Power assisting structure, node device and server

By designing a power structure in the node device of the server, the leverage principle is used to reduce the strength required by the operator during the plug-in and unplugging process, the problem of difficulty in plug-in and unplugging the node device in the prior art is solved, and the convenience and stability of operation are improved.

CN119937740AActive Publication Date: 2025-05-06INSPUR SUZHOU INTELLIGENT TECH CO LTD
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Patent Information

Application Number
CN202510126153.9
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-01-27
Publication Date
2025-05-06
Estimated Expiration
2045-01-27

AI Technical Summary

Technical Problem

During the frequent plug-in and unplugging of node devices of existing servers, operators need to exert greater force, which leads to difficult and inconvenient operation.

Method used

A power assist structure is designed, including a handle base, a power assist assembly and a handle body. It is rotatably connected to the bend of the handle base and the power assist assembly, and the handle body is connected to one end of the power assist assembly. The lever principle is used to convert the rotational force into a driving force to achieve separation of the body.

Benefits of technology

Through the power-assist structure, the force required by the operator when plugging and unplugging the node is reduced, the operation strength and instability are reduced, and the operation convenience and stability are improved.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a power assisting structure, a node device and a server, and relates to the technical field of server equipment.The power assisting structure comprises a handle base, a power assisting assembly and a handle body; the handle base is installed on the outer side wall of the first main body, and the handle base is rotationally connected with the bent position of the power assisting assembly, that is, the handle base provides a rotating fulcrum for the power assisting assembly; the handle body is connected with one end of the power assisting assembly and located on one side of the bent position. The handle body is rotated to drive the power assisting assembly to rotate along the bent position, and after the power assisting assembly is located at the power assisting position, small rotating force is converted into large pushing force through rotating power assisting, and separation of the first main body and the second main body is achieved. The technical problem that the separation difficulty of the node device is large is solved, and the technical effects of assisting and saving labor are achieved.
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Description

Technical Field

[0001] The present application relates to the technical field of server equipment, and in particular to a power-assisting structure, a node device and a server. Background Art

[0002] A server usually includes a server chassis and multiple node devices, and the server chassis can accommodate these node devices. The node devices need to be frequently plugged in and out during the assembly, maintenance and management of the equipment. In order to improve the convenience and operability of the server, a structure for assisting the plugging and unplugging of the node devices is designed.

[0003] In the related art, these auxiliary structures usually include components such as operating handles or pull rings to help operators remove or install node devices from or into the chassis by pulling or pushing. However, when multiple node devices need to be separated or assembled frequently, these simple operating handles or pull ring designs usually cannot provide sufficient assistance, resulting in the operator needing to exert greater force, which increases the difficulty and inconvenience of the operation. Summary of the invention

[0004] The present application provides a power-assisting structure, a node device and a server, so as to at least solve the problem of difficulty in operation when the node device is separated in the related art.

[0005] The present application provides a power-assisting structure for assisting the separation of a first body and a second body of a server, comprising: a handle base, a power-assisting assembly and a handle body; wherein:

[0006] The handle base is installed on the outer side wall of the first main body, the power assist component is bent, and the handle base is rotatably connected to the bent portion of the power assist component, and the handle body is connected to one end of the power assist component and is located on one side of the bent portion;

[0007] The handle base is used to provide a rotation fulcrum for the power assist assembly and to support the power assist assembly when the power assist assembly enters the power assist position;

[0008] The power assist assembly is used to rotate along the bend and enter the power assist position when contacting the end surface of the handle base;

[0009] The handle body is used to drive the power assist component to rotate along the bend by rotating, and after the power assist component is in the power assist position, the first body is separated from the second body by rotating.

[0010] The present application also provides a node device, comprising: a node shell and the above-mentioned power-assisting structure;

[0011] A node housing, used to be detachably plugged into a chassis of a server;

[0012] The node housing is the first main body, and the chassis is the second main body.

[0013] The present application also provides a server, comprising: a chassis and the above-mentioned node device;

[0014] An opening is provided at one end of the chassis, and a first terminal is provided at the other end;

[0015] The node device further includes a second terminal, the second terminal is arranged at one end of the node shell, and the power-assisting structure is arranged near the other end of the node shell;

[0016] The node device is inserted into the chassis through the opening, and the first terminal and the second terminal are detachably plugged through the power-assisting structure.

[0017] Through this application, the handle base provides a rotation fulcrum for the power-assisting component and supports the power-assisting component when the power-assisting component enters the power-assisting position, and the handle body drives the power-assisting component to rotate by rotating. Through the principle of leverage, the smaller rotational force is converted into a larger driving force to achieve the separation of the first body and the second body. It can be seen that this application reduces the force that the operator needs to apply when plugging and unplugging nodes through a lever-like structure and mechanical optimization, reduces the high operating intensity common in traditional structures, and reduces the problem of unstable operation. The operator can complete the separation of the nodes under the action of a smaller force, which improves the convenience and stability of the operation. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] In order to more clearly illustrate the embodiments of the present application, the following is a brief introduction to the drawings required for use in the embodiments. Obviously, the drawings described below are only some embodiments of the present application. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.

