Server
By setting a specific hole structure on the first functional part of the server and equipped with a rotatable operating part convex, the problem of difficulty in plugging and unplugging of functional parts in the server is solved, convenient plugging and unplugging of functional parts and state switching is achieved, and operation convenience and service life of functional parts are improved.
Patent Information
- Application Number
- CN202421798492.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-29
- Publication Date
- 2025-05-06
- Estimated Expiration
- 2034-07-29
AI Technical Summary
In existing servers, it is difficult for operators to plug and unplug the corresponding functional parts, resulting in difficulty in installation and maintenance.
A server is designed, by providing a first hole and a second hole on the first functional member and configuring the operating member to include a body and two protruding parts that are both convex at one end of the body, so that one of the convex parts can be rotatably fitted to the first hole and the bearing wall, and the other convex parts can be rotatably fitted to the second hole, thereby achieving convenient insertion and removal of the first functional member.
Through this design, the operator can easily insert or unplug the first functional part in the first direction, realize state switching, thereby simplifying the plugging and unplugging process, improving operational convenience, and reducing damage to the functional part.
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Figure CN222838384U_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of electronic equipment, and in particular to a server. Background Art
[0002] Usually, different types of functional components are arranged in the chassis of the server to realize corresponding functions. To facilitate installation and maintenance, each functional component is often arranged in the form of a plug-in card. However, there is a problem that it is difficult for operators to plug and unplug the corresponding functional components. Utility Model Content
[0003] Based on this, it is necessary to provide a server to facilitate the plugging and unplugging of functional parts.
[0004] An embodiment of the present application provides a server, including:
[0005] A chassis, including a load-bearing wall;
[0006] A first functional component is inserted into the chassis along a first direction and supported on a supporting wall; a first hole and a second hole are formed on the first functional component along the supporting direction of the supporting wall; an extending direction of the first hole, an extending direction of the second hole and the supporting direction are perpendicular to each other, and an extending direction of the first hole is parallel to the first direction; and
[0007] The operating member comprises a body and two protrusions both protruding from one end of the body; one of the protrusions can be rotatably inserted into the first hole, and the one of the protrusions can be rotatably matched with the bearing wall around a rotation axis, and the other protrusion can be rotatably inserted into the second hole; the extension direction of the rotation axis is parallel to the bearing direction;
[0008] The first functional part can be inserted into or pulled out of the chassis along a first direction in response to the rotation of one of the protrusions relative to the bearing wall, so as to switch between an inserted state and a pulled out state.
[0009] In the embodiment of the present application, by providing the first hole and the second hole on the first functional part, and configuring the operating part to include a body and two convex parts convexly provided on the body, so that one of the convex parts can be rotatably matched with the first hole and the bearing wall, and the other convex part can be rotatably matched with the second hole, under the mutual cooperation of the two convex parts, the first hole and the second hole, the first functional part can be inserted into or pulled out of the chassis along the first direction in response to the rotation of the corresponding convex part relative to the bearing wall. Specifically, since the extension direction of the first hole, the extension direction of the second hole and the bearing direction are perpendicular to each other, the extension direction of the first hole is parallel to the first direction, so that when the operating part rotates relative to the bearing wall, the convex part matched with the second hole generates a pressing force on the hole wall of the second hole, and under the action of the pressing force, the first functional part generates a relative movement along the first direction with the convex part matched with the first hole by means of the first hole, and at the same time, the convex part matched with the second hole rotates relative to the second hole and generates a relative movement along the extension direction of the second hole, thereby, by controlling the rotation direction of the operating part, the first functional part can be switched between the insertion state and the extraction state. In this process, the convex part that can be rotatably matched with the bearing wall constitutes a fulcrum, the position on the hole wall of the second hole that contacts the corresponding convex part constitutes a force point, and the corresponding position on the body can be used as a force application point, so that a lever labor-saving structure is formed, which is conducive to the state switching of the first functional part, and then facilitates the plugging and unplugging of the first functional part. In addition, since the two convex parts are respectively matched with the corresponding first hole and second hole in a plug-in matching manner, it is convenient for the replacement and maintenance of the operating part.
[0010] In one embodiment, the first hole is connected to the second hole.
[0011] In this way, the first hole and the second hole are made more compact, thereby saving space on the first functional part and installation space and use space of the operating part.
[0012] In one embodiment, one end of the first hole along the extension direction of the first hole is connected to one end of the second hole along the extension direction of the second hole.
[0013] This helps to further save space on the first functional part and facilitates the arrangement of related components on the first functional part.
[0014] In one of the embodiments, the first hole has a first end and a second end which are arranged opposite to each other along the extension direction of the first hole, and the first end is connected to one end of the second hole along the extension direction of the second hole; the direction from the first end to the second end is the same as the removal direction of the first functional part, and the removal direction and the first direction are parallel to each other.
[0015] This is more conducive to the arrangement of the operating elements and can reduce the space inside the chassis occupied by the operating elements.
[0016] In one embodiment, the first hole has a first inner wall and a second inner wall arranged opposite to each other along a first direction; along the extraction direction of the first functional part, the second inner wall is located upstream of the first inner wall; the extraction direction and the first direction are parallel to each other; a protrusion rotatably inserted in the first hole and rotatably matched with the bearing wall is defined as a first target portion; wherein, in the inserted state, the first functional part has an insertion limit position; the first functional part is located at the insertion limit position, and the first target portion abuts against the first inner wall; and / or, in the extraction state, the first functional part has an extraction limit position; the first functional part is located at the extraction limit position, and the first target portion abuts against the second inner wall.
[0017] In this way, by setting the insertion limit position and / or the extraction limit position, it is further beneficial to control the plugging and unplugging process of the first functional component, which is not only beneficial to the plugging and unplugging of the first functional component, but also can further improve the damage to the first functional component during the plugging and unplugging process.
[0018] In one of the embodiments, the second hole has a third inner wall and a fourth inner wall arranged opposite to each other along the first direction; along the removal direction of the first functional part, the third inner wall is located upstream of the fourth inner wall; the removal direction and the first direction are parallel to each other; the protrusion rotatably inserted in the second hole is defined as the second target portion; wherein, during the process of the first functional part switching from the removal state to the insertion state, the second target portion abuts against the third inner wall; during the process of the first functional part switching from the insertion state to the removal state, the second target portion abuts against the fourth inner wall.
[0019] Thus, in both processes, the convex portion (i.e., the first target portion) rotatably engaged with the bearing wall is used as a fulcrum, and the corresponding lever structure is roughly formed through the abutment between the corresponding convex portion and the corresponding inner wall, thereby achieving a labor-saving effect.
[0020] In one of the embodiments, a protrusion that can be rotatably inserted into the first hole and rotatably matched with the bearing wall is defined as a first target portion, and a mounting hole is opened on the first target portion along the bearing direction; the server also includes a first mounting component, the first mounting component is arranged on the bearing wall and penetrates the mounting hole through the first hole, and the first mounting component is rotatably connected to the first target portion by means of the mounting hole.
