Handle structure and server

CN224745335UActive Publication Date: 2026-09-11西安远图未来科技有限公司
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Patent Information

Application Number
CN202522068196.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-09-25
Publication Date
2026-09-11
Estimated Expiration
2035-09-25

AI Technical Summary

Technical Problem

[0005]本申请实施例提供一种把手结构以及服务器,用以解决把手组件在锁止的过程中,容易出现错位、卡顿等情况,导致锁止困难的问题

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Abstract

This application provides a handle structure and a server, relating to the field of server technology. The handle structure includes a bracket, a handle component, a locking assembly, and a guide component. The bracket is used to connect with a component to be inserted or removed. The handle component is rotatably mounted on the bracket and has a locking portion with a first guide portion. The locking assembly is mounted on the bracket and has a limiting groove. The guide component is located at the opening of the limiting groove. When the locking portion is inserted into the limiting groove, the first guide portion and the guide component first contact each other, forming a guiding fit to guide the locking portion along a preset path to align with the limiting groove, thereby preventing misalignment between the locking portion and the limiting groove due to positional deviation. Furthermore, the guiding fit between the first guide portion and the guide component transforms the rigid contact of the locking portion entering the limiting groove into a gradual fit, not only allowing the locking portion to be inserted into the limiting groove more smoothly, but also avoiding sharp collisions or excessive local friction between the two during assembly.
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Description

Technical Field

[0001] This application relates to the field of server technology, and more particularly to a handle structure and a server. Background Technology

[0002] As server performance demands increase, the integration and interconnect density of server modules (such as GPU modules and CPU modules) have significantly increased. High-speed data transmission between server modules requires high-precision mating connectors (such as PCIe and NVLink). In such scenarios, server modules are typically installed in server racks, requiring operators to frequently insert and remove them.

[0003] In related technologies, operators apply force through a handle assembly to drive the server module for insertion and removal. During the insertion and removal process, the handle assembly needs to be unlocked and unfolded, rotating relative to the server module to drive its back-and-forth movement. After the server module is fully inserted, the handle assembly needs to be locked and retracted using a latching structure.

[0004] However, the handle assembly is prone to misalignment and jamming during the locking process, making locking difficult. Utility Model Content

[0005] This application provides a handle structure and a server to solve the problem that handle components are prone to misalignment and jamming during the locking process, leading to locking difficulties.

[0006] Firstly, the handle structure provided in the embodiments of this application includes:

[0007] The bracket is used to connect to the component to be inserted or removed;

[0008] A handle is rotatably mounted on a bracket. The handle has a locking part and a first guide part is provided on the locking part.

[0009] A locking assembly is mounted on a bracket and has a limiting groove.

[0010] A guide member is provided at the opening of the limiting groove. The guide member is configured to abut against the first guide member when the locking part rotates to the opening of the limiting groove, thereby guiding the locking part into the limiting groove so that the locking assembly locks the locking part.

[0011] In one possible implementation, the handle structure provided in this application embodiment has a guide member that is a chamfer at the opening of the limiting groove, and a first guide part that is a guide arc surface.

[0012] In one possible implementation, the handle structure provided in this application embodiment includes a locking component comprising a main body, a locking component, and an unlocking component. The main body is detachably connected to the bracket, and a limiting groove is provided on the main body and located outside the mounting groove.

[0013] The unlocking component is slidably disposed in the mounting groove, and the locking component is rotatably disposed in the mounting groove. The locking component is configured to rotate relative to the main body under the action of the unlocking component, so as to switch between a first state and a second state.

[0014] In the first state, the locking member abuts against the locking part to confine the locking part within the limiting groove; in the second state, the locking member separates from the locking part to release the restriction on the locking part.

[0015] In one possible implementation, the handle structure provided in this application embodiment further includes a first elastic member, which is disposed between the unlocking member and the main body member.

[0016] The first elastic element is configured such that, in a first state, the first elastic element is in a natural state; and in a second state, the first elastic element is in an energy storage state.

[0017] In one possible implementation, the handle structure provided in this application embodiment has a locking member with a hook portion that extends out of the mounting groove. The locking member is a limiting boss, and the hook portion abuts against the limiting boss to lock the handle member.