[0019] Figure 1 A schematic diagram of a power-assisting structure provided in an embodiment of the present application from a first perspective;

[0020] Figure 2 A schematic diagram of the structure of the power-assisting structure provided in an embodiment of the present application when in the power-assisting position;

[0021] Figure 3 A schematic diagram of a power-assisting structure provided in an embodiment of the present application from a second viewing angle;

[0022] Figure 4 A schematic diagram of multiple states of the power assist structure provided in an embodiment of the present application;

[0023] Figure 5 A schematic diagram of the structure of a retractable shaft provided in an embodiment of the present application;

[0024] Figure 6 A schematic diagram of a first perspective of a node device provided in an embodiment of the present application;

[0025] Figure 7 A partially enlarged schematic diagram of a first perspective of a node device provided in an embodiment of the present application;

[0026] Figure 8 A partially enlarged schematic diagram of a node device from a third perspective provided in an embodiment of the present application;

[0027] Fig. 9 for Figure 8 A partial enlarged schematic diagram of B in the middle;

[0028] Fig.10 A partially enlarged schematic diagram of a second viewing angle of a node device provided in an embodiment of the present application;

[0029] Fig.11 for Fig.10 A is a partial enlarged schematic diagram of the middle part.

[0030] The above drawings include the following reference numerals:

[0031] 11-handle base; 111-connecting section; 112-supporting section; 113-connecting block; 1121-supporting surface;

[0032] 12- power assist assembly; 121- power assist section; 122- extension arm;

[0033] 13-handle body; 131-operating member; 132-connecting member; 1311-pull ring hole; 1312-label slot; 1313-sliding surface; 1314-clamping surface;

[0034] 14-rotating shaft; 141-rotating shaft main part; 142-spring; 143-rotating shaft auxiliary part;

[0035] 15-Handle hook. DETAILED DESCRIPTION

[0036] The following will be combined with the drawings in the embodiments of the present application to clearly and completely describe the technical solutions in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, not all of the embodiments. Based on the embodiments in the present application, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of this application.

[0037] It should be noted that 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" and the like indicate positions or positional relationships based on the positions or positional relationships shown in the drawings, and are only for the convenience of describing the present application and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be understood as limiting the present application. The terms "installed", "connected" and "connected" should be understood in a broad sense, for example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be a direct connection, or it can be indirectly connected through an intermediate medium, or it can be the internal communication of two elements. The terms "parallel", "perpendicular" and "equal" include the situations described and situations similar to the situations described, and the range of the similar situations is within the acceptable deviation range, where the acceptable deviation range is determined by a person of ordinary skill in the art taking into account the measurement being discussed and the errors associated with the measurement of a specific quantity (i.e., the limitations of the measurement system). For example, "parallel" includes absolute parallelism and approximate parallelism, wherein the acceptable deviation range of approximate parallelism can be, for example, a deviation within 5°; "perpendicular" includes absolute perpendicularity and approximate perpendicularity, wherein the acceptable deviation range of approximate perpendicularity can also be, for example, a deviation within 5°. "Equal" includes absolute equality and approximate equality, wherein the acceptable deviation range of approximate equality can be, for example, that the difference between the two equalities is less than or equal to 5% of either one. For those of ordinary skill in the art, the specific meanings of the above terms in this application can be understood according to specific circumstances.

[0038] In order to enable those skilled in the art to better understand the present application, the present application is further described in detail below in conjunction with the accompanying drawings and specific implementation methods.

[0039] A node usually refers to a module that is inserted into a chassis and contains electronic components such as a motherboard. Each node is connected to the board in the chassis through high-density terminals. These high-density terminals are used for a large number of plug-in connections to ensure the stable transmission of data and power, etc. However, as the terminal density increases, the connection between the node and the board becomes tighter and tighter. This plug-in combination of high-density terminals requires a greater force to be applied when inserting or unplugging the node. This not only makes the operator face a greater workload when performing plug-in and unplug operations, but also increases the inconvenience of operation and the possible risk of misoperation. To this end, the present application provides a power-assisting structure, a node device, and a server to reduce the force that the operator needs to apply during the node plug-in and unplugging process and improve the convenience of operation.

[0040] An embodiment of the present application provides a power-assisting structure, which is used to assist in separating a first body and a second body of a server. Figure 1 A schematic diagram of a power-assisting structure provided in an embodiment of the present application from a first perspective, Figure 3 This is a schematic diagram of a second viewing angle of the power-assisting structure provided in an embodiment of the present application. The structure and working principle of the power-assisting structure are described in detail. Figure 1 and Figure 3 As shown, the power-assisting structure includes a handle base 11, a power-assisting assembly 12 and a handle body 13. Specifically, the handle base 11 is mounted on the outer side wall of the first body, and its firmness and reliability are ensured by a stable connection method. The power-assisting assembly 12 is bent, and the handle base 11 is rotatably connected to the bend of the power-assisting assembly 12, so that the power-assisting assembly 12 can rotate around the bend. It can be seen that the function of the handle base 11 is to provide a rotation fulcrum for the power-assisting assembly 12, ensuring that it can work stably during operation, reducing the looseness or instability problems that may occur during operation. The bent setting not only optimizes the mechanical structure, but also makes the power-assisting assembly 12 easier to adjust during operation. Through the rotation of the bend, the power-assisting assembly 12 can enter and exit the power-assisting position as needed, increasing the flexibility of operation. Figure 2 The schematic diagram of the structure of the power assist structure provided in the embodiment of the present application when in the power assist position. The power assist assembly 12 rotates along the bend and enters the power assist position (i.e. Figure 2 At this time, the handle base 11 can be used to support the power assist assembly 12.

