Server

By introducing a combination of the first driving component and the second driving component in the server, flexible adjustment of the position and direction of the display device is achieved, the problem of unadjustable direction of the display device is solved, the maintenance efficiency of the operator is improved, and the efficient heat dissipation of the server is ensured through the heat dissipation mechanism.

CN120406668APending Publication Date: 2025-08-01INSPUR SUZHOU INTELLIGENT TECH CO LTD
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Patent Information

Application Number
CN202510523163.6
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-24
Publication Date
2025-08-01

AI Technical Summary

Technical Problem

The display device orientation of the existing server cannot be adjusted, resulting in poor flexibility for operators during maintenance.

Method used

Through the combined use of the first drive assembly and the second drive assembly, flexible adjustment of the position and direction of the display device is achieved, including movement and rotation along the chassis direction, combined with the design of the heat dissipation mechanism to improve maintenance efficiency.

Benefits of technology

It realizes flexible adjustment of the automatic position and direction of the display device, adapts to the needs of operators of different heights, improves maintenance efficiency, and ensures efficient heat dissipation within the server through automated cooling mechanisms.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a server, and relates to the technical field of servers, the server comprises a case, a display device, a first driving assembly and a second driving assembly, the first driving assembly can drive the display device to move relative to at least one direction of the case so as to be suitable for operators of different heights to observe the display device; the output end of the second driving assembly is connected to the first driving assembly or the display device, so that the display device can rotate to be close to or far away from the opening part of the case, the direction of the display device can be flexibly adjusted, an operator can conveniently observe the display device during maintenance, and the maintenance efficiency is improved.
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Description

Technical Field

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

[0002] In the field of servers, a server with a display function can allow personnel to observe operation information outside the machine and perform relevant operations, which is convenient for operators to perform operations such as maintenance.

[0003] In the related art, in order to facilitate the observation and operation of operators of different heights, a display device with a display function is set to be liftable, but the direction of this component cannot be adjusted. When the operator performs maintenance, it is impossible to view the display device, and the flexibility is poor.

[0004] In summary, how to solve the problem that the direction of the display device cannot be adjusted is an urgent problem to be solved by those skilled in the art at present. Summary of the Invention

[0005] This application provides a server to at least solve the problem that the direction of the component with a display function cannot be adjusted in the related art.

[0006] This application provides a server, including:

[0007] A chassis provided with an opening for easy maintenance;

[0008] A display device provided on the outer periphery of the chassis;

[0009] A first driving component, the output end of the first driving component is connected to the display device, and the first driving component is configured to drive the display device to move relative to the chassis in at least one direction by its output end;

[0010] A second driving component, the output end of the second driving component is connected to the first driving component, and the second driving component is configured to drive the first driving component and the display device to rotate by its output end, so that the display device can rotate to approach or move away from the opening;

[0011] Or, the output end of the second driving component is connected to the display device, and the second driving component is configured to drive the display device to rotate relative to the second driving component by its output end, so that the display device can rotate to approach or move away from the opening.

[0012] On the other hand, it further includes a drive shaft, the drive shaft includes a first part, a second part and a third part, the first part is rotatably connected to the output end of the first driving component, the second part is rotatably connected to the output end of the second driving component, the third part is fixedly connected to the display device, and the second driving component can rotate the drive shaft to realize the rotation of the display device relative to the first driving component.

[0013] On the other hand, the first driving assembly includes a fixing member connected to the chassis. The fixing member is connected with a first driving member, and the output end of the first driving member can be connected to the driving shaft to drive the display device to move through the driving shaft.

[0014] On the other hand, it further includes a connecting assembly connected to the output end of the first driving member. The connecting assembly includes a first connecting member, a second connecting member, and a connecting rod. The connecting rod passes through the fixing member and is respectively connected to the first connecting member and the second connecting member at both ends. The first driving member drives the first connecting member to move, so as to be able to drive the second connecting member and the driving shaft connected to the second connecting member to move.

