An over-converged architecture cluster server
Patent Information
- Application Number
- CN202521386560.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-03
- Publication Date
- 2026-09-15
- Estimated Expiration
- 2035-07-03
AI Technical Summary
[0006]本实用新型提供了一种超融合架构集群服务器,解决了现有技术中存在由于服务器在使用过程中,处于封闭的箱体内进行工作,而经过隔绝后的服务器会影响网络信号的质量,并且会增加通信的延迟性,使得服务器使用的稳定性较差缺点
[0017]In this application, during use, the two rotating frames are first opened by rotating the shaft to provide sufficient operating space for the operator to operate the server body. Then, the through holes on the ear plates on both sides of the server body are aligned with the screws, and the nuts are tightened on the screws to install the server body on the moving frame. The distance between the server body and the mounting plate is maintained by the support column, which helps to achieve air circulation and heat dissipation at the bottom of the server body. When disassembling, simply unscrew the nuts to remove the server body from the moving frame, achieving a fusion installation effect and improving convenience. Next, the rotating frames are rotated back to their original position and closed. The hooks are then attached to the hanging rods to lock and fix the rotating frames, preventing shaking and ensuring stable operation of the fan later. When the server is not in operation, the server body inside the enclosure is in a safety protection mode. At this time, the sealing plates in the inner sliding grooves at both ends of the enclosure are in the closed position. Through sliding cooperation, the internal space of the enclosure is completely sealed, effectively preventing dust, debris and other external factors from entering the enclosure and providing good protection for the server body.
Smart Images

Figure CN224760488U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of server technology, and in particular to a hyperconverged architecture cluster server. Background Technology
[0002] A server, also known as a servo server, is a device that provides computing services. Generally, a server should have the ability to undertake and guarantee services. Servers are usually divided into file servers (which enable users to access files on other computers), database servers, application servers, web servers, etc.
[0003] A search revealed that patent CN218567952U proposes a hyperconverged architecture cluster server. This technical solution has the following problems:
[0004] Currently, servers operate within enclosed enclosures, which can negatively impact network signal quality and increase communication latency, resulting in poor server stability.
[0005] To address the aforementioned issues, this utility model proposes a hyperconverged architecture cluster server. Utility Model Content
[0006] This invention provides a hyperconverged architecture cluster server, which solves the shortcomings of existing technologies where servers operate in a closed enclosure, which can affect network signal quality and increase communication latency, resulting in poor server stability.
[0007] This utility model provides the following technical solution:
[0008] A hyperconverged infrastructure cluster server includes:
[0009] The enclosure contains multiple server bodies. Slide grooves are provided on the inner sides of both ends of the enclosure. A sealing plate is slidably connected inside each slide groove to achieve a closed and protective effect when the server body is not in operation.
[0010] The extension mechanism is located inside the enclosure and is used to extend the server body out of the enclosure to perform its functions.
[0011] In one possible design, the extension mechanism includes a support plate, a motor, a main gear, a secondary gear, a double-acting lead screw, a fixed plate, and a movable frame. The two fixed plates are welded between the inner walls of the two sides of the housing. The double-acting lead screw is rotatably connected between the two fixed plates via a rotating shaft. The two movable frames are threaded to the outer wall of the double-acting lead screw and are slidably connected to the inside of the housing.
[0012] In one possible design, the support plate is welded to one side of the inner wall of the housing, the motor is fixedly installed on the top of the support plate, the output end of the motor is fixed to one side of the main gear through a coupling, the auxiliary gear is fixedly installed on the middle outer wall of the double-acting screw, and the auxiliary gear meshes with the main gear.
[0013] In one possible design, multiple mounting plates are welded to one side of each of the movable frames, and support columns are symmetrically welded to one side of each of the mounting plates. A screw is welded to one end of each support column. Ear plates are welded to both sides of each server body. Each ear plate has a through hole for the screw to pass through. A nut is threaded onto the outer wall of the screw to lock and fix the server body.
[0014] In one possible design, both sides of the enclosure are hinged to rotating frames to facilitate the installation or removal of the server body. Each rotating frame has two mounting slots on one side, and a fan is fixedly installed on the inner wall of each mounting slot to dissipate heat and blow dust off the extended server body.
[0015] In one possible design, each of the rotating frames has hooks rotatably connected to both sides via a pivot, and two hanging rods are welded to both sides of the housing for hooking and engaging, so as to lock and fix the rotating frame when it is closed.