[0041] The handle body 13 is connected to one end of the power assist assembly 12 and is located on one side of the bend. This ensures that the handle body 13 can directly drive the rotation of the power assist assembly 12 during operation. That is, the handle body 13 is used to drive the power assist assembly 12 to rotate along the bend by rotating. Furthermore, after the power assist assembly 12 is in the power assist position, the first body is separated from the second body by rotating. Figure 4 Schematic diagram of multiple states of the power assist structure provided in the embodiment of the present application. Figure 4As shown, next, the dynamic form of the power-assisting structure during operation is explained. First, the operator only needs to rotate the handle body 13 to make the power-assisting assembly 12 enter the power-assisting position. Then, by rotating the handle body 13, the operator can use the support and power assistance provided by the power-assisting assembly 12 to separate the first body from the second body. This effectively reduces the physical force that the operator needs to apply when performing the separation operation, thereby improving the efficiency and comfort of the operation. On the whole, the bent power-assisting assembly 12 and the stable connection method not only improve the stability and convenience of the separation operation, but also effectively reduce the work intensity of the operator. The cooperation of the handle base 11, the power-assisting assembly 12 and the handle body 13 enables the entire power-assisting structure to remain efficient and stable during long-term use, ensuring long-term and reliable operation in high-frequency operations.

[0042] In the above embodiment, the handle body 13 drives the power assist assembly 12 to rotate along the bend by rotating. Through the principle of leverage, the smaller rotational force is converted into a larger driving force to achieve the separation of the first body and the second body. This not only improves the convenience of operation, but also enables the operator to complete the task more easily and reduces the work intensity. Through the power assist structure, the purpose of power assist and labor saving is achieved. In addition, the lever effect optimizes the transmission and distribution of force, making the operation more efficient and stable.

[0043] In one embodiment, a label slot 1312 is provided on the handle body 13, and the label slot 1312 is located at the front end of the first body. The label slot 1312 is provided to provide a convenient location for placing identification labels. These labels are used to identify the first body so that the operator can quickly identify different nodes or devices, thereby improving the efficiency of management and maintenance. The use of a groove facilitates the rapid insertion and removal of labels. Specifically, the label slot 1312 is located at the front end of the handle body 13. This is because the handle body 13 is usually located outside the device or equipment. When the operator performs operations such as plugging, unplugging, repairing, and inspecting the equipment, the operator can intuitively read the label content and quickly understand the relevant information of the equipment, thereby improving work efficiency and reducing erroneous operations caused by insufficient information or confusion. This not only optimizes the convenience of equipment management, but also improves the accuracy of the server maintenance process and the work efficiency of the operator. In addition, the label slot 1312 is set outside the server to optimize the space utilization inside the server. This enables the server to better meet the needs of high-density component layout and avoid waste of internal space. Furthermore, the size of the label slot 1312 is adapted to the common label size, and can accommodate information labels for identification, such as equipment numbers, maintenance records, or other identification information. For example, the shape of the label slot 1312 is usually rectangular or long, and edges or baffles are usually provided on both sides to prevent the label from sliding out of the slot during vibration or operation.

[0044] In one embodiment, the handle base 11 includes a connecting section 111 and a supporting section 112 connected in sequence, and the connecting section 111 and the supporting section 112 have different functions and structures, so as to support and fix the entire power-assisting assembly 12. Specifically, the connecting section 111 is connected to the outer side wall of the first main body, and a large connection area is set with the first main body, so that the entire handle base 11 can withstand a certain operating force during use without loosening or instability. The connection method of the connecting section 111 adopts a high-strength fixing device, such as a bolt or welding. Through this connection method, the entire handle base 11 forms a solid support platform, which provides stability for the normal operation of the power-assisting assembly 12. And effectively transmit the force applied during the operation. The end of the supporting section 112 is provided with two connecting blocks 113 extending in a direction away from the connecting section 111. The two connecting blocks 113 and the end surface of the supporting section 112 connected thereto form a U-shaped structure, and the two connecting blocks 113 are respectively connected to the two ends of the bend. The U-shaped structure has good anti-bending and anti-deformation capabilities when subjected to lateral forces, and can effectively withstand the pressure and reaction force applied during operation, providing a more stable support foundation for the power assist component 12.