[0018] In one possible implementation, the handle structure provided in this application embodiment has a second guide portion on the hook portion. The second guide portion is configured to abut against the first guide portion when the locking portion rotates to the opening of the limiting groove, so as to guide the movement of the hook portion.

[0019] In one possible implementation, the handle structure provided in this application embodiment has an arc-shaped protrusion on the locking member and an arc-shaped guide groove on the unlocking member. The arc-shaped protrusion is inserted into the arc-shaped guide groove. The arc-shaped protrusion is configured such that when the unlocking member moves, it drives the locking member to rotate relative to the main body member under the action of the arc-shaped guide groove.

[0020] In one possible implementation, the handle structure provided in this application embodiment has at least one first positioning part on the main body and at least one second positioning part on the bracket, with the first positioning part and the second positioning part being inserted into each other.

[0021] In one possible implementation, the handle structure provided in this application embodiment has two handle components, which are disposed on opposite sides of the locking assembly. Each opposite side of the locking assembly is provided with a limit groove, and each limit groove is provided with a guide component.

[0022] The locking component is configured to unlock both handles simultaneously.

[0023] Secondly, the server provided in the embodiments of this application includes a server module and any of the handle structures described above disposed on the server module.

[0024] This utility model provides a handle structure and a server. The handle structure includes a bracket, a handle component, a locking assembly, and a guide component. The bracket is used to connect with the server module. The handle component is rotatably mounted on the bracket and has a locking portion with a first guide portion. The locking assembly is mounted on the bracket and has a limiting groove. The guide component is located at the opening of the limiting groove. When the locking portion is inserted into the limiting groove, the first guide portion and the guide component first contact each other, forming a guiding fit to guide the locking portion along a preset path to align with the limiting groove, thereby preventing misalignment between the locking portion and the limiting groove due to positional deviation. Furthermore, the guiding fit between the first guide portion and the guide component transforms the rigid contact of the locking portion entering the limiting groove into a gradual fit, not only allowing the locking portion to be inserted into the limiting groove more smoothly, but also avoiding sharp collisions or excessive local friction between the two during assembly. Attached Figure Description

[0025] The accompanying drawings, which are incorporated in and form part of this specification, illustrate embodiments consistent with this application and, together with the description, serve to explain the principles of this application.

[0026] Figure 1 A schematic diagram illustrating the locking and retraction of the handle structure on the server module, as provided in this embodiment of the application;

[0027] Figure 2 A schematic diagram illustrating the unlocking and unfolding of the handle structure on the server module, as provided in an embodiment of this application.

[0028] Figure 3 for Figure 1 A schematic diagram of the handle structure in the diagram;

[0029] Figure 4 for Figure 3 A breakdown diagram of the handle structure in the image;

[0030] Figure 5 for Figure 3 A partial structural diagram of the handle structure in the image;

[0031] Figure 6 for Figure 5 A magnified view of the area indicated by D in the middle;

[0032] Figure 7 for Figure 6 A schematic diagram of the locking element in the second state;

[0033] Figure 8 for Figure 2 A magnified view of the area indicated by C in the image;

[0034] Figure 9 for Figure 1 A magnified view of the area indicated by A in the image;

[0035] Figure 10 for Figure 2 An enlarged view of the area indicated by B in the image.

[0036] Explanation of reference numerals in the attached figures:

[0037] 10. Handle structure;

[0038] 100. Bracket; 110. Second positioning part; 120. Stop part;

[0039] 200, handle; 210, locking part; 220, first guide part; 230, first pull-out support part; 240, first insertion support part;

[0040] 300. Locking assembly; 310. Main body component; 311. Limiting groove; 312. Mounting groove; 313. First positioning part; 314. Connecting protrusion; 315. Second limiting notch; 320. Locking component; 321. Hook part; 322. Second guide part; 323. Arc-shaped protrusion; 330. Unlocking component; 331. Arc-shaped guide groove; 332. Sliding hole; 333. First limiting notch; 340. First elastic component;

[0041] 400. Guide components;

[0042] 500. Connectors;

[0043] 600. Second elastic element;

[0044] 20. Server module;

[0045] 30. Server rack; 301. Second pull-out support; 302. Second insertion support.