[0015] On the other hand, the second driving assembly includes a second driving member, a driving member, and at least one driven member. The driving member is connected to the output end of the second driving member, the driven member is in transmission connection with the driving member, and the driven member at the end of the transmission route is slidably connected to the driving shaft. The first driving member can make the driving shaft slide relative to the driven member, and the second driving member can drive the driven member to make the driving shaft rotate.

[0016] On the other hand, the driven member at the end of the transmission route is slidably connected to the driving shaft through a rotating sleeve. The rotating sleeve is arranged through the fixing member, the inner ring of the rotating sleeve is slidably connected to the spline on the outer circumference of the driving shaft, and the outer ring of the rotating sleeve is connected to at least one bearing fixedly arranged on the fixing member.

[0017] On the other hand, it further includes a heat dissipation mechanism. The heat dissipation mechanism includes a heat dissipation member movably arranged in the chassis, a first power member, and a second power member. The first power member is connected to a plurality of heat dissipation members to drive them to rotate, and the second power member is connected to the first power member to be able to drive the first power member and the heat dissipation members to reciprocate in the chassis.

[0018] On the other hand, the output end of the first power member is engaged with the transmission bevel gears on the output shafts of at least two heat dissipation members through a bevel gear assembly. The axis direction of the bevel gear assembly is perpendicular to the axis direction of the output shaft, and the first power member drives at least two heat dissipation members to rotate in the same / opposite direction through the bevel gear assembly.

[0019] On the other hand, the output end of the second power member is connected to the first power member through a screw rod slider assembly. The screw rod slider assembly includes a screw rod and a sliding member. One end of the sliding member is used to connect the first power member, and the other end of the sliding member is provided with a transmission groove and a guiding groove. The transmission groove can be in transmission connection with the screw rod, and the guiding groove is used to penetrate a guiding rod for guiding.

[0020] On the other hand, the heat dissipation mechanism further includes an assembly plate. A plurality of ventilation openings are arranged on the assembly plate, and the heat dissipation member can reciprocate along the first area formed by the plurality of ventilation openings;

[0021] A controller and a temperature sensor are provided on the assembly plate. Both the controller and the temperature sensor are located in the second area, which is the area on the assembly plate other than the first area. The temperature sensor, the first power component, and the second power component are all connected to the controller in signal. The controller can control the operation of the first power component and the second power component according to the detection information of the temperature sensor, so as to blow the heat out of the machine through the air vents.

[0022] Through the present application, the first driving assembly is configured such that its output end drives the display device to move in at least one direction relative to the chassis. Therefore, the technical effect of flexibly adjusting the position of the display device automatically can be achieved, which is convenient for operators of different heights to use.

[0023] The output end of the second driving assembly is connected to the first driving assembly. The second driving assembly is configured such that its output end drives both the first driving assembly and the display device to rotate, enabling the display device to rotate to approach or move away from the opening of the chassis; or the output end of the second driving assembly is connected to the display device. The second driving assembly is configured such that its output end drives the display device to rotate relative to the first driving assembly, so as to enable the limiting device to rotate to approach or move away from the opening of the chassis. Due to the above arrangement of the second driving assembly, it is convenient to flexibly adjust the direction of the display device, and flexible adjustment can be made when the operator needs to check the inside of the server chassis while looking at the display device during maintenance, improving the maintenance efficiency of the operator. BRIEF DESCRIPTION OF THE DRAWINGS

[0024] In order to more clearly illustrate the embodiments of the present application, the drawings required for use in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present application. For those of ordinary skill in the art, other drawings can be obtained based on these drawings without creative efforts.