[0045] In actual operation, the connecting block 113 provides a rotation fulcrum for the power-assisting assembly 12, and supports the power-assisting assembly 12 through the supporting section 112 when the power-assisting assembly 12 enters the power-assisting position. The supporting section 112 and the connecting block 113 ensure that the power-assisting assembly 12 can be fully supported when entering the power-assisting position, avoiding structural instability or displacement. The setting of the upper and lower connecting blocks 113 ensures the smoothness and stability of the power-assisting assembly 12 during operation, and reduces possible jamming or uneven rotation. In summary, the structure of the entire handle base 11 not only enhances the overall stability, but also provides good mechanical support. This ensures the efficiency and durability of the entire power-assisting structure in long-term use, makes the plugging and unplugging operations of the nodes smoother, and the operator can complete the separation task with less force, reducing the intensity of operation.

[0046] Further, in a specific embodiment, a support surface 1121 is provided on the support section 112, and the support surface 1121 is located on the end surface away from the first body and is inclined in the direction of the connecting block 113 to ensure that when the power-assisting component 12 rotates and enters the power-assisting position, it can stably contact the support surface 1121, thereby providing sufficient supporting force. The inclined setting of the support surface 1121 can effectively disperse the pressure applied to the support surface 1121 by the power-assisting component 12 during the rotation process, avoid excessive wear or uneven force in local areas, thereby improving the stability and durability of the overall system. Through this inclination angle, the support surface 1121 can provide appropriate support according to the rotation trajectory of the power-assisting component 12. In the process of entering the power-assisting position, the support surface 1121 not only plays a supporting role, but also can stabilize the position of the power-assisting component 12, prevent it from shaking or uneven mechanical action during the rotation process, and ensure the smoothness and stability of the operation. In actual operation, when the power-assisting component 12 enters the power-assisting position by rotating, the support surface 1121 will contact the power-assisting component 12 to ensure that the power-assisting component 12 is firmly in place. In addition, the combination of the support surface 1121 and the inclined setting makes the entire resistance structure more compact, and can provide more efficient support in a limited space, ensuring that operators can convert a smaller rotational force into a larger driving force when plugging and unplugging nodes, while achieving the separation of the first body and the second body, and improving the convenience and comfort of operation. Overall, the support surface 1121 enhances the overall stability and durability of the power-assisting structure, not only optimizing the structural mechanical properties, but also improving the reliability in long-term high-frequency operations.

[0047] In a specific embodiment, the handle body 13 includes an operating member 131 provided with a pull ring hole 1311; and the operating member 131 is arranged at the front end of the first body to facilitate the operator to operate during the use or maintenance of the equipment. The pull ring hole 1311 is a rectangle with rounded corners and is arranged near one end of the long axis of the operating member 131. This allows the operator to conveniently grasp and rotate through this position, while reducing false touches. The shape and position of the pull ring hole 1311 take into account the comfort and convenience of operation, reducing fatigue during operation. In addition, the structure of the pull ring hole 1311 can also effectively reduce the damage or jamming of the label caused by external force. A connecting member 132 extending vertically outward is provided at the top of the other end of the long axis of the operating member 131, and a cavity extending into the inside thereof is provided at the side end of the connecting member 132. The power assist assembly 12 includes a power assist section 121, and the end of the power assist section 121 extends into the cavity to form an extension arm 122, and the extension arm 122 is connected to the connecting member 132. It can be seen that the connection between the extension arm 122 and the connecting member 132 provides a connecting bridge between the power-assisting section 121 and the operating member 131. The setting of the connecting member 132 ensures a stable connection with the power-assisting assembly 12, so that the operating member 131 and the power-assisting assembly 12 can achieve a smooth rotation connection. The setting of the cavity further enhances the cooperation between the connecting member 132 and the power-assisting section 121, so that the connecting member 132 can be firmly connected to the extension arm 122 of the power-assisting section 121, reducing looseness or deviation during operation. The rotation of the operating member 131 can effectively drive the rotation of the power-assisting section 121. The power-assisting section 121 and the extension arm 122 are vertically bent, and the side wall of the power-assisting section 121 is in contact with the support surface 1121, and the side wall of the power-assisting section 121 is located on the convex side of the power-assisting assembly 12. This ensures that the power-assisting assembly 12 can stably cooperate with the support surface 1121 during operation, provide the necessary support force, and reduce the unstable factors caused by improper operation. The other end of the assisting section 121 is in an arc shape, which is not only beautiful, but also can effectively cooperate with the support surface 1121 and reduce the loss caused by friction. The handle body 13 and the assisting assembly 12 are both made of an integrally formed zinc alloy. The selection of zinc alloy material improves the strength and durability of the components, while reducing the weight of the entire assembly, making it easier to operate. Zinc alloy has good corrosion resistance and can be used for a long time in different environments without oxidation or corrosion, ensuring stable performance during high-frequency operations.

[0048] In actual operation, through the pull ring hole 1311, the operator can control the operating member 131 to rotate around the bend as the axis, and drive the extension arm 122 and the assisting section 121 to rotate along the bend through the connecting member 132. During this process, the side wall of the assisting section 121 contacts the support surface 1121 to ensure that the assisting assembly 12 enters the assisting position firmly and provides support force. After the assisting assembly 12 enters the assisting position, the operator can easily complete the separation operation of the first body and the second body by rotating the handle body 13 and relying on the support of the assisting assembly 12. When rotating the assisting assembly 12, the force transmitted through the mechanical support reduces the burden on the operator, making the separation process not only efficient but also more stable. And, after the assisting assembly 12 enters the assisting position, the operator pushes the first assisting body to plug in the second body. Overall, through the mutual cooperation of the handle body 13, the assisting assembly 12 and the connecting member 132, the plugging and unplugging efficiency of the server node device is improved, and the occurrence of human errors during operation is reduced.