[0046] The accompanying drawings illustrate specific embodiments of this application, which will be described in more detail below. These drawings and descriptions are not intended to limit the scope of the concept in any way, but rather to illustrate the concept of this application to those skilled in the art through reference to particular embodiments. Detailed Implementation

[0047] Exemplary embodiments will now be described in detail, examples of which are illustrated in the accompanying drawings. When the following description relates to the drawings, unless otherwise indicated, the same numbers in different drawings denote the same or similar elements. The embodiments described in the following exemplary embodiments do not represent all embodiments consistent with this application. Rather, they are merely examples of apparatuses and methods consistent with some aspects of this application as detailed in the appended claims.

[0048] The terms “first,” “second,” “third,” and “fourth,” etc. (if present), in the specification, claims, and accompanying drawings of this utility model are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence. It should be understood that such data can be interchanged where appropriate so that embodiments of the utility model described herein can be implemented in orders other than those illustrated or described herein. Furthermore, the terms “comprising” and “having,” and any variations thereof, are intended to cover a non-exclusive inclusion; for example, a process, method, system, product, or apparatus that comprises a series of steps or units is not necessarily limited to those steps or units explicitly listed, but may include other steps or units not explicitly listed or inherent to such processes, methods, products, or apparatus.

[0049] As described in the background section, the operator applies force through the handle assembly to drive the server module for plugging and unplugging. During the plugging and unplugging operation, the handle assembly needs to be unlocked and unfolded, rotating relative to the server module to drive the server module back and forth. After the server module is fully inserted, the handle assembly needs to be locked and retracted.

[0050] However, the handle assembly is prone to misalignment and jamming during the locking process, making locking difficult.

[0051] To address the aforementioned problems in the prior art, this utility model provides a handle structure and a server. The handle structure includes a bracket, a handle component, a locking assembly, and a guide component. The bracket is used to connect with the component to be inserted or removed. The handle component is rotatably mounted on the bracket and has a locking portion with a first guide portion. The locking assembly is mounted on the bracket and has a limiting groove. The guide component is positioned at the opening of the limiting groove. When the locking portion is inserted into the limiting groove, the first guide portion and the guide component first contact each other, forming a guiding fit to guide the locking portion along a preset path to align with the limiting groove, thereby preventing misalignment between the locking portion and the limiting groove due to positional deviation. Furthermore, the guiding fit between the first guide portion and the guide component transforms the rigid contact of the locking portion entering the limiting groove into a gradual fit, not only allowing the locking portion to be inserted into the limiting groove more smoothly but also preventing sharp collisions or excessive local friction during assembly.

[0052] The technical solution of this application and how the technical solution of this application solves the above-mentioned technical problems are described in detail below with specific embodiments. These specific embodiments can be combined with each other, and the same or similar concepts or processes may not be described again in some embodiments. The embodiments of this application will now be described with reference to the accompanying drawings.

[0053] Reference Figures 3 to 10 As shown, the handle structure 10 provided in this application embodiment includes a bracket 100, a handle component 200, a locking component 300, and a guide component 400.

[0054] The bracket 100 is used to connect with the component 20 to be inserted or removed. A handle 200 is rotatably mounted on the bracket 100 and has a locking portion 210 with a first guide portion 220. A locking assembly 300 is mounted on the bracket 100 and has a limiting groove 311. A guide 400 is located at the opening of the limiting groove 311 and is configured to abut against the first guide portion 220 when the locking portion 210 rotates to the opening of the limiting groove 311, guiding the locking portion 210 into the limiting groove 311 so that the locking assembly 300 locks the locking portion 210.

[0055] It is understood that the handle structure 10 provided in this application embodiment can be applied to a component to be plugged in or removed, wherein the component to be plugged in or removed can be a server module 20. The bracket 100 of the handle structure 10 can be disposed on the server module 20, and the handle 200 of the handle structure 10 is rotatably disposed on the bracket 100. One end of the handle 200 abuts against the server rack 30, thus applying a force to the end of the handle 200 away from the server rack 30. The server rack 30 provides a support point for the handle 200. In this way, the lever principle is used to make the handle 200 drive the server module 20 to move back and forth on the server rack 30 to realize the plugging and unplugging of the server module 20.