[0025] Figure 1 A schematic structural diagram of a server provided by an embodiment of the present application;

[0026] Figure 2 For Figure 1 the rear view;

[0027] Figure 3 An internal schematic diagram of the chassis provided by an embodiment of the present application;

[0028] Figure 4 A connection schematic diagram of the assembly plate and the heat dissipation mechanism provided by an embodiment of the present application;

[0029] Figure 5 A schematic structural diagram of the heat dissipation mechanism provided by an embodiment of the present application;

[0030] Figure 6Schematic structural diagram of the first driving component and the second driving component provided by the embodiments of the present application.

[0031] Among them, the above-mentioned drawings include the following reference numerals:

[0032] 1 - chassis; 2 - bearing; 3 - first driving component; 4 - rotating sleeve; 5 - driving shaft; 6 - display device; 7 - display screen; 8 - second driving component; 9 - control panel; 10 - lock body; 11 - cover plate; 12 - mounting box; 13 - heat dissipation mechanism; 31 - fixing piece; 32 - first driving piece; 33 - first connecting piece; 34 - second connecting piece; 35 - connecting rod; 81 - second driving piece; 82 - driving member; 83 - driven member; 1301 - mounting plate; 1302 - fixing block; 1303 - lead screw; 1304 - first power member; 1305 - sliding member; 1306 - guide rod; 1307 - output shaft; 1308 - heat dissipation member; 1309 - transmission bevel gear; 1310 - support seat; 1311 - transmission rod; 1312 - second bevel gear; 1313 - first bevel gear; 1314 - fixing plate; 1315 - second power member; 1316 - driving bevel gear; 1317 - mounting seat; 1318 - filter box; 1319 - filter element; 1320 - air vent; 1321 - controller; 1322 - temperature sensor; 13051 - transmission groove; 13052 - guide groove. Detailed implementation manners

[0033] Next, the technical solutions in the embodiments of the present application will be clearly and completely described in conjunction with the drawings in the embodiments of the present application. Obviously, the described embodiments are only a part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present application.

[0034] It should be noted that the orientation or positional relationship indicated by terms such as "center", "longitudinal", "lateral", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", "axial", "radial", "circumferential", etc. is based on the orientation or positional relationship shown in the drawings. It is only for the convenience of describing the present application and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation. Therefore, it should not be construed as a limitation to the present application. The terms "mounted", "connected", and "coupled" 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 directly connected or indirectly connected through an intermediate medium, and it can be the communication inside two elements. The terms "parallel", "perpendicular", and "equal" include the described situations and situations similar to the described situations, and the range of the similar situations is within the acceptable deviation range, where the acceptable deviation range is determined by those of ordinary skill in the art considering the measurements being discussed and the errors associated with the measurements of specific quantities (i.e., the limitations of the measurement system). For example, "parallel" includes absolute parallel and approximate parallel, and the acceptable deviation range of approximate parallel can be, for example, within 5° deviation; "perpendicular" includes absolute perpendicular and approximate perpendicular, and the acceptable deviation range of approximate perpendicular can also be, for example, within 5° deviation. "Equal" includes absolute equality and approximate equality, and the acceptable deviation range of approximate equality can be, for example, that the difference between the two equal ones is less than or equal to 5% of either of them. For those of ordinary skill in the art, the specific meanings of the above terms in the present application can be understood according to specific situations.

[0035] In order to enable those skilled in the art of the present technology to better understand the solution of the present application, the present application will be further described in detail below with reference to the drawings and specific embodiments.

[0036] The server provided by the present application includes a chassis 1, a display device 6, a first driving component 3, and a second driving component 8. Please specifically refer to Figure 1 , Figure 2 . The server is equipped with a display device 6, and the server specifically includes, but is not limited to, a cloud server.

[0037] The chassis 1 is provided with an opening part convenient for maintenance. Here, the opening part is specifically provided on the side of the chassis 1, and this opening part is closed or opened by a cabinet door rotatably connected to the chassis 1. When maintenance is required, the opening part is opened through the cabinet door to facilitate observing the specific conditions of the components or devices inside the chassis 1 through the opening part.