[0049] In one embodiment, a rotating shaft 14 is also included. The rotating shaft 14 passes through the bend of the power-assisting assembly 12 and plays the role of a bearing support, so that the power-assisting assembly 12 can rotate around the rotating shaft 14. It is ensured that the power-assisting assembly 12 can maintain a stable rotation path without deviation or jamming, thereby improving the stability and reliability of operation. The two ends of the rotating shaft 14 are respectively connected to two connecting blocks 113, and the handle base 11 is rotatably connected to the power-assisting assembly 12 through the rotating shaft 14. The rotating shaft 14 drives the power-assisting assembly 12 to rotate along the bend through the rotation of its central axis, thereby realizing the separation operation of the first body and the second body. Specifically, the rotating shaft 14 passes through the connecting block 113, the damping pad, the bend, another damping pad and another connecting block 113 from the outside to the inside. The damping pads are arranged at both ends of the rotating shaft 14, mainly to reduce the friction and vibration of the rotating shaft 14 during the rotation process, and ensure that the rotation of the power-assisting assembly 12 is stable and not easily disturbed by external forces. The damping pad is made of highly elastic material, and its good shock absorption effect can effectively reduce the impact force generated during rotation, and extend the service life of the shaft 14 and other components. Overall, the shaft 14 can not only achieve a stable connection between the handle base 11 and the power assist assembly 12, but also provide the required support force and support stability during the rotation process, ensuring that the entire power assist structure operates efficiently and smoothly during operation.

[0050] Figure 5 This is a schematic diagram of the structure of the retractable shaft 14 provided in the embodiment of the present application. Figure 5As shown, in a specific embodiment, the rotating shaft 14 is a retractable rotating shaft 14, specifically including a rotating shaft main part 141, a spring 142 and a rotating shaft auxiliary part 142. The rotating shaft main part 141 is slidably sleeved on the outer side of the rotating shaft auxiliary part 142. The sliding connection between the rotating shaft main part 141 and the rotating shaft auxiliary part 142 enables the rotating shaft auxiliary part 142 to achieve a certain telescopic movement relative to the rotating shaft main part 141 during operation. This enables the rotating shaft 14 to freely retract and retract during operation as required, and there is a certain gap between the outer side of the rotating shaft main part 141 and the inner side of the rotating shaft auxiliary part 142, ensuring that it can slide smoothly during movement without jamming or uneven friction. The spring 142 is arranged inside the rotating shaft main part 141, one end of which is connected to the inner bottom surface of the rotating shaft main part 141, and the other end is connected to one end of the rotating shaft auxiliary part 142, and the spring 142 is in a compressed state. The function of the spring 142 is to provide elastic support for the shaft 14. When the shaft main component 141 and the shaft auxiliary component 142 move relative to each other, the spring 142 can effectively absorb a part of the operating force and provide a reset force when the shaft 14 is extended or retracted. This ensures that the shaft 14 has sufficient resilience during operation, ensuring the flexibility and durability of the shaft 14. The end of the shaft auxiliary component 142 away from the spring 141 is hemispherical, and through holes are provided on the connecting blocks 113. One end of the shaft main component 141 is inserted into the through hole of one connecting block 113, and the hemispherical end of the shaft auxiliary component 142 is inserted into the through hole of another connecting block 113. The hemispherical end not only helps the cooperation between the shaft auxiliary component 142 and the connecting block 113, but also reduces friction during operation to ensure the smoothness of rotation. The provision of the through hole ensures a stable connection between the main shaft component 141 and the auxiliary shaft component 142 and the connecting block 113, so that the shaft 14 can maintain stable rotation and extension during operation, reducing poor operation caused by loose structure or unstable connection.

[0051] The power assist assembly 12 is detachably connected to the handle base 11 through the retractable shaft 14. In actual operation, when installing the retractable shaft 14, the operator first presses the shaft sub-component 142. When pressed, the shaft sub-component 142 will slide inward and enter the interior of the shaft main component 141. At this time, one end of the shaft main component 141 is placed into the through hole of the first connecting block 113 to ensure that the shaft main component 141 and the connecting block 113 are stably connected. The operator continues to press the shaft sub-component 142 to move it closer to the axis direction of the two connecting blocks 113. When the shaft sub-component 142 contacts the second connecting block 113, the operator releases the pressing. At this time, the side wall of the second connecting block 113 will continue to apply pressure to the shaft sub-component 142, and the shaft sub-component 142 is still in a retracted state at this time. At this time, the operator pushes the retractable shaft 14 so that one end of the shaft sub-component 142 is close to the through hole of the second connecting block 113. When the shaft-rotating sub-component is directly below the through hole, the shaft-rotating sub-component 142 is released. At this time, the shaft-rotating sub-component 142 is ejected by the action of the spring 142 and enters the through hole of the second connecting block 113, thus realizing the telescopic operation of the shaft-rotating sub-component 142. The installation of the telescopic shaft 14 is completed.