[0016] In one possible design, a maintenance door is rotatably connected to one side of the enclosure via a hinge, and an observation window is provided on one side of the maintenance door.
[0017] In this application, during use, the two rotating frames are first opened by rotating the shaft to provide sufficient operating space for the operator to operate the server body. Then, the through holes on the ear plates on both sides of the server body are aligned with the screws, and the nuts are tightened on the screws to install the server body on the moving frame. The distance between the server body and the mounting plate is maintained by the support column, which helps to achieve air circulation and heat dissipation at the bottom of the server body. When disassembling, simply unscrew the nuts to remove the server body from the moving frame, achieving a fusion installation effect and improving convenience. Next, the rotating frames are rotated back to their original position and closed. The hooks are then attached to the hanging rods to lock and fix the rotating frames, preventing shaking and ensuring stable operation of the fan later. When the server is not in operation, the server body inside the enclosure is in a safety protection mode. At this time, the sealing plates in the inner sliding grooves at both ends of the enclosure are in the closed position. Through sliding cooperation, the internal space of the enclosure is completely sealed, effectively preventing dust, debris and other external factors from entering the enclosure and providing good protection for the server body.
[0018] When the server is needed, the motor on the support plate is started. The motor's output drives the main gear to rotate via a coupling. Since the secondary gear meshes with the main gear, the rotation of the main gear drives the secondary gear to rotate, which in turn drives the bidirectional lead screw to rotate between the two fixed plates. The two moving frames are threaded onto the positive and negative thread sections of the bidirectional lead screw, and the moving frames are slidably connected to the inside of the housing. As the bidirectional lead screw rotates, according to the principle of thread transmission, the two moving frames can make opposite linear movements on the bidirectional lead screw, gradually extending towards both ends of the housing. This facilitates the extension and retraction of the server body, allowing it to extend outside the housing and operate stably. This avoids operating within a closed housing, which could affect network signal quality and increase communication latency. Once the server body extends outside the housing, the fan is started. The fan generates airflow to dissipate heat from the extended server body, reducing its operating temperature. Simultaneously, the airflow also blows away dust from the server body's surface, improving its usability.
[0019] In this utility model, the hyperconverged architecture cluster server, through the extension mechanism, can drive the moving frame to make opposite linear movements on the bidirectional lead screw, gradually extending to both ends of the box, which facilitates the purpose of extension and retraction, thereby helping to extend the server body to the outside of the box and to operate stably.
[0020] In this utility model, the hyperconverged architecture cluster server, through the setting of a rotating frame, mounting slot, fan, hook and hanging rod structure, can provide operators with sufficient operating space, making it easy to operate the server body, and can dissipate heat from the extended server body. At the same time, the airflow can also blow away the dust on the surface of the server body, playing a dust removal role and improving applicability.
[0021] In this invention, the movable frame can be gradually extended to both ends of the housing, facilitating the extension and retraction of the frame. This allows the server body to extend to the outside of the housing and operate stably, avoiding operation within a closed housing and thus preventing impact on network signal quality and increased communication latency. Attached Figure Description
[0022] Figure 1 This is a schematic diagram of the front view structure of a hyperconverged architecture cluster server provided in an embodiment of the present utility model;
[0023] Figure 2 This is a schematic diagram of the open state structure of the rotating frame of a hyperconverged architecture cluster server provided in an embodiment of the present utility model;
[0024] Figure 3 A cross-sectional view of the enclosure structure of a hyperconverged architecture cluster server provided in an embodiment of this utility model;
[0025] Figure 4 This is a schematic diagram of the split state structure of a hyperconverged architecture cluster server provided in an embodiment of the present invention.
[0026] Figure label:
[0027] 1. Cabinet; 2. Support plate; 3. Motor; 4. Main gear; 5. Secondary gear; 6. Double-acting lead screw; 7. Fixing plate; 8. Server body; 9. Moving frame; 10. Mounting plate; 11. Support column; 12. Screw; 13. Ear plate; 14. Nut; 15. Rotating frame; 16. Mounting slot; 17. Fan; 18. Hook; 19. Hanging rod; 20. Slide groove; 21. Sealing plate. Detailed Implementation
[0028] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments.
[0029] Example 1
[0030] The existing server problem is that servers operate in a closed enclosure, which can affect network signal quality and increase communication latency, resulting in poor server stability. To address this issue, this solution was designed to improve server performance.