[0021] In this way, by arranging the first mounting member on the bearing wall and the mounting hole on the first target part, a rotatable structure is formed by means of the cooperation between the first mounting member and the mounting hole, thereby realizing the rotatable connection between the first target part and the bearing wall. In this way, the overall structure is simpler and the space occupied is also less.
[0022] In one embodiment, a first mounting member is provided with a mating hole along the bearing direction; the server also includes a second mounting member, the second mounting member includes a mating portion and a limiting portion connected to the mating portion; the mating portion can be detachably mated with the mating hole, and the limiting portion is used to limit the operating member on the side of the operating member away from the bearing wall.
[0023] In this way, by providing the second mounting member, the operating member can be limited in the load-bearing direction, which is not only beneficial to the use of the operating member, but also beneficial to improving the stability of the rotation process of the operating member.
[0024] In one embodiment, a plurality of operating members are provided; the first hole and the second hole constitute a matching structure, and a plurality of matching structures are provided; all operating members are provided in one-to-one correspondence with all matching structures.
[0025] In this way, by providing a plurality of operating members, it is further convenient for the user to plug and unplug the first functional member by means of the operating members.
[0026] In one of the embodiments, at least two of all the mating structures are arranged in a mirror-symmetrical manner about the first axis, and the extension direction of the first axis is parallel to the first direction; the two mating structures arranged in a mirror-symmetrical manner about the first axis are defined as a first target structure and a second target structure, the operating member mating with the first target structure is a first target member, and the operating member mating with the second target structure is a second target member; the two protrusions of the same operating member are respectively a first protrusion and a second protrusion; the first protrusion of the first target member can be rotatably inserted into the first hole of the first target structure, and the first protrusion of the first target member can be rotatably matched with the bearing wall; the second protrusion of the first target member can be rotatably inserted into the second hole of the first target structure; the second protrusion of the second target member can be rotatably inserted into the first hole of the second target structure, and the second protrusion of the second target member can be rotatably matched with the bearing wall; the first protrusion of the second target member can be rotatably inserted into the second hole of the second target structure.
[0027] In this way, by configuring the two protrusions on the operating member to be rotatably connected to the bearing wall, the first target member and the second target member can be constructed in the same shape without having to distinguish them, which facilitates the installation of the operating member.
[0028] In one of the embodiments, mounting holes are provided on both protrusions along the load-bearing direction; the server also includes a plurality of first mounting members arranged on the load-bearing wall, and all the first mounting members are arranged in one-to-one correspondence with all the operating members; the first mounting member corresponding to the first target member is the first target mounting member, and the second mounting member corresponding to the second target member is the second target mounting member; the first target mounting member is penetrated through the mounting hole of the corresponding first protrusion via the corresponding first hole, and the first target mounting member is rotatably connected to the corresponding first protrusion by means of the corresponding mounting hole; the second target mounting member is penetrated through the mounting hole of the corresponding second protrusion via the corresponding first hole, and the second target mounting member is rotatably connected to the corresponding second protrusion by means of the corresponding mounting hole.
[0029] In this way, by providing the first mounting member, the first mounting member can form a rotatable structure with the corresponding protrusion, which is convenient for installation.
[0030] In one embodiment, the body includes a first portion, a second portion and a step portion connecting the first portion and the second portion, the first portion is provided with two protrusions, and the second portion extends out of the chassis.
[0031] In this way, not only can the relevant structures of the server be avoided, but also the operating parts can be used more conveniently.
[0032] In one embodiment, a first guide structure is disposed on one of the bearing wall and the first functional component, and a second guide structure is disposed on the other; the first guide structure and the second guide structure can cooperate with each other in guiding along a first direction.
[0033] In this way, by providing the first guide structure and the second guide structure, it is helpful to guide the movement of the first functional component along the first direction, and further improve the reliability and stability during the plugging and unplugging process.
[0034] In one of the embodiments, a first stop structure is provided on one of the load-bearing wall and the first functional component, and a second stop structure is provided on the other; the first stop structure and the second stop structure cooperate in a stop manner along a first direction; in the inserted state, the first stop structure and the second stop structure cooperate in a locking manner along the load-bearing direction; in the pulled-out state, the first stop structure and the second stop structure cooperate detachably along the load-bearing direction.
[0035] In this way, the reliability and stability of the first functional component can be improved in the inserted state, while facilitating the removal of the first functional component in the removed state.
[0036] In one embodiment, the operating member is configured as an integrally formed member.
[0037] In this way, since the operating member is integrally formed, the operating member has better integrity and higher strength, which is not only beneficial to improving the reliability of the operating member, but also beneficial to improving the appearance performance of the operating member.
[0038] In one embodiment, the server further comprises a second functional component arranged on the bearing wall; in an inserted state, the first functional component and the second functional component are matched; in a pulled-out state, the first functional component and the second functional component are separated.
[0039] In this way, the first functional component can be used flexibly according to the usage situation, and the required connection or storage of the first functional component can be achieved by plugging and unplugging the first functional component, and no specific limitation is made here.
[0040] Additional aspects and advantages of the embodiments of the present application will be given in part in the description below, and in part will become apparent from the description below, or will be learned through the practice of the embodiments of the present application. BRIEF DESCRIPTION OF THE DRAWINGS
[0041] Various other advantages and benefits will become apparent to those of ordinary skill in the art by reading the detailed description of the embodiments below. The accompanying drawings are only for the purpose of illustrating the embodiments and are not to be considered as limiting the present application. Moreover, the same reference numerals are used throughout the drawings to represent the same components. In the drawings:
[0042] Figure 1 A schematic diagram of a partial three-dimensional structure of a server provided in an embodiment of the present application;
[0043] Figure 2 for Figure 1 A schematic diagram of a three-dimensional structure in which the structure shown in FIG. 1 is removed from the first functional component;
[0044] Figure 3 for Figure 1 The schematic diagram of the structure shown in FIG. 1 is a top view of the structure without the operating member;
[0045] Figure 4 for Figure 1 A schematic diagram of a top view of a partial structure of a chassis and a first functional component that cooperate with each other;
[0046] Figure 5 This is a schematic diagram of a top view of the first hole and the second hole in one embodiment of the present application;
[0047] Figure 6 for Figure 1 A schematic diagram of the three-dimensional structure of the operating member in the structure shown in FIG. 1 at a viewing angle;
[0048] Figure 7 for Figure 1 A schematic diagram of the three-dimensional structure of the operating member in the structure shown in FIG. 1 from another perspective;
[0049] Figure 8A schematic diagram of a top view of the structure of a server provided in an embodiment of the present application, in which a first functional component is in a pulled-out state;
[0050] Fig. 9 A schematic diagram of a top view of the structure of a server provided by an embodiment of the present application, in which the first function key is in an inserted state;
[0051] Fig.10 for Figure 8 A schematic diagram of the local enlarged structure at the U in the middle;
[0052] Fig.11 for Fig.10 The schematic diagram of the first hole and the second hole is shown in the schematic structure;
[0053] Fig.12 for Fig. 9 A schematic diagram of the local enlarged structure at W in the middle;
[0054] Fig.13 for Fig.12 The schematic diagram of the first hole and the second hole is shown in the schematic structure;
[0055] Fig.14 This is a schematic diagram of a top view of the first hole and the second hole in another embodiment of the present application;
[0056] Fig.15 This is a schematic diagram of a top view of the first hole and the second hole in another embodiment of the present application;
[0057] Fig.16 This is one of the partial exploded structural diagrams of the cooperation between the operating element, the first functional element and the chassis in one embodiment of the present application;
[0058] Fig.17 This is a schematic diagram of a partially exploded structure of a chassis and a first mounting member in cooperation with each other in an embodiment of the present application;
[0059] Fig.18 This is a second schematic diagram of a partially exploded structure of the operation member, the first functional member and the chassis in cooperation with each other in an embodiment of the present application;
[0060] Fig.19 for Figure 8 A schematic diagram of the local enlarged structure at the middle V;
[0061] Fig. 20 for Fig.19 The schematic diagram of the first hole and the second hole is shown in the schematic structure;
[0062] Fig.21 for Fig. 9 A schematic diagram of the local enlarged structure at the X in the middle;
[0063] Fig. 22 for Fig.21 The schematic diagram of the first hole and the second hole is shown in the illustrated structure.