[0052] It should be further explained that the handle base 11 is also made of an integrally formed zinc alloy material. The zinc alloy has high mechanical strength and hardness and can withstand the force applied during long-term use and the stress of repeated operations.

[0053] On the other hand, an embodiment of the present application further provides a node device, Figure 6 A schematic diagram of a first perspective of a node device provided in an embodiment of the present application; Figure 7 This is a partially enlarged schematic diagram of a first perspective of a node device provided in an embodiment of the present application. Figure 6 and Figure 7 As shown, the node device includes a node housing and a power-assisting structure, wherein the node housing is used to be detachably plugged into a chassis of a server.

[0054] In this embodiment, the node housing is used to carry and fix various internal components. The node housing is removably plugged into the chassis so that it can be easily disassembled and installed during the assembly, maintenance and upgrade of the server. The node housing cooperates with the chassis so that the node device can be embedded in the chassis to ensure stable operation during the operation of the server.

[0055] Corresponding to the above embodiment, the node shell is the first body and the chassis of the server is the second body. The server chassis is responsible for accommodating multiple node devices and providing basic support such as power supply, data transmission and cooling for these nodes to ensure the stable operation of the node devices. The node shell is docked with the accessories and connection interfaces inside the server chassis by plugging, so as to achieve effective coordination and collaborative work of various internal components. Through the power-assisting structure, the separation and combination of the node shell and the server chassis can be made very simple. The operator can easily insert the node shell into the chassis for quick installation and disassembly without the need for complex tools. Overall, the node device improves the convenience of server management and operation and maintenance, and enhances the overall flexibility and scalability through modular settings, plug-in structures and stable connection methods.

[0056] In one embodiment, the node device further includes at least one handle hook 15. A plurality of spacers are provided inside the node shell, and a plurality of spacers are provided inside the node shell. The function of the spacers is to reasonably divide the internal space, ensure the appropriate distance between the various components, and provide support and fixing. The hook end of the handle hook 15 is detachably connected to the handle body 13, and the other end thereof is mounted on the spacer. The spacer provides a fixed support for the handle hook 15, so that the hook always remains stable during operation, thereby effectively preventing the hook from being unstable during operation. In this way, the hook can firmly fix the handle body 13 and ensure that it will not accidentally loosen when no operation is required. In this embodiment, the handle hook 15 enables the operator to fix and unlock the handle body 13 more conveniently. The handle hook 15 realizes the limited fixing of the handle body 13 by connecting with the handle body 13, and realizes the unlocking and releasing of the handle body 13 by separating from the handle body 13. Through this connection method, the handle hook 15 ensures that the handle body 13 remains stable when not in operation, avoiding accidental loosening or displacement during transportation or vibration. Furthermore, the handle hook 15 is in the form of a thin sheet, and its side wall is arranged in a close contact with the side wall of the partition plate, which ensures the fixation of the handle body 13 while reducing the occupation of the internal space of the node device. In addition, the bottom surface of the handle hook 15 in contact with the node shell is provided with a groove that is in contact with the inner side wall of the node shell. This makes the contact between the handle hook 15 and the node shell more firm, and increases the stability of the installation of the handle hook 15.

[0057] In a specific embodiment, a hook hole is provided on the handle body 13, and the hook hole is located at the front end of the node shell. The position of the hook hole allows the operator to easily access it during operation, especially during maintenance or management, which facilitates quick identification and operation. The hook end of the handle hook 15 is in a barb shape and is detachably connected to the hook hole. This barb shape provides stronger connection stability, ensuring that the handle body 13 will not accidentally fall off during operation. The handle hook 15 can be easily connected to the handle body 13 and fix the handle body 13 to the front end of the node shell.

[0058] Figure 8 A partially enlarged schematic diagram of a node device from a third perspective provided in an embodiment of the present application; Fig. 9 for Figure 8 FIG. 1 is a partial enlarged schematic diagram of B in FIG. Based on the above embodiment, Figure 8 and Fig. 9 As shown, the top of the handle body 13 is provided with a sliding surface 1313 inclined toward the handle hook 15, and the sliding surface 1313 is located within the range formed by the edge of the hook hole and the edge of the handle body 13, and is arranged close to the handle hook 15. The sliding surface 1313 is arranged at an inclined angle so that the handle hook 15 can cooperate with the hook hole more smoothly. When the operator brings the handle hook 15 close to the hook hole, the inclined angle of the sliding surface 1313 can guide the hook end to engage with the hook hole smoothly, avoiding stagnation or unsmooth operation caused by inappropriate angles, thereby improving the convenience and stability of the entire operation process and reducing the resistance or uncoordinated phenomenon that may be encountered during operation. Further, the side wall of the handle hook 15 in contact with the sliding surface 1313 is a smooth inclined surface, which makes the contact between the handle hook 15 and the sliding surface 1313 smoother, reduces friction, and optimizes the smoothness during operation, ensuring good cooperation between the handle hook 15 and the sliding surface 1313.