[0056] Reference Figures 3 to 7 As shown, a locking assembly 300 is provided on the bracket 100. The handle 200 can switch between an unlocked state and a locked state under the action of the locking assembly 300. In the locked state, the locking part 210 of the handle 200 is inserted into the limiting groove 311 of the locking assembly 300 to restrict the movement of the handle 200 relative to the bracket 100. Furthermore, in the locked state, the handle 200 is retracted onto the bracket 100 to avoid occupying space on the server rack 30.

[0057] When unlocked, the locking part 210 of the handle 200 exits the limiting groove 311 of the locking assembly 300, so that the locking assembly 300 releases the restriction on the handle 200, and the handle 200 can rotate on the bracket 100 to drive the server rack 30 to move.

[0058] Among them, reference Figure 2 and Figure 8 As shown, when the locking part 210 is inserted into the limiting groove 311, the first guide part 220 and the guide member 400 first come into contact, forming a guiding fit to guide the locking part 210 to align with the limiting groove 311 along a preset path, thereby preventing misalignment between the locking part 210 and the limiting groove 311 due to positional deviation. Furthermore, the guiding fit between the first guide part 220 and the guide member 400 transforms the rigid contact of the locking part 210 entering the limiting groove 311 into a gradual fit, not only allowing the locking part 210 to insert into the limiting groove 311 more smoothly and easily, but also avoiding sharp collisions or excessive local friction during assembly. This effectively reduces wear or deformation of the locking part 210, the limiting groove 311, and surrounding components, extending the service life of the overall structure.

[0059] For example, the first guide portion 220 can be a guide arc surface, a guide slope, or an arc-shaped boss, etc. The guide member 400 can be an inclined guide surface, an arc-shaped guide seat, etc.

[0060] In one embodiment, the bracket 100 is provided with at least one mounting hole, so that fasteners such as bolts and clips can pass through the mounting hole and connect to the server module 20 to fix the bracket 100 to the server module 20.

[0061] Reference Figure 2 and Figure 8 As shown, in a specific embodiment, the guide member 400 is a chamfer at the opening of the limiting groove 311, and the first guide part 220 is a guide arc surface.

[0062] In this way, the guide arc surface and the chamfer form a guiding fit to guide the locking part 210 to smoothly and easily insert into the limiting groove 311.

[0063] Reference Figure 4 , Figure 5 and Figure 6 As shown, in some embodiments, the locking assembly 300 includes a main body 310, a locking member 320, and an unlocking member 330. A limiting groove 311 is disposed on the main body 310. The main body 310 and the bracket 100 are detachably connected and together form a mounting groove 312. The limiting groove 311 is disposed on the main body 310 and located outside the mounting groove 312. The unlocking member 330 is slidably disposed within the mounting groove 312, and the locking member 320 is rotatably disposed within the mounting groove 312. The locking member 320 is configured to rotate relative to the main body 310 under the action of the unlocking member 330 to switch between a first state and a second state.

[0064] In the first state, the locking member 320 abuts against the locking part 210 to limit the locking part 210 within the limiting groove 311; in the second state, the locking member 320 separates from the locking part 210 to release the restriction on the locking part 210.

[0065] The first state of the locking member 320 corresponds to the locked state of the handle member 200, and the second state of the locking member 320 corresponds to the unlocked state of the handle member 200.

[0066] In the above embodiment, both the partial unlocking member 330 and the partial unlocking member 330 extend out of the mounting groove 312. The operator can operate the unlocking member 330 to slide back and forth on the main body 310, thereby causing the locking member 320 to rotate relative to the main body 310. This causes the partial locking member 320 extending out of the mounting groove 312 to move closer to or further away from the limiting groove 311, thereby locking or unlocking the locking part 210 of the handle member 200.