[0064] Description of reference numerals:
[0065] Chassis 100, bearing wall 110, side wall 120;
[0066] first functional part 200, first hole k1, first end e1, second end e2, first inner wall n1, second inner wall n2, second hole k2, third inner wall n3, fourth inner wall n4;
[0067] The operating member 300, the first target member 300a, the second target member 300b, the body 310, the first portion 311, the second portion 312, the step portion 313, the protrusion 320, the first protrusion 320a, the second protrusion 320b, and the mounting hole a;
[0068] First mounting member 400, first sub-mounting portion 410, matching hole p, second sub-mounting portion 420;
[0069] A second mounting member 500, a matching portion 510, and a limiting portion 520;
[0070] A second functional component 600;
[0071] A first guide structure d1, a second guide structure d2;
[0072] A first stop structure z1, a first sub-stop portion z11, a second sub-stop portion z12, and a second stop structure z2;
[0073] Axis of rotation H, first axis L;
[0074] First direction F1, second direction F2, third direction F3, extraction direction B, insertion direction C. DETAILED DESCRIPTION
[0075] In order to make the above-mentioned purposes, features and advantages of the present application more obvious and easy to understand, the specific implementation methods of the present application are described in detail below in conjunction with the accompanying drawings. In the following description, many specific details are set forth to facilitate a full understanding of the present application. However, the present application can be implemented in many other ways different from those described herein, and those skilled in the art can make similar improvements without violating the connotation of the present application, so the present application is not limited by the specific embodiments disclosed below.
[0076] In the description of the present application, it should be understood that if the terms "center", "longitudinal", "lateral", "length", "width", "thickness", "up", "down", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inside", "outside", "clockwise", "counterclockwise", "axial", "radial", "circumferential", etc. appear, the orientation or position relationship indicated by these terms is based on the orientation or position relationship shown in the accompanying drawings, which is only for the convenience of describing the present application and simplifying the description, and does not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be understood as a limitation on the present application.
[0077] In addition, if the terms "first" or "second" appear, these terms are used for descriptive purposes only and should not be understood as indicating or implying relative importance or implicitly indicating the number of technical features indicated. Therefore, a feature defined as "first" or "second" may explicitly or implicitly include at least one of the features. In the description of this application, if the term "plurality" appears, the meaning of "plurality" is at least two, such as two, three, etc., unless otherwise clearly and specifically defined.
[0078] In this application, unless otherwise clearly specified and limited, if the terms "installed", "connected", "connected", "fixed" and the like appear, these terms should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integrated connection; it can be a mechanical connection or an electrical connection; it can be a direct connection or an indirect connection through an intermediate medium, it can be the internal connection of two elements or the interaction relationship between two elements, unless otherwise clearly defined. For ordinary technicians in this field, the specific meanings of the above terms in this application can be understood according to the specific circumstances.
[0079] In the present application, unless otherwise clearly specified and limited, if there is a description that a first feature is "above" or "below" a second feature, etc., or similar descriptions appear, it may mean that the first and second features are in direct contact, or that the first and second features are in indirect contact through an intermediate medium. Moreover, the first feature being "above", "above" and "above" the second feature may mean that the first feature is directly above or obliquely above the second feature, or simply means that the first feature is higher in level than the second feature. The first feature being "below", "below" and "below" the second feature may mean that the first feature is directly below or obliquely below the second feature, or simply means that the first feature is lower in level than the second feature.
[0080] It should be noted that if an element is referred to as being "fixed to" or "disposed on" another element, it may be directly on the other element or there may be a central element. If an element is considered to be "connected to" another element, it may be directly connected to the other element or there may be a central element at the same time. If any, the terms "vertical", "horizontal", "upper", "lower", "left", "right" and similar expressions used in this application are for illustrative purposes only and do not represent the only implementation method.
[0081] High-density servers refer to deploying more server devices within the unit space of the server rack to achieve higher computing density and resource utilization. Generally speaking, high-density servers adopt high-density layout and optimized design. By effectively utilizing space, more server devices are placed in one rack, thereby providing greater computing power and storage capacity. This design can provide more computing resources within a limited space, greatly improving server performance and operating efficiency.
[0082] At present, high-density servers often use card bridges to replace cable connections to achieve signal transmission. When there are many slots, the required insertion force is large, and the plug-in space is limited, it is not only difficult to plug and unplug the card, but it is also easy to damage the gold fingers of the card. In addition, high-density servers often have higher requirements for space, and thus higher requirements for the reliability and maintainability of the card insertion.
[0083] Based on this, an embodiment of the present application provides a server that facilitates the plugging and unplugging of corresponding functional components by improving the plugging and unplugging method.
[0084] It should be noted that the functional parts involved in the embodiments of the present application include but are not limited to boards, and may also be components for realizing other functions. The functional parts involved in the embodiments of the present application include but are not limited to bridging with another functional part by plugging, and may also be coordinated with other related components. They can be set according to specific usage conditions and are not specifically limited here.
[0085] Figure 1 A schematic diagram of a partial three-dimensional structure of a server provided in an embodiment of the present application is shown; Figure 2 Shows Figure 1 The structure shown in FIG. 1 is a schematic diagram of a three-dimensional structure without the first functional component 200; Figure 3 Shows Figure 1 The structure shown in FIG. 3 is a schematic diagram of a top view of the structure without the operating member 300; Figure 4 Shows Figure 1 The schematic diagram of the top view of the partial structure of the chassis 100 and the first functional component 200 shown in the figure; for the convenience of explanation, only the content related to the embodiment of the present application is shown.
[0086] In the embodiment of the present application, the first direction F1 is the length direction of the server, the second direction F2 is the width direction of the server, and the third direction F3 is the thickness direction of the server. The first direction F1, the second direction F2 and the third direction F3 are perpendicular to each other. The first direction F1 and the second direction F2 can both be horizontal directions, in which case the third direction F3 is a vertical direction. Of course, in some other embodiments, the first direction F1 can be the width direction of the server, and the second direction F2 can be the length direction of the server; in some other embodiments, the first direction F1 and the second direction F2 may not be horizontal directions, and the third direction F3 is not a vertical direction. It can be set according to the specific usage, and no specific restrictions are made here. For the convenience of describing and illustrating the relevant structure, the relevant views involved in the embodiment of the present application are shown by taking the first direction F1, the second direction F2 and the third direction F3 as two perpendicular directions, the first direction F1 and the second direction F2 as horizontal directions, and the third direction F3 as a vertical direction as an example, but it is not limited to this.