[0059] Fig.10 A partially enlarged schematic diagram of a second viewing angle of a node device provided in an embodiment of the present application; Fig.11 for Fig.10 FIG. 1 is a partial enlarged schematic diagram of A in FIG. Based on the above embodiment, Fig.10 and Fig.11As shown, the bottom of the handle body 13 is provided with a clamping surface 1314 that is recessed toward the top, and the clamping surface 1314 is arranged along the edge of the hook hole, and the clamping surface 1314 is arranged in contact with the inner arc surface of the hook end. The bottom of the handle body 13 is provided with a clamping surface 1314 that is recessed toward the top, and the clamping surface 1314 is arranged along the edge of the hook hole. The clamping surface 1314 can form a close contact when the handle body 13 is connected to the handle hook 15. The clamping surface 1314 is arranged in contact with the inner arc surface of the hook end to ensure the firmness and reliability of the connection. This clamping not only increases the stability of the connection, but also effectively prevents loosening caused by vibration or external force. In short, the thickness formed by the clamping surface 1314 and the top surface of the handle body 13 is less than the thickness formed by the non-clamping surface 1314 and the top surface of the handle body 13, which enables the handle hook 15 to be more quickly and firmly clamped with the handle body 13.

[0060] In actual operation, the handle body 13 is pushed toward the node shell, at which time the sliding surface 1313 contacts the handle hook 15, and the push is continued to guide the handle hook 15 to connect with the hook hole through the sliding surface 1313. At this time, the handle hook 15 contacts the clamping surface 1314 to achieve the limit fixation of the handle body 13. When it is necessary to unlock the handle body 13, the handle body 13 is continued to be pushed toward the inside of the node shell until the handle body 13 is separated from the handle hook 15. At this time, the handle body 13 is pushed downward so that the handle body and the handle hook 15 are no longer in the same plane. At this time, the handle body 13 is released to unlock and release the handle body 13. In summary, the handle hook 15 not only ensures the safety of the resistance assembly in use, but also provides a convenient operating experience, thereby improving the maintainability and flexibility of the node device. In an optional implementation, the hook hole and the pull ring hole 1311 are combined into one, that is, a sliding surface 1313 and a clamping surface 1314 are provided at the edge of the pull ring hole 1311 to realize the function of the hook hole.

[0061] The embodiment of the present application also provides a server, including a chassis and a node device. An opening is provided at one end of the chassis, and the opening enables the node device to be easily inserted or removed, thereby facilitating the installation, maintenance and upgrade of the equipment. A first terminal is provided at the other end of the server chassis, and the first terminal is usually used to connect a power supply or a data transmission line. The node device usually carries hardware that performs calculations, storage or other specific tasks. The node device also includes a second terminal, which is arranged at one end of the node housing and corresponds to the first terminal in the chassis. The node device can be connected and disconnected with the power supply and data interface inside the chassis by plugging and unplugging. The power-assisting structure is arranged near the other end of the node housing. The power-assisting structure ensures that the plugging and unplugging process of the node device is simpler and reduces the force required by the operator when plugging and unplugging the node. The power-assisting structure usually provides additional support through the principle of leverage, so that the node device can be unplugged from the chassis more smoothly, especially in occasions where frequent plugging and unplugging operations are required. The power-assisting structure not only improves the efficiency of the operation, but also ensures that the hardware is not easily damaged during the plugging and unplugging process. The node device is inserted into the chassis through the opening, and the first terminal and the second terminal are removably plugged through the power-assisting structure. This not only provides a convenient way to install and remove node devices, but also optimizes the operating experience through the power-assist structure, making the plugging and unplugging of nodes easier and more efficient. Through modular settings, the server can operate efficiently during installation, maintenance and upgrades, ensuring the long-term stability and maintainability of the equipment.

[0062] The above is a detailed introduction to a power-assisting structure, a node device and a server provided by the present application. Specific examples are used herein to illustrate the principles and implementation methods of the present application. The description of the above embodiments is only used to help understand the method of the present application and its core idea. It should be pointed out that for ordinary technicians in this technical field, without departing from the principles of the present application, several improvements and modifications can be made to the present application, and these improvements and modifications also fall within the scope of protection of the claims of the present application.

Claims

1. A power-assisting structure, characterized in that: The device is used for assisting the separation of the first body and the second body of a server, comprising: a handle base (11), an assisting assembly (12) and a handle body (13); wherein: The handle base (11) is mounted on the outer side wall of the first main body, the power assist component (12) is bent, and the handle base (11) is rotatably connected to the bent portion of the power assist component (12), and the handle body (13) is connected to one end of the power assist component (12) and is located on one side of the bent portion; The handle base (11) is used to provide a rotation fulcrum for the power-assisting component (12), and to support the power-assisting component (12) when the power-assisting component (12) enters the power-assisting position; The power assist component (12) is used to rotate along the bend and enter the power assist position when contacting the end surface of the handle base (11); The handle body is used to drive the power-assisting component (12) to rotate along the bend by rotating, and after the power-assisting component (12) is in the power-assisting position, the first body and the second body are separated by rotating to assist.

2. The power-assisting structure according to claim 1, characterized in that: The handle body (13) is provided with a label slot (1312), and the label slot (1312) is located at the front end of the first body; The handle body (13) is also specifically used for: A label for identifying the first body is placed through the label slot (1312).