[0067] Reference Figure 6 As shown, the main body 310 and the bracket 100 together form a mounting groove 312, which is used to accommodate the locking member 320 and the unlocking member 330, providing a stable assembly space for them. Furthermore, the mounting groove 312, through its own contour structure, restricts the movement trajectory of the locking member 320 and the unlocking member 330, preventing them from shifting or misaligning, which would make locking or unlocking difficult.

[0068] Reference Figure 4 , Figure 6 and Figure 7 As shown, in one specific embodiment, the main body 310 is provided with a first connecting hole, and the bracket 100 is provided with a second connecting hole. The connector 500 is sequentially inserted between the first connecting hole and the second connecting hole to achieve a detachable connection between the main body 310 and the bracket 100. The locking member 320 is rotatably mounted on the connector 500, so that the connector 500 serves as the pivot of the locking member 320. This makes the overall structure simpler, more compact, and easier to assemble.

[0069] Specifically, connector 500 is a bolt structure.

[0070] Reference Figure 6 As shown, in one embodiment, the unlocking member 330 is provided with a sliding hole 332, and the main body 310 is provided with a connecting protrusion 314. The connecting protrusion 314 is located in the mounting groove 312, and the sliding hole 332 is sleeved on the outside of the connecting protrusion 314. In this way, the sliding distance of the unlocking member 330 is limited by the connecting protrusion 314, so as to restrict the unlocking member 330 on the main body 310 and prevent it from falling off.

[0071] Specifically, the connecting protrusion 314 is elongated, and the extension direction of the connecting protrusion 314 coincides with the extension direction of the sliding hole 332. This restricts the sliding trajectory of the unlocking member 330 and prevents the unlocking member 330 from deviating from the preset trajectory during the sliding process.

[0072] Reference Figure 4 , Figure 6 and Figure 7 As shown, in some embodiments, the locking assembly 300 further includes a first elastic member 340 disposed between the unlocking member 330 and the main body member 310.

[0073] The first elastic element 340 is configured such that, in a first state, the first elastic element 340 is in a natural state; and in a second state, the first elastic element 340 is in an energy storage state.

[0074] In the above embodiment, the operator can unlock the handle 200 by pressing the unlocking member 330. After the operator presses the unlocking member 330, the unlocking member 330 slides relative to the main body 310 and squeezes (or stretches) the first elastic member 340. Until the first elastic member 340 is in an energy storage state, i.e., a compressed state (or a stretched state), at this time the portion of the locking member 320 extending out of the mounting groove 312 moves away from the limiting groove 311 to release the restriction on the locking part 210, thereby unlocking the handle 200.

[0075] After the operator removes the force applied to the unlocking member 330, the unlocking member 330 slides relative to the main body 310 under the action of the first elastic member 340, thereby driving the locking member 320 to reset.

[0076] The first elastic element 340 uses its own elastic force to reset the locking element 320. For example, the first elastic element 340 can be a spring.

[0077] Reference Figure 4 , Figure 6 and Figure 7 As shown, there are two first elastic elements 340 to ensure sufficient elastic force. The two first elastic elements 340 are disposed on opposite sides of one end of the unlocking member 330. The two elastic elements release elastic force synchronously, driving the component to reset from both sides, while preventing the component from tilting due to force on one side.

[0078] Furthermore, refer to Figure 6As shown, one end of the unlocking component 330 is provided with a first limiting notch 333, and the main body component 310 is provided with a second limiting notch 315. The first limiting notch 333 and the second limiting notch 315 are arranged opposite to each other, and the two ends of the first elastic component 340 are respectively disposed within the first limiting notch 333 and the second limiting notch 315. In this way, the sidewalls of the first limiting notch 333 and the second limiting notch 315 restrict the extension and retraction trajectory of the first elastic component 340, ensuring that the first elastic component 340 always deforms in the extension and retraction direction, and avoiding fatigue failure of the first elastic component 340 due to bending or twisting.

[0079] Reference Figure 6 , Figure 7 and Figure 8 As shown, in some embodiments, the locking member 320 has a hook portion 321 that extends out of the mounting groove 312, and the locking part 210 is a limiting boss. The hook portion 321 abuts against the limiting boss to lock the handle member 200.