[0038] The display device 6 is provided on the outer periphery of the chassis 1, specifically, it can be provided on the side part of the chassis 1 adjacent to the opening part; specifically, it can also be provided on the top or bottom adjacent to the opening part, and it needs to be flexibly set according to the actual usage requirements. It should be noted that the side part, bottom and top here are described by taking the chassis 1 as a conventional cubic structure as an example.

[0039] Specifically, the display device 6 includes an installation box 12. A display screen 7 and a control panel 9 are arranged in the installation box 12. The display screen 7 can specifically display the operation information of the internal components or devices of the chassis 1. The opening of the installation box 12 is closed or opened by a cover plate 11. Specifically, the cover plate 11 is provided with a lock body 10 that can be connected to the inner wall of the opening of the installation box 12. Through the lock body 10, the reliable locking of the cover plate 11 and the installation box 12 is ensured. When maintenance is required, the lock body 10 can be opened to perform relevant operations on the control panel 9.

[0040] During specific maintenance, the operations performed on the control panel 9 are the operations of controlling the first driving component 3 and the second driving component 8, which are used to move or rotate the display device 6 to meet the maintenance requirements.

[0041] Among them, the output end of the first driving component 3 is connected to the display device 6. The first driving component 3 is configured such that its output end drives the display device 6 to move relative to the chassis 1 in at least one direction. Here, the at least one direction means it can be the height direction, the width direction, the length direction, or any two of them. Here, the length, width, and height are also described by taking the chassis 1 as a conventional cubic structure as an example.

[0042] Taking one implementation mode as an example, the output end of the first driving component 3 is connected to the display device 6. Through the first driving component 3, the display device 6 can be driven to move along the height direction of the chassis 1, so that the display device 6 can be adjusted adaptively according to the height conditions of different operators, and operators of different heights can easily observe the display device 6.

[0043] Taking one implementation mode as an example, the output end of the first driving component 3 is connected to the display device 6. Through the first driving component 3, the display device 6 can be driven to move along the height direction and the width direction of the chassis 1, so that the display device 6 can be adjusted adaptively according to the height conditions of different operators and the server space situation on site, so that the display device 6 can be moved to an easy-to-observe position, and operators of different heights can easily observe the display device 6.

[0044] In this embodiment, specifically, the structure of the first driving component 3 may include but is not limited to components such as motors, cylinders, oil cylinders, and manual rotating wheels, as long as the linear movement effect of the display device 6 can be achieved. If motor-type or rotating-wheel-type components are used, the rotation can be converted into linear motion by means of a gear-rack structure, a ball screw structure, etc., which will not be elaborated in detail here.

[0045] The output end of the second driving component 8 is connected to the first driving component 3 or the display device 6, which can achieve the effect of rotating the display device 6 to approach or move away from the opening. Specifically, when the display device 6 rotates to approach the opening, the rotation angle can be 90° to 180°, which can enable the display device 6 to face the operator. When the operator performs maintenance on the internal equipment or components at the opening position, it is easy to observe the display device 6 at this position, and the direction of the display device 6 can be flexibly adjusted without the operator having to move again, improving the convenience and efficiency of maintenance.

[0046] In one embodiment, the output end of the second driving component 8 is connected to the first driving component 3, and the first driving component 3 is connected to the display device 6. Then, the second driving component 8 drives the first driving component 3 to rotate, that is, it can drive the rotation of the display device 6 connected to the first driving component 3, enabling the first driving component 3 and the display device 6 to rotate synchronously and adjusting the direction of the display device 6 to facilitate the operator's observation of the display device during maintenance. In this case, it should be noted that when the first driving component 3 needs to rotate as a whole, the first driving component 3 needs to be set to the unlocked and locked states. The locked state corresponds to the non-rotatable first driving component 3, which can be reliably arranged on the chassis 1, and the movement of the display device 6 can be realized by starting the first driving component 3; the unlocked state corresponds to the freely rotatable first driving component 3, which corresponds to the situation where the first driving component 3 can be driven by the second driving component 8 to rotate. In this case, the first driving component 3 does not operate. Specifically, the component that can realize the switching between the locked and unlocked states of the first driving component 3 can be that one end of the first driving component 3 is rotatably connected to the chassis 1, and the other end is connected to the chassis 1 through a lock or other forms of locking parts. The locking and unlocking of the first driving component 3 can be realized by opening or closing the lock. In addition, it should also be noted that in this case, since one end of the first driving component 3 is rotatably connected to the chassis 1, in order to ensure the operation of the first driving component 3 to enable the reliable and stable movement of the display device 6, guiding components such as guide grooves can be provided.