[0031] Please refer to Figures 1-4 A server, comprising:
[0032] The enclosure 1 contains multiple server bodies 8. Both ends of the enclosure 1 have inner grooves 20, and each groove 20 has a slidably connected sealing plate 21 inside. This is used to achieve a sealing and protective effect when the server body 8 is not in operation. When the sealing plate 21 in the inner grooves 20 at both ends of the enclosure 1 is in the closed position, the internal space of the enclosure 1 is completely sealed through sliding cooperation, effectively preventing external factors such as dust and debris from entering the enclosure 1 and providing good protection for the server body 8.
[0033] The extension mechanism, located inside the housing 1, is used to extend the server body 8 outside the housing 1 for operation. The extension mechanism includes a support plate 2, a motor 3, a main gear 4, a secondary gear 5, a double-acting lead screw 6, fixed plates 7, and moving frames 9. The two fixed plates 7 are welded to the inner walls of both sides of the housing 1. The double-acting lead screw 6 is rotatably connected between the two fixed plates 7 via a rotating shaft. The two moving frames 9 are threaded to the outer wall of the double-acting lead screw 6 and slidably connected inside the housing 1. Each moving frame 9 is threaded onto the positive and negative thread sections of the double-acting lead screw 6, and slidably connected to the inside of the housing 1. As the double-acting lead screw 6 rotates, according to the thread transmission principle, the two moving frames 9 can move in opposite directions on the double-acting lead screw 6, gradually extending towards both ends of the housing 1, facilitating extension and retraction. This helps to extend the server body 8 outside the housing 1 and ensure stable operation.
[0034] Support plate 2 is welded to one side of the inner wall of housing 1. Motor 3 is fixedly installed on the top of support plate 2. The output end of motor 3 is fixed to one side of main gear 4 through a coupling. Secondary gear 5 is fixed on the middle outer wall of double-acting screw 6. Secondary gear 5 meshes with main gear 4. When motor 3 on support plate 2 is started, the output end of motor 3 drives main gear 4 to rotate through coupling. Since secondary gear 5 meshes with main gear 4, the rotation of main gear 4 will drive secondary gear 5 to rotate. The rotation of secondary gear 5 will drive double-acting screw 6 to rotate between two fixed plates 7, achieving a high-efficiency driving effect.
[0035] Multiple mounting plates 10 are welded to one side of each movable frame 9. Support columns 11 are symmetrically welded to one side of each mounting plate 10. A screw 12 is welded to one end of each support column 11. Ear plates 13 are welded to both sides of each server body 8. Each ear plate 13 has a through hole for the screw 12 to pass through. Nuts 14 are threaded onto the outer wall of the screw 12 for locking and fixing the server body 8. By aligning the through holes on the ear plates 13 on both sides of the server body 8 with the screw 12 and tightening the nuts 14 onto the screw 12, the server body 8 can be installed on the movable frame 9. The distance between the server body 8 and the mounting plates 10 is maintained by the support columns 11, which facilitates airflow and heat dissipation at the bottom of the server body 8. For disassembly, simply unscrew the nuts 14 to remove the server body 8 from the movable frame 9, achieving a seamless installation and improving convenience.
[0036] This application can be used in the field of servers, or in other fields applicable to this application.
[0037] Example 2
[0038] refer to Figures 1-4 An improvement based on Example 1: a hyperconverged architecture cluster server, which is applied to the server field;
[0039] Both sides of the enclosure 1 are hinged to rotating brackets 15 for easy installation or removal of the server body 8. Each rotating bracket 15 has two mounting slots 16 on one side, and a fan 17 is fixedly installed on the inner wall of each mounting slot 16 for heat dissipation and dust removal of the extended server body 8. The two rotating brackets 15 are opened by rotating the shaft, providing sufficient operating space for the operator to operate the server body 8. When the server body 8 is extended outside the enclosure 1, the fan 17 is activated. The fan 17 generates airflow to dissipate heat from the extended server body 8, reducing its operating temperature. At the same time, the airflow also blows away dust from the surface of the server body 8, thus improving its usability.
[0040] Each rotating frame 15 has a hook 18 rotatably connected to both sides via a rotating shaft. Two hanging rods 19 are welded to both sides of the housing 1 for the hooks 18 to engage with, so as to lock and fix the rotating frame 15 when it is closed. The rotating frame 15 is rotated back to its original position and closed. The hooks 18 are then hooked onto the hanging rods 19, which helps to lock and fix the rotating frame 15, prevents shaking, and ensures that the fan 17 can work stably in the future.