[0080] In the above embodiment, the hook portion 321 can rotate with the locking member 320 under the action of the unlocking member 330 to approach the limiting groove 311 and abut against the locking portion 210 in the limiting groove 311, thereby locking and limiting the handle member 200. Alternatively, the hook portion 321 can move away from the limiting groove 311 and separate from the locking portion 210 in the limiting groove 311, thereby releasing the restriction on the handle member 200.

[0081] The locking handle 200 is achieved through the cooperation between the hook portion 321 and the limiting boss. The limiting structure formed by the hook portion 321 and the limiting boss is simple in structure and low in manufacturing cost; moreover, the unlocking and locking process is smooth and unobstructed, and jamming is not easy to occur.

[0082] Reference Figure 6 , Figure 7 and Figure 8 As shown, in some embodiments, the hook portion 321 is provided with a second guide portion 322, which is configured to abut against the first guide portion 220 when the locking portion 210 rotates to the opening of the limiting groove 311, so as to guide the movement of the hook portion 321.

[0083] The second guide portion 322 is located on the side of the hook portion 321 facing the locking portion 210, so that the first guide portion 220 on the locking portion 210 can contact the second guide portion 322.

[0084] In the above embodiment, when the locking part 210 enters the limiting groove 311, the first guide part 220 on the locking part 210 contacts the second guide part 322 on the hook part 321. Under the guidance of the first guide part 220 and the second guide part 322, the locking part 210 directly pushes open the hook part 321 and enters the limiting groove 311. This eliminates the need to press the unlocking part 330 in advance to unlock the locking part 320, thus simplifying the locking process of the handle part 200.

[0085] When the locking part 210 pushes open the hook part 321, the hook part 321 drives the locking member 320 to rotate, so that the unlocking member 330 slides relative to the main body 310 and squeezes (or stretches) the first elastic member 340. After the locking part 210 is fully inserted into the limiting groove 311, the first guide part 220 separates from the second guide part 322. Thus, under the action of the first elastic member 340, the locking member 320 drives the hook part 321 to reset and approach the limiting groove 311, so that the hook part 321 abuts against the locking part 210.

[0086] Specifically, refer to Figure 6 , Figure 7 and Figure 8 As shown, the second guide section 322 is a guide slope.

[0087] Reference Figure 6 and Figure 7 As shown, in some embodiments, the locking member 320 is provided with an arc-shaped protrusion 323, and the unlocking member 330 is provided with an arc-shaped guide groove 331. The arc-shaped protrusion 323 is inserted into the arc-shaped guide groove 331. The arc-shaped protrusion 323 is configured such that when the unlocking member 330 moves, under the action of the arc-shaped guide groove 331, it drives the locking member 320 to rotate relative to the main body member 310.

[0088] In the above embodiment, as the unlocking member 330 slides back and forth on the main body 310, the arc-shaped guide groove 331 restricts the movement direction of the arc-shaped protrusion 323. The arc-shaped guide groove 331 will generate a lateral thrust on the side wall of the arc-shaped protrusion 323, thereby causing the locking member 320 to rotate.

[0089] The arc-shaped guide groove 331 and the arc-shaped protrusion 323 form an arc-shaped guide structure, which makes the two work more smoothly and avoids jamming.

[0090] Reference Figure 4 As shown, in some embodiments, the main body 310 is provided with at least one first positioning part 313, and the bracket 100 is provided with at least one second positioning part 110, with the first positioning part 313 and the second positioning part 110 being inserted into each other.

[0091] In the above embodiment, the first positioning part 313 and the second positioning part 110 are inserted into each other in a one-to-one correspondence to play a role in preventing mistaken positioning and limiting the relative displacement between the main body 310 and the bracket 100, so as to avoid offset or misalignment during subsequent assembly.

[0092] It is understood that there is at least one first positioning part 313 and at least one second positioning part 110. The number of first positioning parts 313 and the number of second positioning parts 110 can both be one or two or more, as long as they correspond one-to-one. This application embodiment does not impose too many restrictions on this.