[0087] Please refer to Figure 1 An embodiment of the present application provides a server, including a chassis 100 , a first functional component 200 and an operating component 300 .
[0088] The chassis 100 is mainly used to carry relevant components (such as electronic components) in the server. Figure 2 The chassis 100 includes a bearing wall 110. The bearing wall 110 is a component for bearing the first functional part 200 and other related components. The bearing wall 110 can be generally arranged in a plate shape. Exemplarily, the chassis 100 also includes two side walls 120 arranged opposite to each other along the second direction F2, and the two side walls 120 are respectively connected to the two sides of the bearing wall 110 along the second direction F2. Of course, the chassis 100 may also include a wall (not shown in the figure) arranged on one side of the bearing wall 110 along the first direction F1. In this way, a accommodating space is formed in the chassis 100, and the accommodating space can be used to accommodate the related components carried by the bearing wall 110.
[0089] The first functional component 200 is a component for realizing related functions. For example, the first functional component 200 may be a board. Figure 3 and Figure 4, the first functional part 200 is inserted into the chassis 100 along the first direction F1 and carried on the carrying wall 110. The first functional part 200 is provided with a first hole k1 and a second hole k2 along the carrying direction of the carrying wall 110. The extension direction of the first hole k1, the extension direction of the second hole k2 and the carrying direction are perpendicular to each other, and the extension direction of the first hole k1 is parallel to the first direction F1. In the embodiment of the present application, the carrying direction of the carrying wall 110 is parallel to the third direction F3, the extension direction of the first hole k1 is parallel to the first direction F1, and the extension direction of the second hole k2 is parallel to the second direction F2.
[0090] The first hole k1 and the second hole k2 both penetrate the first functional part 200 along the third direction F3. The first hole k1 and the second hole k2 can be independent of each other or connected to each other, and can be set according to specific usage conditions, and are not specifically limited here. Figure 4 As an example, combined with reference Figure 5 , Figure 5 It is a schematic diagram of a top view of the structure of the first hole k1 and the second hole k2 in one embodiment of the present application, illustrating a situation where the first hole k1 and the second hole k2 are connected.
[0091] The operating member 300 is a component used to perform plugging and unplugging operations on the first functional member 200. Figure 1 , Figure 6 and Figure 7 , Figure 6 Shows Figure 1 The schematic diagram of the three-dimensional structure of the operating member 300 in the structure shown in FIG. Figure 7 Shows Figure 1 The structure shown in the figure is a schematic diagram of the three-dimensional structure of the operating member 300 under another viewing angle, and the operating member 300 includes a main body 310 and two protrusions 320 both protruding from one end of the main body 310. The two protrusions 320 are located on the side of the main body 310 facing the first functional member 200. One of the protrusions 320 can be rotatably inserted in the first hole k1, and one of the protrusions 320 can be rotatably matched with the bearing wall 110 around the rotation axis H. The other protrusion 320 can be rotatably inserted in the second hole k2. The extension direction of the rotation axis H is parallel to the bearing direction. In the embodiment of the present application, the extension direction of the rotation axis H is parallel to the first direction F1.
[0092] Among them, combined with reference Figure 8 and Fig. 9 , Figure 8 FIG. 1 shows a schematic top view of the structure of a first functional component 200 of a server provided by an embodiment of the present application in a pulled-out state. Fig. 9A top view structural schematic diagram of the first function key of the server provided by an embodiment of the present application is shown in an inserted state. The first function part 200 can be inserted into or pulled out of the chassis 100 along the first direction F1 in response to the rotation of one of the protrusions 320 relative to the supporting wall 110 to switch between the inserted state and the pulled out state.
[0093] Combined with reference Figures 10 to 13 , Fig.10 Shows Figure 8 The local enlarged structural diagram of the U in the middle, Fig.11 Shows Fig.10 The schematic diagram of the structure shows a first hole k1 and a second hole k2. Fig.12 Shows Fig. 9 The schematic diagram of the local enlarged structure at W in the middle, Fig.13 Shows Fig.12 The schematic diagram of the first hole k1 and the second hole k2 is shown in the schematic structure. It can be seen that the relative position between the corresponding protrusion 320 and the first hole k1 in the pulled-out state and the relative position between the corresponding protrusion 320 and the first hole k1 in the inserted state have changed. Since the protrusion 320 matched with the first hole k1 is rotatably matched with the bearing wall 110, the approximate position of the protrusion 320 matched with the first hole k1 can be regarded as unchanged. With the pulling out or insertion of the first functional part 200, the position of the first hole k1 relative to the protrusion 320 matched with the first hole k1 has changed, that is, the position of the first hole k1 in the first direction F1 has changed.
[0094] Correspondingly, the relative position between the corresponding convex part 320 and the second hole k2 in the pulled-out state and the relative position between the corresponding convex part 320 and the second hole k2 in the inserted state also change. Since the operating member 300 rotates with the convex part 320 that is rotatably matched with the bearing wall 110 as a fulcrum, the convex part 320 that matches the second hole k2 can be driven to rotate around the convex part 320 that matches the first hole k1. In the process of the convex part 320 that matches the second hole k2 rotating around the convex part 320 that matches the first hole k1, the convex part 320 that matches the second hole k2 will generate a pressing force on the hole wall of the second hole k2. Under the action of the pressing force and the process of the convex part 320 that matches the second hole k2 and the second hole k2 generating relative movement along the second direction F2, the first functional part 200 is prompted to generate relative movement along the first direction F1 relative to the bearing wall 110, so that the first functional part 200 can be pulled out or inserted.
[0095] The switching of the first functional part 200 between the inserted state and the unplugged state can be achieved by controlling the rotation direction of the operating part 300. It can be understood that the rotation direction of the operating part 300 when the state of the first functional part 200 is switched from the inserted state to the unplugged state is opposite to the rotation direction of the operating part 300 when the state of the first functional part 200 is switched from the unplugged state to the inserted state. For example, the two rotation directions mentioned above can be one clockwise and the other counterclockwise. It can be determined according to the installation position of the operating part 300 and the arrangement of the first hole k1 and the second hole k2, and is not specifically limited here.
[0096] Thus, by controlling the rotation direction of the operating member 300, the first functional member 200 can be switched between the inserted state and the unplugged state. In this process, the convex portion 320 that can be rotatably matched with the bearing wall 110 constitutes a fulcrum, and the position on the hole wall of the second hole k2 that contacts the corresponding convex portion 320 constitutes a force point, and the corresponding position on the body 310 can be used as a force application point, so that a lever labor-saving structure is formed, which is conducive to the state switching of the first functional member 200, and then facilitates the plugging and unplugging of the first functional member 200. Therefore, under such an operation mode, it is easy to plug and unplug the first functional member 200 and improve the situation of damage to the first functional member 200 during the plugging and unplugging process.