3. The power-assisting structure according to claim 1, characterized in that: The handle base (11) comprises a connecting section (111) and a supporting section (112) which are connected in sequence; The connecting section (111) is connected to the outer side wall of the first main body, and the end of the supporting section (112) is provided with two connecting blocks (113) extending in a direction away from the connecting section (111), and the two connecting blocks (113) and the end surface of the supporting section (112) connected thereto form a U-shaped structure, and the two connecting blocks (113) are respectively rotatably connected to the two ends of the bending part; The handle base (11) is specifically used for: The connecting block (113) provides a rotation fulcrum for the power-assisting component (12), and the supporting section (112) supports the power-assisting component (12) when the power-assisting component (12) enters the power-assisting position.

4. The power-assisting structure according to claim 3, characterized in that: The support section (112) is provided with a support surface (1121); The supporting surface (1121) is located on an end surface away from the first main body, and is inclined towards the connecting block (113); The handle base (11) is specifically used for: The support surface (1121) supports the power-assisting component (12) when the power-assisting component (12) enters the power-assisting position.

5. The power-assisting structure according to claim 4, characterized in that: The handle body (13) comprises an operating member (131) provided with a pull ring hole (1311); and the operating member (131) is arranged at the front end of the first body; The pull ring hole (1311) is a rectangle with rounded corners and is arranged close to one end of the long axis of the operating member (131); A connecting piece (132) extending vertically outward is provided at the top of the other end in the long axis direction of the operating piece (131), and a cavity extending toward the inside is provided at the side end of the connecting piece (132); The power-assisting assembly (12) comprises a power-assisting section (121), the end of the power-assisting section (121) extending toward the interior of the cavity to form an extension arm (122), and the extension arm (122) is connected to the connecting piece (132); The assisting section (121) and the extension arm (122) are in a vertically bent shape, the side wall of the assisting section (121) is in contact with the support surface (1121), and the side wall of the assisting section (121) is located on the convex side of the assisting component (12); The other end of the assisting section (121) is in an arc shape; The handle body (13) and the power-assisting component (12) are both made of an integrally formed zinc alloy; The handle body (13) is specifically used for: The operating member (131) is controlled to rotate about the bending part as an axis through the pull ring hole (1311), and the extension arm (122) and the assisting section (121) are driven to rotate along the bending part through the connecting member (132), so that the side wall of the assisting section (121) contacts the supporting surface (1121), so as to complete the assisting assembly (12) entering the assisting position; After the power assist component (12) enters the power assist position, the first body and the second body are separated by rotation assisting; The handle body (13) is also specifically used for: After the power assist component (12) enters the power assist position, the first body is plugged into the second body by pushing the power assist component (12).

6. The power-assisting structure according to claim 3, characterized in that: Also includes a rotating shaft (14); The rotating shaft (14) passes through the bend of the power-assisting component, and its two ends are respectively connected to the two connecting blocks (113); the handle base (11) is rotatably connected to the power-assisting component (12) via the rotating shaft (14).

7. A node device, characterized in that: include: A node shell and a power-assisting structure as claimed in any one of claims 1 to 6; The node housing is used to be detachably plugged into a chassis of a server; The node housing is the first body, and the chassis is the second body.

8. The node device according to claim 7, characterized in that: Also includes at least one handle hook (15); A plurality of partition plates are provided inside the node shell, a hook end of the handle hook (15) is detachably connected to the handle body (13), and the other end thereof is mounted on the partition plate; The handle hook (15) is used to achieve position fixing of the handle body (13) by being connected to the handle body (13), and to achieve unlocking and releasing of the handle body (13) by being separated from the handle body (13).

9. The node device according to claim 8, characterized in that: The handle body (13) is provided with a hook hole, and the hook hole is located at the front end of the node shell; The hook end of the handle hook (15) is in the shape of a barb and is detachably connected to the hook hole; A sliding surface (1313) inclined toward the handle hook (15) is provided at the top of the handle body (13); the sliding surface (1313) is located within a range enclosed by the edge of the hook hole and the edge of the handle body (13), and is disposed close to the handle hook (15); The bottom of the handle body (13) is provided with a clamping surface (1314) which is recessed toward the top, the clamping surface (1314) is arranged along the edge of the hook hole, and the clamping surface (1314) is arranged in contact with the inner arc surface of the hook end; The handle body (13) is also used for: The sliding surface (1313) is used to guide the handle hook (15) to be detachably connected to the hook hole; The handle hook (15) is specifically used for: By contacting the clamping surface (1314), the handle body (13) is fixed in position, and by separating from the clamping surface (1314), the handle body (13) is unlocked and released.

10. A server, characterized in that: include: A chassis and a node device as claimed in any one of claims 7 to 9; One end of the chassis is provided with an opening, and the other end is provided with a first terminal; The node device further includes a second terminal, the second terminal is arranged at one end of the node housing, and the power-assisting structure is arranged close to the other end of the node housing; The node device is inserted into the chassis through the opening, and the first terminal and the second terminal are detachably plugged through the power-assisting structure.

Citation Information

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