[0093] Reference Figure 4 As shown, in one embodiment, the first positioning part 313 is a positioning post, and the second positioning part 110 is a positioning hole. Specifically, the positioning post is disposed on the outer wall of the limiting groove 311.

[0094] In another embodiment, the first positioning part 313 is a positioning hole and the second positioning part 110 is a positioning post.

[0095] Reference Figure 3 , Figure 9 and Figure 10 As shown, in some embodiments, the handle structure 10 provided in this application embodiment further includes a second elastic member 600, which is disposed between the handle member 200 and the bracket 100. The second elastic member 600 is used to provide an elastic force to unfold the handle member 200.

[0096] In the above embodiment, when the handle 200 is locked and retracted by the locking component 300, the second elastic element 600 is in an energy-storing state (compressed or stretched). After the locking component 300 is unlocked, the handle 200 can be unfolded under the action of the second elastic element 600, so that the operator can apply force to the handle 200 to drive the server module 20 to move back and forth on the server rack 30.

[0097] For example, the second elastic element 600 is a torsion spring, one end of which is connected to the handle 200 and the other end is connected to the bracket 100.

[0098] Reference Figure 9 and Figure 10 As shown, in some embodiments, the handle 200 is provided with a first pull-out support 230 and a first insertion support 240 at the end away from the locking part 210, and the server rack 30 is provided with a second pull-out support 301 and a second insertion support 302.

[0099] When the server module 20 is pulled out using the handle structure 10, the first pull-out support 230 on the handle 200 abuts against the second pull-out support 301 on the server rack 30, providing a support point so that the handle 200 can move the server module 20. When the server module 20 is inserted using the handle structure 10, the first insertion support 240 on the handle 200 abuts against the second insertion support 302 on the server rack 30, providing a support point so that the handle 200 can move the server module 20.

[0100] Reference Figure 3 , Figure 9 and Figure 10 As shown, in some embodiments, the bracket 100 is provided with a stop 120, which abuts against the end of the handle 200 away from the locking part 210. This allows the handle 200 to rotate between the stop 120 and the locking assembly 300 around the pivot, preventing the handle 200 from rotating too much and causing damage.

[0101] Reference Figures 3 to 7 As shown, in some embodiments, there are two handles 200, which are disposed on opposite sides of the locking assembly 300. Each opposite side of the locking assembly 300 is provided with a limiting groove 311, and each limiting groove 311 is provided with a guide 400.

[0102] The locking component 300 is configured to unlock both handles 200 simultaneously.

[0103] In the above embodiment, by setting two handles 200 on the bracket 100, with the two handles 200 located on the left and right sides of the server module 20, the operator can hold the handles 200 on both sides with both hands and apply uniform force when plugging or unplugging the server module 20, which effectively prevents the server module 20 from tilting due to uneven force and ensures the stability and safety of the plugging and unplugging process.

[0104] The locking assembly 300 has limit grooves 311 on both opposite sides to lock the two handle pieces 200 respectively. Furthermore, the locking assembly 300 can also unlock both handle pieces 200 simultaneously for convenient subsequent insertion and removal operations.

[0105] Specifically, refer to Figures 3 to 7As shown, the locking assembly 300 has two locking members 320, both of which are rotatably mounted on the main body 310 and located within the mounting groove 312. The two locking members 320 are located on opposite sides of the unlocking member 330, and each of the opposite sides of the unlocking member 330 has an arc-shaped guide groove 331. The arc-shaped protrusions 323 of the two locking members 320 are respectively inserted into the arc-shaped guide grooves 331. The main body 310 has two opposing limiting grooves 311, and the two locking members 320 are located between the two limiting grooves 311.

[0106] In this way, by pressing the unlocking part 330, the two locking parts 320 can be rotated, thereby unlocking the two handle parts 200 at the same time.

[0107] Reference Figure 1 and Figure 2 As shown, the server provided in this application embodiment includes a server module 20 and a handle structure 10 as described above disposed on the server module 20.

[0108] In the above structural configuration, since the server uses the handle structure 10 in the above embodiment, it also has the advantages and benefits brought by the handle structure 10, which will not be elaborated here.