[0097] Compared with the method of fixing the operating member 300 to the chassis 100 or the first functional member 200, since the two protrusions 320 are respectively matched with the corresponding first holes k1 and second holes k2 by plugging, it is convenient to replace and maintain the operating member 300. Compared with the method of installing the first functional member 200 on the tray and plugging and unplugging the first functional member 200 by pulling out the tray, the operating member 300 in the embodiment of the present application is easy to disassemble, and the operating member 300 can also cooperate with the bearing wall 110 and the first functional member 200 to form a lever labor-saving structure, which is convenient for faster replacement of the first functional member 200.
[0098] In some embodiments, please refer to Figure 5 , the first hole k1 is connected to the second hole k2.
[0099] In this way, the first hole k1 and the second hole k2 are made more compact, thereby saving space on the first functional part 200 and installation space and use space of the operating part 300 .
[0100] Of course, in other embodiments, please refer to Fig.14 , Fig.14 The top view of the first hole k1 and the second hole k2 in another embodiment of the present application is shown. The first hole k1 and the second hole k2 may also be disconnected. As long as the two protrusions 320 can be matched to realize the plugging and unplugging of the first functional part 200, no specific limitation is made here.
[0101] It should be noted that Figure 5 The first hole k1 and the second hole k2 are divided by a dotted line. The dotted line is for illustration only and does not necessarily represent the boundary between the first hole k1 and the second hole k2.
[0102] In some embodiments, please refer to Figure 5 One end of the first hole k1 along the extending direction of the first hole k1 is connected to one end of the second hole k2 along the extending direction of the second hole k2. In this way, the first hole k1 and the second hole k2 substantially form an L-shaped hole.
[0103] This is beneficial for further saving space on the first functional component 200 and facilitates the arrangement of related components on the first functional component 200 .
[0104] Of course, in other embodiments, please refer to Fig.15 , Fig.15 FIG. 1 is a schematic diagram of a top view of a first hole k1 and a second hole k2 in another embodiment of the present application. The connected first hole k1 and the second hole k2 can be cross-arranged to form a substantially "cross" structure. It can be understood that compared to Figure 5 The structure shown, Fig.15 The illustrated structure will take up more space on the first functional part 200. In the case where there is a certain amount of space on the first functional part 200, it can also be used Fig.15 The structure shown in the figure can be set according to the specific usage, and no specific limitation is made here.
[0105] In some embodiments, please refer to Figure 5 The first hole k1 has a first end e1 and a second end e2 which are arranged opposite to each other along the extension direction of the first hole k1, and the first end e1 is connected to one end of the second hole k2 along the extension direction of the second hole k2. The direction from the first end e1 to the second end e2 is the same as the extraction direction B of the first functional part 200, and the extraction direction B is parallel to the first direction F1.
[0106] Of course, in other embodiments, the direction from the first end e1 to the second end e2 is the same as the insertion direction C of the first functional component 200. Figure 5 In the illustrated situation, it is more conducive to the arrangement of the operating member 300 and can reduce the space inside the chassis 100 occupied by the operating member 300 .
[0107] It should be noted that the pull-out direction B and the insertion direction C are relative, the pull-out direction B and the insertion direction C are opposite to each other, and both the pull-out direction B and the insertion direction C are parallel to the first direction F1.
[0108] In some embodiments, please continue Figure 5, Figures 10 to 13 , the first hole k1 has a first inner wall n1 and a second inner wall n2 that are arranged opposite to each other along the first direction F1. Along the extraction direction B of the first functional part 200, the second inner wall n2 is located upstream of the first inner wall n1. The extraction direction B is parallel to the first direction F1. The convex portion 320 that can be rotatably inserted into the first hole k1 and can be rotatably matched with the bearing wall 110 is defined as the first target portion. In the inserted state, the first functional part 200 has an insertion limit position; the first functional part 200 is located at the insertion limit position, and the first target portion abuts against the first inner wall n1; and / or, in the extracted state, the first functional part 200 has an extraction limit position; the first functional part 200 is located at the extraction limit position, and the first target portion abuts against the second inner wall n2.
[0109] The insertion limit position refers to the limit position to which the first functional part 200 can move along the insertion direction C. The extraction limit position refers to the limit position to which the first functional part 200 can move along the extraction direction B.
[0110] In this way, by setting the insertion limit position and / or the extraction limit position, it is further beneficial to control the plugging and unplugging process of the first functional component 200, which is not only beneficial to the plugging and unplugging of the first functional component 200, but also can further improve the damage to the first functional component 200 during the plugging and unplugging process.
[0111] In some embodiments, please continue Figure 5 , Figures 10 to 13 , the second hole k2 has a third inner wall n3 and a fourth inner wall n4 arranged opposite to each other along the first direction F1. Along the extraction direction B of the first functional part 200, the third inner wall n3 is located upstream of the fourth inner wall n4. The extraction direction B is parallel to the first direction F1. The convex portion 320 rotatably inserted in the second hole k2 is defined as the second target portion. In the process of switching the first functional part 200 from the extraction state to the insertion state, the second target portion abuts against the third inner wall n3. In the process of switching the first functional part 200 from the insertion state to the extraction state, the second target portion abuts against the fourth inner wall n4.
[0112] In this way, when the first functional part 200 switches from the unplugged state to the inserted state, the third inner wall n3 can continuously contact the second target portion, and the position where the third inner wall n3 contacts the second target portion constitutes a force point. When the third inner wall n3 is subjected to the pressing force of the second target portion, the first functional part 200 can move along the insertion direction C, and then be inserted into the chassis 100. When the first functional part 200 switches from the inserted state to the unplugged state, the fourth inner wall n4 can continuously contact the second target portion, and the position where the fourth inner wall n4 contacts the second target portion constitutes a force point. When the fourth inner wall n4 is subjected to the pressing force of the second target portion, the first functional part 200 can move along the unplugging direction B, and then be unplugged from the chassis 100. In both processes, the convex portion 320 (i.e., the first target portion) that can be rotatably matched with the bearing wall 110 is used as a fulcrum, and a corresponding lever structure is roughly formed, achieving a labor-saving effect.
[0113] It should be noted that in the embodiments of the present application Figure 5 In the illustrated case, the second inner wall n2 and the third inner wall n3 are connected and located in the same plane.
[0114] Fig.16 One of the partial exploded structural diagrams of the operation member 300, the first functional member 200 and the chassis 100 in one embodiment of the present application is shown; Fig.17 A schematic diagram of a partially exploded structure of the chassis 100 and the first mounting member 400 in an embodiment of the present application is shown; for ease of explanation, only the content related to the embodiment of the present application is shown.
[0115] In some embodiments, please refer to Figure 6 and Figure 7 , and combined with reference Fig.16 and Fig.17 , the convex part 320 that can be rotatably inserted into the first hole k1 and rotatably matched with the bearing wall 110 is defined as the first target part, and the first target part is provided with a mounting hole a along the bearing direction. The server also includes a first mounting member 400, which is disposed on the bearing wall 110 and penetrates the mounting hole a through the first hole k1, and the first mounting member 400 is rotatably connected to the first target part by means of the mounting hole a. That is, the first target part is generally sleeved outside the first mounting member 400.