[0041] A maintenance door is hinged to one side of the enclosure 1. An observation window is provided on one side of the maintenance door. The maintenance door facilitates the operator's inspection and maintenance of the equipment inside the enclosure 1. When it is necessary to inspect, repair or replace the equipment inside the enclosure 1, the operator can open the maintenance door and operate the equipment directly. The observation window allows the operator to observe the situation inside the enclosure 1 without opening the maintenance door, so as to understand the working status of the equipment in time and take appropriate measures.
[0042] However, as is well known to those skilled in the art, the working principles and wiring methods of the motor 3, server body 8 and fan 17 are commonplace and are all conventional methods or common knowledge. They will not be described in detail here. Those skilled in the art can make any selections according to their needs or convenience.
[0043] The accompanying drawings in this application are for illustrative purposes only. The dimensions and shapes of the components shown are not actual limitations, but are merely schematic representations. In actual implementation, the components can be reasonably configured and adjusted according to specific needs and actual conditions.
[0044] The above are merely specific embodiments of this utility model, but the protection scope of this utility model is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the technical scope disclosed in this utility model should be included within the protection scope of this utility model. In the absence of conflict, the embodiments and features in the embodiments of this utility model can be combined with each other. Therefore, the protection scope of this utility model should be determined by the scope of the claims.
Claims
1. A hyperconverged architecture cluster server, characterized in that, include: The enclosure (1) contains multiple server bodies (8). Slide grooves (20) are provided on the inner sides of both ends of the enclosure (1). Each slide groove (20) is slidably connected to a sealing plate (21) to achieve a closed protection effect when the server body (8) is not working. The extension mechanism is located inside the housing (1) before the server is used. It is used to extend the server body (8) out of the housing (1) to work.
2. A hyperconverged architecture cluster server according to claim 1, characterized in that, The extension mechanism includes a support plate (2), a motor (3), a main gear (4), a secondary gear (5), a two-way lead screw (6), a fixed plate (7), and a moving frame (9). The two fixed plates (7) are welded between the inner walls of the two sides of the housing (1). The two-way lead screw (6) is rotatably connected between the two fixed plates (7) through a rotating shaft. The two moving frames (9) are threadedly connected to the outer wall of the two-way lead screw (6). The moving frames (9) are slidably connected to the inside of the housing (1).
3. A hyperconverged architecture cluster server according to claim 2, characterized in that, The support plate (2) is welded to one side of the inner wall of the housing (1). The motor (3) is fixedly installed on the top of the support plate (2). The output end of the motor (3) is fixed to one side of the main gear (4) through a coupling. The auxiliary gear (5) is fixedly installed on the middle outer wall of the double-acting screw (6). The auxiliary gear (5) meshes with the main gear (4).
4. A hyperconverged architecture cluster server according to claim 3, characterized in that, Each of the movable frames (9) has multiple mounting plates (10) welded to one side. Each of the mounting plates (10) has two symmetrical support columns (11) welded to one side. Each support column (11) has a screw (12) welded to one end. Each of the server bodies (8) has ear plates (13) welded to both sides. Each ear plate (13) has a through hole for the screw (12) to pass through. The outer wall of the screw (12) is threaded with a nut (14) for locking and fixing the server body (8).
5. A hyperconverged architecture cluster server according to claim 1, characterized in that, Both sides of the housing (1) are connected to rotating frames (15) by hinges to facilitate the opening when installing or disassembling the server body (8). Each rotating frame (15) has two mounting slots (16) on one side. Each mounting slot (16) has a fan (17) fixedly installed on its inner wall to dissipate heat and blow dust off the server body (8) after it is extended.
6. A hyperconverged architecture cluster server according to claim 5, characterized in that, Each of the rotating frames (15) has hooks (18) rotatably connected to both sides via a rotating shaft. The box body (1) has two hanging rods (19) welded to both sides for the hooks (18) to engage, so as to lock and fix the rotating frame (15) when it is closed.
7. A hyperconverged architecture cluster server according to claim 1, characterized in that, One side of the housing (1) is connected to a maintenance door panel via a hinge, and an observation window is provided on one side of the maintenance door panel.
Citation Information
Patent Citations
Super-converged architecture cluster server
CN218567952U