[0109] Other embodiments of this application will readily occur to those skilled in the art upon consideration of the specification and practice of the disclosure herein. This application is intended to cover any variations, uses, or adaptations of this application that follow the general principles of this application and include common knowledge or customary techniques in the art not disclosed herein. The specification and examples are to be considered exemplary only, and the true scope and spirit of this application are indicated by the following claims.

[0110] It should be understood that this application is not limited to the precise structure described above and shown in the accompanying drawings, and various modifications and changes can be made without departing from its scope. The scope of this application is limited only by the appended claims.

Claims

1. A handle structure, characterized in that, include: A bracket (100) is used to connect to the component to be inserted or removed; A handle (200) is rotatably mounted on the bracket (100). The handle (200) has a locking part (210) and a first guide part (220) is provided on the locking part (210). A locking assembly (300) is disposed on the bracket (100) and has a limiting groove (311). A guide (400) is disposed at the opening of the limiting groove (311). The guide (400) is configured to abut against the first guide (220) when the locking part (210) rotates to the opening of the limiting groove (311), guiding the locking part (210) into the limiting groove (311) so that the locking assembly (300) locks the locking part (210).

2. The handle structure according to claim 1, characterized in that, The guide (400) is a chamfer at the opening of the limiting groove (311), and the first guide part (220) is a guide arc surface.

3. The handle structure according to claim 1, characterized in that, The locking assembly (300) includes a main body (310), a locking member (320), and an unlocking member (330). The main body (310) is detachably connected to the bracket (100) and together they form a mounting groove (312). The limiting groove (311) is disposed on the main body (310) and is located outside the mounting groove (312). The unlocking member (330) is slidably disposed in the mounting groove (312), and the locking member (320) is rotatably disposed in the mounting groove (312). The locking member (320) is configured to rotate relative to the main body (310) under the action of the unlocking member (330) to switch between a first state and a second state. In the first state, the locking member (320) abuts against the locking part (210) to confine the locking part (210) within the limiting groove (311); in the second state, the locking member (320) separates from the locking part (210) to release the restriction on the locking part (210).

4. The handle structure according to claim 3, characterized in that, The locking assembly (300) further includes a first elastic member (340), which is disposed between the unlocking member (330) and the main body member (310); The first elastic element (340) is configured such that, in the first state, the first elastic element (340) is in a natural state; and in the second state, the first elastic element (340) is in an energy storage state.

5. The handle structure according to claim 4, characterized in that, The locking member (320) has a hook portion (321) that extends out of the mounting groove (312). The locking part (210) is a limiting boss. The hook portion (321) abuts against the limiting boss to lock the handle member (200).

6. The handle structure according to claim 5, characterized in that, The hook portion (321) is provided with a second guide portion (322), which is configured to abut against the first guide portion (220) when the locking portion (210) rotates to the opening of the limiting groove (311) to guide the movement of the hook portion (321).

7. The handle structure according to claim 3, characterized in that, The locking member (320) is provided with an arc-shaped protrusion (323), and the unlocking member (330) is provided with an arc-shaped guide groove (331). The arc-shaped protrusion (323) is inserted into the arc-shaped guide groove (331). The arc-shaped protrusion (323) is configured such that when the unlocking member (330) moves, the arc-shaped guide groove (331) drives the locking member (320) to rotate relative to the main body member (310).

8. The handle structure according to claim 3, characterized in that, The main body (310) is provided with at least one first positioning part (313), and the bracket (100) is provided with at least one second positioning part (110). The first positioning part (313) and the second positioning part (110) are correspondingly inserted into each other.

9. The handle structure according to any one of claims 1 to 8, characterized in that, The number of handles (200) is two, and the two handles (200) are disposed on opposite sides of the locking assembly (300). The locking assembly (300) is provided with limiting grooves (311) on opposite sides, and each limiting groove (311) is provided with a guide (400). The locking component (300) is configured to unlock both of the handles (200) simultaneously.

10. A server, characterized in that, Includes a server module (20) and a handle structure (10) as described in any one of claims 1 to 9 disposed on the server module (20).