[0116] In this way, by arranging the first mounting member 400 on the bearing wall 110 and the mounting hole a on the first target part, a rotatable structure is formed by means of the cooperation between the first mounting member 400 and the mounting hole a, thereby realizing the rotatable connection between the first target part and the bearing wall 110. In this way, the overall structure is simpler and occupies less space.
[0117] In some embodiments, please refer to Figure 6 , Figure 7 , Fig.16 and Fig.17 , the first mounting member 400 is detachably connected to the bearing wall 110. Specifically, the first mounting member 400 includes a first sub-mounting portion 410 and a second sub-mounting portion 420 connected along the third direction F3. The first sub-mounting portion 410 is arranged on the side of the bearing wall 110 facing the inside of the chassis 100, and the second sub-mounting portion 420 is arranged on the side of the bearing wall 110 away from the inside of the chassis 100. The second sub-mounting portion 420 is penetrated by the bearing wall 110 and is detachably connected to the first sub-mounting portion 410. Exemplarily, the second sub-mounting portion 420 can be configured as a screw, and the second sub-mounting portion 420 is threadedly connected to the first sub-mounting portion 410.
[0118] In this way, since the first mounting member 400 is detachably connected to the bearing wall 110 , it is convenient to replace and maintain the first mounting member 400 , and it is also convenient to install the first mounting member 400 .
[0119] Fig.18 A second schematic diagram of a partially exploded structure of the operating member 300, the first functional member 200 and the chassis 100 in one embodiment of the present application is shown; for ease of explanation, only the contents related to the embodiment of the present application are shown.
[0120] In some embodiments, please refer to Figure 6 , Figure 7 , Fig.16 and Fig.17 , and combined with reference Fig.18 The first mounting member 400 is provided with a matching hole p along the bearing direction (i.e., the third direction F3). The server further includes a second mounting member 500, and the second mounting member 500 includes a matching portion 510 and a limiting portion 520 connected to the matching portion 510. The matching portion 510 can be detachably matched with the matching hole p, and the limiting portion 520 is used to limit the operating member 300 on the side of the operating member 300 away from the bearing wall 110.
[0121] Exemplarily, the matching portion 510 can be threadedly connected to the first mounting member 400 by means of the matching hole p. The second mounting member 500 can be configured as a flat head screw, thereby forming the matching portion 510 and the limiting portion 520 mentioned above. The matching hole p can be provided on the first sub-mounting portion 410 mentioned above.
[0122] In this way, by providing the second mounting member 500 , the operating member 300 can be limited in the third direction F3 , which is not only beneficial for using the operating member 300 , but also beneficial for improving the stability of the rotation process of the operating member 300 .
[0123] In some embodiments, please refer to Figure 1 , Figure 8 and Fig. 9 , there are multiple operating members 300. The first hole k1 and the second hole k2 constitute a matching structure, and there are multiple matching structures. All operating members 300 are arranged in a one-to-one correspondence with all matching structures. In the embodiment of the present application, there are two operating members 300. Correspondingly, there are also two matching structures.
[0124] In this way, by providing a plurality of operating members 300 , it is further convenient for the user to plug and unplug the first functional member 200 by means of the operating members 300 .
[0125] In some embodiments, please refer to Figure 1 , Figure 4 , Figures 6 to 9 , at least two of all the matching structures are arranged in mirror symmetry about the first axis L, and the extension direction of the first axis L is parallel to the first direction F1. The two matching structures arranged in mirror symmetry about the first axis L are defined as the first target structure and the second target structure, the operating member 300 matched with the first target structure is the first target member 300a, and the operating member 300 matched with the second target structure is the second target member 300b. The two protrusions 320 of the same operating member 300 are the first protrusion 320a and the second protrusion 320b.
[0126] Combined with reference Figures 10 to 13 The first protrusion 320a of the first target part 300a can be rotatably inserted into the first hole k1 of the first target structure, and the first protrusion 320a of the first target part 300a can be rotatably matched with the bearing wall 110. The second protrusion 320b of the first target part 300a can be rotatably inserted into the second hole k2 of the first target structure.
[0127] Combined with reference Figures 19 to 22 , Fig.19 Shows Figure 8 The local enlarged structural diagram at V in the middle, Fig. 20 Shows Fig.19 The schematic diagram of the structure shows a first hole k1 and a second hole k2. Fig.21 Shows Fig. 9 The schematic diagram of the local enlarged structure at X in the middle, Fig. 22 Shows Fig.21 The schematic diagram of the first hole k1 and the second hole k2 is illustrated in the schematic structure, the second convex portion 320b of the second target part 300b can be rotatably inserted into the first hole k1 of the second target structure, and the second convex portion 320b of the second target part 300b can be rotatably matched with the bearing wall 110. The first convex portion 320a of the second target part 300b can be rotatably inserted into the second hole k2 of the second target structure.
[0128] In the embodiments of this application, Figure 8 and Fig. 9 , the operating member 300 on the left is the first target member 300a, and the operating member 300 on the right is the second target member 300b. Of course, in some other embodiments, the first target member 300a and the second target member 300b can be installed according to the arrangement of the corresponding first hole k1 and the second hole k2, and are not limited to the situation shown in the figure.
[0129] Thus, by configuring the two protrusions 320 on the operating member 300 to be rotatably connected to the supporting wall 110 , the first target member 300a and the second target member 300b can be constructed in the same shape without having to be distinguished, thereby facilitating the installation of the operating member 300 .
[0130] In some embodiments, please refer to Figures 6 to 9 , both convex parts 320 are provided with mounting holes a along the bearing direction. The server also includes a plurality of first mounting members 400 arranged on the bearing wall 110, and all the first mounting members 400 are arranged in one-to-one correspondence with the operating members 300. The first mounting member 400 corresponding to the first target member 300a is a first target mounting member, and the second mounting member 500 corresponding to the second target member 300b is a second target mounting member. The first target mounting member is inserted into the mounting hole a of the corresponding first convex part 320a via the corresponding first hole k1, and the first target mounting member is rotatably connected to the corresponding first convex part 320a by means of the corresponding mounting hole a. The second target mounting member is inserted into the mounting hole a of the corresponding second convex part 320b via the corresponding first hole k1, and the second target mounting member is rotatably connected to the corresponding second convex part 320b by means of the corresponding mounting hole a.
[0131] In this way, by providing the first mounting member 400 , the first mounting member 400 can form a rotatable structure with the corresponding protrusion 320 , which is convenient for installation.
[0132] It should be noted that, on this basis, the second mounting member 500 illustrated in some of the aforementioned embodiments may also be provided. The relevant embodiments of the first mounting member 400 and the relevant embodiments of the second mounting member 500 may refer to the contents illustrated in some of the aforementioned embodiments, and will not be described in detail here.