[0047] In another embodiment, the output end of the second driving component 8 is connected to the display device 6, that is to say, the first driving component 3 is connected to the display device 6 through the second driving component 8. In this case, when the display device 6 needs to rotate, only the display device 6 rotates, and the first driving component 3 remains connected to the chassis 1. Specifically, the display device 6 can rotate relative to the first driving component 3 so that the display device 6 can rotate to a position convenient for the operator to observe, facilitating the operator's maintenance work.

[0048] In this embodiment, the second driving component 8 includes but is not limited to components such as a motor and a rotating wheel, and may also be equipped with auxiliary transmission components to achieve the technical effect of driving the display device 6 to rotate.

[0049] Regarding the above process, it should be noted that during the movement of the display device 6, the second drive component 8 is also not moving. The display device 6 and the second drive component 8 can be slidably connected. Only under the action of external force, the display device 6 will slide relative to the second drive component 8. In the absence of external force, if the second drive component 8 is started, the display device 6 and the second drive component 8 can maintain a reliable connection with the help of contact force. When the second drive component 8 is started, the display device 6 will only rotate.

[0050] In this embodiment, the first drive component 3 is used to realize the movement of the display device 6 in at least one direction relative to the chassis 1, and the second drive component 8 is used to realize the rotation of the display device 6 relative to the chassis 1. This can solve the technical problem that the direction of the display device 6 cannot be adjusted, and can facilitate the observation and operation operations of operators of different heights, and has good flexibility.

[0051] Based on the above examples, please refer to Figure 1 , and also includes a drive shaft 5, the drive shaft 5 includes a first part, a second part and a third part, the first part is rotatably connected to the output end of the first drive component 3, the second part is rotatably connected to the output end of the second drive component 8, and the third part is fixedly connected to the display device 6. The second drive component 8 can rotate the drive shaft 5 to realize the rotation of the display device 6 relative to the first drive component 3.

[0052] The first part is rotatably connected to the output end of the first driving assembly 3. When the driving shaft 5 is driven by the second driving assembly 8 to rotate, the driving shaft 5 can drive the display device 6 to rotate relative to the first driving assembly 3 to achieve the effect of adjusting the direction of the display device 6.

[0053] like Figure 1 As shown, the drive shaft 5 can move up and down with the drive of the first drive assembly 3, so as to change the up and down movement of the display device 6 connected to the third part of the drive shaft 5; the drive shaft 5 can rotate relative to the first drive assembly 3 under the drive of the second drive assembly 8, so as to realize the rotation of the display device 6 connected to the third part of the drive shaft 5. The above-mentioned up and down movement is specifically based on Figure 1 Description of the orientation in .

[0054] The first part, the second part and the third part of the drive shaft 5 can be connected in sequence, or arranged arbitrarily according to actual conditions. Specifically, the three parts located on the same drive shaft 5 can be connected to different components respectively.

[0055] In this embodiment, the output end of the second driving component 8 is rotationally connected to the second part of the driving shaft 5. The second driving component 8 can drive the second part to rotate, that is, it can realize the rotation of the driving shaft 5 and the display device 6 connected to the driving shaft 5, and flexibly adjust the direction of the display device 6.

