clamping member has a second guiding inclined surface (4242). When the clamping member is clamped with the bump (412), the second guiding inclined surface (4242) is located on the side of the clamping member facing away from the bump (412), and the inclination direction of the second guiding inclined surface (4242) is the same as that of the first guiding inclined surface (1121).

8. The server according to any one of claims 1-7, characterized in that, The box body (10) has a first wall (113) and a second wall (114). The accommodation space (110) is located between the first wall (113) and the second wall (114). Along the width direction of the first partition plate (20), the first wall (113) is located on one side of the first partition plate (20), and the second wall (114) is located on the other side of the first partition plate (20); the bump (412) includes: A first sub-bump (1122) provided on the first wall (113); A second sub-bump (1123) provided on the second wall (114); The clamping member includes: A first sub-clamping member (4243) provided on one side of the first partition plate (20) along the width direction of the first partition plate (20); the first sub-clamping member (4243) is clamped with the first sub-bump (1122); A second sub-clamping member (4244) provided on the other side of the first partition plate (20) along the width direction of the first partition plate (20), and the second sub-clamping member (4244) is clamped with the second sub-bump (1123); The operation member (428) of the clamping mechanism (40) is connected to the first sub-clamping member (4243) and the second sub-clamping member (4244).

9. The server according to any one of claims 1-7, characterized in that, At least one of the first partition plate (20) and the inner wall of the accommodation space (110) is provided with a limit guiding structure. The limit guiding structure extends along the insertion and extraction direction of the first partition plate (20), and the limit guiding structure is used to limit the positions of the first partition plate (20) and the box body (10) in the thickness direction of the first partition plate (20).

10. The server according to claim 9, wherein The limit guiding structure includes: The first groove (115) is provided on the inner wall of the accommodation space (110), and the first partition (20) is inserted into the first groove (115); the first groove (115) is used to limit the positions of the first partition (20) and the box body (10) in the thickness direction of the first partition (20). And / or, the limiting and guiding structure includes: The second groove (220) is provided on the side of the first partition (20) facing the inner wall of the accommodation space (110), and the bump (112) penetrates through the second groove (220).

11. The server according to any one of claims 1-10, characterized in that, There are multiple bumps (112), and the multiple bumps (112) are arranged at intervals along the insertion and extraction direction of the first partition (20).

12. The server according to any one of claims 1-11, characterized in that, Along the width direction of the first partition (20), at least one layer of second partitions (30) is provided on the first partition (20), and the second partitions (30) are provided on the opposite sides of adjacent two first partitions (20).

13. The server according to claim 12, wherein The second partition (30) includes The installation part (310) is connected to the first partition (20); The support part (320) is connected to the installation part (310). Along the thickness direction of the first partition (20), the support part (320) protrudes from the surface of the first partition (20), and the support part (320) protrudes from the surface of the installation part (310) on the side opposite to the first partition (20) to support the functional device.

14. The server according to claim 13, wherein The first partition (20) is provided with a through hole (231), and along the thickness direction of the first partition (20), the through hole (231) penetrates through the two surfaces of the first partition (20). The support part (320) is inserted into the through hole (231), and the support part (320) protrudes from the two surfaces of the first partition (20) opposite to each other in the thickness direction.

15. The server according to claim 14, wherein, Along the insertion and extraction direction of the first partition (20), the through holes (231) are intermittently arranged, and the support part (320) has an avoidance notch (321), and the avoidance notch (321) is used to avoid the part of the first partition (20) located between adjacent two through holes (231).

16. The server according to claim 15, wherein The through hole (231) includes a notch formed on one side edge of the first partition (20). A guiding groove (323) is provided on the side of the support part (320) opposite to the installation part (310), and the guiding groove (323) is communicated with the second groove (220) on the side edge of the first partition (20) to construct the limiting and guiding structure on the first partition (20).

17. The server according to claim 13, wherein The support part (320) is provided with a limiting notch (322), and the limiting notch (322) is used to limit the functional device.