[0133] In some embodiments, please refer to Figure 6 and Figure 7The body 310 includes a first portion 311, a second portion 312, and a step portion 313 connecting the first portion 311 and the second portion 312. The first portion 311 is provided with two protrusions 320, and the second portion 312 extends out of the chassis 100. In the embodiment of the present application, the second portion 312 is further away from the bearing wall 110 than the first portion 311. Exemplarily, a reinforcing rib (not shown in the figure) may also be provided on the step portion 313 to improve the structural strength of the operating member 300.
[0134] In this way, not only can the related structures of the server be avoided, but also the operating member 300 can be used conveniently.
[0135] In some embodiments, please refer to Fig.10 , Fig.12 , Fig.19 and Fig.21 One of the bearing wall 110 and the first functional component 200 is provided with a first guiding structure d1, and the other is provided with a second guiding structure d2. The first guiding structure d1 and the second guiding structure d2 can be guided and matched along the first direction F1.
[0136] Exemplarily, the first guide structure d1 is configured as a guide column, and the second guide structure d2 is configured as a guide hole extending along the first direction F1, and the first guide structure d1 can be inserted into the second guide structure d2. The first guide structure d1 can be provided on the bearing wall 110, and the second guide structure d2 can be provided on the first functional part 200. Of course, the first guide structure d1 and the second guide structure d2 can also be provided as other structures capable of guiding, which are not specifically limited here.
[0137] In this way, by providing the first guiding structure d1 and the second guiding structure d2 , it is helpful to guide the movement of the first functional component 200 along the first direction F1 , and further improve the reliability and stability during the plugging and unplugging process.
[0138] In some other embodiments, the relative displacement that can be generated by the first guide structure d1 and the second guide structure d2 can also be controlled. For example, when the second guide structure d2 is a guide hole, the stroke of the first functional part 200 along the first direction F1 can be controlled by controlling the size of the second guide structure d2 along the first direction F1. In some other embodiments, the number of the first guide structure d1 and the second guide structure d2 can also be set, and multiple groups of the first guide structure d1 and the second guide structure d2 can be arranged, which can be set according to the space of the chassis 100 and the first functional part 200, and no specific limitation is made here.
[0139] In some embodiments, please refer to Fig.10 , Fig.12 , Fig.17 , Fig.19 and Fig.21 , one of the bearing wall 110 and the first functional part 200 is provided with a first stop structure z1, and the other is provided with a second stop structure z2. The first stop structure z1 and the second stop structure z2 are stop-matched along the first direction F1. In the inserted state, the first stop structure z1 and the second stop structure z2 are locked and matched along the bearing direction. In the pulled-out state, the first stop structure z1 and the second stop structure z2 are detachably matched along the bearing direction.
[0140] In this way, the reliability and stability of the first functional component 200 can be improved in the inserted state, while the first functional component 200 can be easily disassembled in the unplugged state.
[0141] In some embodiments, please refer to Fig.10 , Fig.12 , Fig.17 , Fig.19 and Fig.21 The first stop structure z1 includes a first sub-stop portion z11 and a second sub-stop portion z12 connected along the third direction F3, the second sub-stop portion z12 is provided on the bearing wall 110, the second stop structure z2 is provided on the first functional part 200, the second stop structure z2 includes a first hole segment and a second hole segment sequentially provided along the insertion direction C, and the second sub-stop portion z12 is matched with the first hole segment and the second hole segment along the first direction F1. Along the second direction F2, the size of the first hole segment, the size of the first sub-stop portion z11, and the size of the second hole segment increase sequentially.
[0142] In this way, when the second sub-stopper z12 is matched with the first hole segment, the first sub-stopper z11 can limit the first functional part 200 along the third direction F3. When the second sub-stopper z12 is matched with the second hole segment, the first sub-stopper z11 can pass through the second hole segment along the third direction F3, and the first sub-stopper z11 will not limit the first functional part 200 in the third direction F3. In this way, the first functional part 200 can be stopped and the overall structure is also simpler.
[0143] In some other embodiments, the number of the first stop structure z1 and the second stop structure z2 can be set, and multiple groups of the first stop structure z1 and the second stop structure z2 can be arranged according to the space of the chassis 100 and the first functional component 200, and no specific limitation is made here.
[0144] In some embodiments, please refer to Figure 6 and Figure 7 The operating member 300 is configured as an integrally formed member. Integrally formed means a component formed as a whole by an integrally formed process using the same material.
[0145] Thus, since the operating member 300 is integrally formed, the operating member 300 has better integrity and higher strength, which is not only beneficial to improving the reliability of the operating member 300 , but also beneficial to improving the appearance performance of the operating member 300 .
[0146] Of course, in some other embodiments, the protrusion 320 can be fixedly connected to the body 310 by welding or connected by a connecting piece. It can be selected according to the specific use situation and is not specifically limited here.
[0147] In some embodiments, please refer to Figure 8 and Fig. 9 The server further includes a second functional component 600 disposed on the bearing wall 110. In the inserted state, the first functional component 200 and the second functional component 600 are matched. In the pulled-out state, the first functional component 200 and the second functional component 600 are separated.
[0148] Exemplarily, both the first functional component 200 and the second functional component 600 may be configured as boards.
[0149] In this way, the first functional component 200 can be used flexibly according to the usage situation, and the required connection or storage of the first functional component 200 can be achieved by plugging and unplugging the first functional component 200, and no specific limitation is made here.
[0150] The following is an exemplary description of the insertion and removal of the first functional component 200 in the embodiment of the present application in combination with the situations illustrated in some of the above embodiments and the relevant drawings, but is not limited to this.
[0151] For example, please refer to Figures 5 to 22 When the first functional part 200 needs to be inserted into the chassis 100, first, a corresponding protrusion 320 on the operating part 300 is inserted into the corresponding first mounting part 400, and the other protrusion 320 is inserted into the second hole k2, and then the second mounting part 500 is installed on the first mounting part 400, and the operating part 300 is limited in the third direction F3. At this time, since the operating part 300 includes the step part 313, there is a certain distance between the second part 312 of the operating part 300 and the first functional part 200. The gap can improve the friction between the operating member 300 and the first functional member 200 during the rotation process; then, the operating member 300 is pushed outward to allow the first functional member 200 to be inserted into the chassis 100, and when the protrusion 320 that cooperates with the first hole k1 abuts against the first inner wall n1 of the first hole k1, the first functional member 200 is at the insertion limit position, and the first functional member 200 is completely inserted into the chassis 100; finally, the first mounting member 400 and the second mounting member 500 are removed, and the operating member 300 can be removed.
[0152] For example, please refer to Figures 5 to 22When the first functional component 200 needs to be pulled out of the chassis 100, first, the operating component 300 can be installed in the same way as the process of inserting the first functional component 200 into the chassis 100; secondly, the operating component 300 can be pushed inward to pull out the first functional component 200 from the chassis 100. When the protrusion 320 matching the first hole k1 abuts against the second inner wall n2 of the first hole k1, the first functional component 200 is in the pull-out limit position, and the first functional component 200 can be completely pulled out of the chassis 100; finally, the first mounting component 400 and the second mounting component 500 are removed, and the operating component 300 can be removed.
[0153] It should be noted that when the operating member 300 is not installed, the first functional member 200 can be placed on the bearing wall 110 of the chassis 100 along the third direction F3. In this process, the first guide structure d1, the second guide structure d2, the first stop structure z1 and the second stop structure z2 can cooperate with each other.
[0154] The technical features of the above-described embodiments may be arbitrarily combined. To make the description concise, not all possible combinations of the technical features in the above-described embodiments are described. However, as long as there is no contradiction in the combination of these technical features, they should be considered to be within the scope of this specification.
[0155] The above-described embodiments only express several implementation methods of the present application, and the descriptions thereof are relatively specific and detailed, but they cannot be construed as limiting the scope of the patent application. It should be pointed out that, for a person of ordinary skill in the art, several variations and improvements can be made without departing from the concept of the present application, and these all belong to the protection scope of the present application. Therefore, the protection scope of the patent application shall be subject to the attached claims.
Claims
1. A server, characterized in that: include: A chassis, including a load-bearing wall; A first functional component is inserted into the chassis along a first direction and carried on the carrying wall; The first functional part is provided with a first hole and a second hole along the bearing direction of the bearing wall; The extending direction of the first hole, the extending direction of the second hole, and the bearing direction are perpendicular to each other, and the extending direction of the first hole and the first direction are parallel to each other; and An operating member, comprising a body and two protrusions both protruding from one end of the body; one of the protrusions can be rotatably inserted into the first hole, and one of the protrusions can be rotatably matched with the bearing wall around a rotation axis, and the other protrusion can be rotatably inserted into the second hole; the extension direction of the rotation axis and the bearing direction are parallel to each other; The first functional part can be inserted into or pulled out of the chassis along the first direction in response to the rotation of one of the protrusions relative to the bearing wall, so as to switch between an inserted state and a pulled out state.
2. The server according to claim 1, characterized in that: The first hole is communicated with the second hole.
3. The server according to claim 2, characterized in that: One end of the first hole along the extending direction of the first hole and one end of the second hole along the extending direction of the second hole are communicated with each other.
4. The server according to claim 3, characterized in that: The first hole has a first end and a second end that are oppositely arranged along an extension direction of the first hole, and the first end is connected to an end of the second hole along the extension direction of the second hole; The direction from the first end to the second end is the same as the pulling-out direction of the first functional part, and the pulling-out direction and the first direction are parallel to each other.
5. The server according to any one of claims 1 to 4, characterized in that: The first hole has a first inner wall and a second inner wall arranged opposite to each other along the first direction; along the extraction direction of the first functional part, the second inner wall is located upstream of the first inner wall; the extraction direction and the first direction are parallel to each other; The convex portion rotatably inserted into the first hole and rotatably matched with the bearing wall is defined as a first target portion; Wherein, in the inserted state, the first functional part has an insertion limit position; the first functional part is located at the insertion limit position, and the first target portion abuts against the first inner wall; and / or In the pull-out state, the first functional part has a pull-out limit position; when the first functional part is located at the pull-out limit position, the first target portion abuts against the second inner wall.
6. The server according to any one of claims 1 to 4, characterized in that: The second hole has a third inner wall and a fourth inner wall arranged opposite to each other along the first direction; along the extraction direction of the first functional part, the third inner wall is located upstream of the fourth inner wall; the extraction direction is parallel to the first direction; the convex portion rotatably inserted into the second hole is defined as the second target portion; Wherein, during the process of the first functional part switching from the pulled-out state to the inserted state, the second target portion abuts against the third inner wall; During the process of the first functional part switching from the inserted state to the removed state, the second target portion abuts against the fourth inner wall.
7. The server according to any one of claims 1 to 4, characterized in that: The convex portion rotatably inserted into the first hole and rotatably matched with the bearing wall is defined as a first target portion, and a mounting hole is formed on the first target portion along the bearing direction; The server further includes a first mounting member, which is disposed on the bearing wall and penetrates the mounting hole via the first hole, and the first mounting member is rotatably connected to the first target portion via the mounting hole.
8. The server according to claim 7, characterized in that: The first mounting member is provided with a matching hole along the load-bearing direction; The server further includes a second mounting member, wherein the second mounting member includes a matching portion and a limiting portion connected to the matching portion; The matching portion can be detachably matched with the matching hole, and the limiting portion is used to limit the operating member at a side of the operating member away from the bearing wall.
9. The server according to any one of claims 1 to 4, characterized in that: The operating member is provided in plurality; the first hole and the second hole constitute a matching structure, and the matching structure is provided in plurality; All the operating members are arranged in one-to-one correspondence with all the matching structures.
10. The server according to claim 9, characterized in that At least two of the matching structures are arranged in mirror symmetry with respect to the first axis, and the extension direction of the first axis is parallel to the first direction; It is defined that two matching structures that are mirror-symmetrically arranged about the first axis are respectively a first target structure and a second target structure, the operating member that matches the first target structure is a first target member, and the operating member that matches the second target structure is a second target member; the two convex parts of the same operating member are respectively a first convex part and a second convex part; The first protrusion of the first target part can be rotatably inserted into the first hole of the first target structure, and the first protrusion of the first target part can be rotatably matched with the bearing wall; the second protrusion of the first target part can be rotatably inserted into the second hole of the first target structure; The second protrusion of the second target part can be rotatably inserted into the first hole of the second target structure, and the second protrusion of the second target part can be rotatably matched with the supporting wall; the first protrusion of the second target part can be rotatably inserted into the second hole of the second target structure.
11. The server according to claim 10, characterized in that: The two protrusions are both provided with mounting holes along the load-bearing direction; The server further comprises a plurality of first mounting members arranged on the bearing wall, all of the first mounting members are arranged in one-to-one correspondence with all of the operating members; the first mounting member corresponding to the first target member is a first target mounting member, and the second mounting member corresponding to the second target member is a second target mounting member; The first target mounting member is inserted into the mounting hole of the corresponding first convex portion via the corresponding first hole, and the first target mounting member is rotatably connected to the corresponding first convex portion by means of the corresponding mounting hole; The second target mounting member is inserted into the mounting hole of the corresponding second convex portion via the corresponding first hole, and the second target mounting member is rotatably connected to the corresponding second convex portion by means of the corresponding mounting hole.
12. The server according to any one of claims 1 to 4, characterized in that: The body comprises a first portion, a second portion and a step portion connecting the first portion and the second portion, the first portion is provided with two protrusions, and the second portion extends out of the chassis; and / or A first guiding structure is disposed on one of the bearing wall and the first functional part, and a second guiding structure is disposed on the other; the first guiding structure and the second guiding structure can cooperate with each other in guiding along the first direction; and / or A first stop structure is provided on one of the bearing wall and the first functional part, and a second stop structure is provided on the other; the first stop structure and the second stop structure are stop-matched along the first direction; in the inserted state, the first stop structure and the second stop structure are locked and matched along the bearing direction; In the pulled-out state, the first stop structure and the second stop structure are detachably matched along the load-bearing direction; and / or The operating member is configured as an integrally formed member; and / or The server further comprises a second functional component arranged on the bearing wall; in the inserted state, the first functional component and the second functional component are matched; in the pulled-out state, the first functional component and the second functional component are separated.