[0056] On the outer periphery of the driving shaft 5, convex ribs or spline-like components can be provided. Specifically, through this setting method, when the first driving component 3 operates, the reliable sliding of the driving shaft 5 relative to the second driving component 8 can be ensured. Without other external forces, the second driving component 8 does not move; when the second driving component 8 operates, the driving shaft 5 can rotate relative to the first driving component 3, so that the display device 6 can rotate synchronously, facilitating the observation during maintenance by the operator.

[0057] Based on any of the above embodiments, please refer to Figure 6 , the first driving component 3 includes a fixing member 31 connected to the chassis 1. The fixing member 31 is connected with a first driving member 32, and the output end of the first driving member 32 can be connected to the driving shaft 5 to drive the display device 6 to move through the driving shaft 5.

[0058] The fixing member 31 is specifically a component that can be fixedly connected to the chassis 1, and can provide an installation space for the first driving component 3 and the second driving component 8.

[0059] The first driving member 32 is specifically fixed on the fixing member 31, and the output end of the first driving member 32 is connected to the driving shaft 5 to be able to drive the driving shaft 5 to move. Here, the first driving member 32 such as a cylinder, an oil cylinder, etc. is a component that can realize linear motion drive through telescoping, which is easy to fix and has a low use cost.

[0060] Taking the first driving member 32 as an oil cylinder as an example, the end of the cylinder rod of the first driving member 32 can be directly connected to the first part of the driving shaft 5, and the end of the cylinder barrel is connected to the fixing member 31. In this case, if it is necessary to make adjustments according to the different heights of the operators, it can be achieved by controlling the telescoping stroke of the oil cylinder.

[0061] In order to better suit the different heights of the operators, the moving stroke of the oil cylinder can be set in multiple stages, each stage corresponding to a different height, so as to be able to accurately adjust according to the actual situation, without the need to control while adjusting, and improve the accuracy and efficiency of the movement adjustment of the display device 6.

[0062] Based on any of the above embodiments, please refer to Figure 6, further comprising a connection component connected to the output end of the first driving member 32. The connection component includes a first connection member 33, a second connection member 34, and a connecting rod 35. The connecting rod 35 passes through the fixing member 31 and is respectively connected to the first connection member 33 and the second connection member 34 at both ends. The first driving member 32 drives the first connection member 33 to move, so as to drive the second connection member 34 and the driving shaft 5 connected to the second connection member 34 to move.

[0063] As Figure 6 shown in the figure, the first driving member 32 is connected to the driving shaft 5 through the connection component, so as to be able to transmit the power of the movement to the driving shaft 5 through the connection component, and further drive the movement of the display device 6 connected thereto through the movement of the driving shaft 5.

[0064] Specifically, the connection component includes a first connection member 33 and a second connection member 34 arranged in parallel. The first connection member 33 and the second connection member 34 are connected by a connecting rod 35. The connecting rod 35 can pass through the guiding hole on the fixing member 31. When the first driving member 32 drives the first connection member 33, the connecting rod 35 can move along the axial direction of the guiding hole, so as to drive the second connection member 34 to move through this movement, and further drive the movement of the driving shaft 5 connected to the second connection member 34, and naturally can further realize the movement of the display device 6.

[0065] The first connection member 33 and the second connection member 34 are located on both sides of the axial direction of the connecting rod 35 and on both sides of the thickness direction of the fixing member 31.

[0066] Taking a specific embodiment as an example, the output end of the first driving member 32 passes through the fixing member 31 and is connected to the first connection member 33 located at the lower end of the fixing member 31, while the second connection member 34 is located at the upper end of the fixing member 31. Through this arrangement, it can be ensured that the display device 6 can move in a relatively stable state when the first driving member 32 operates.

[0067] Correspondingly, the second driving member 81 of the second driving assembly 8 is preferably arranged at the lower end of the fixing member 31, so that the first driving assembly 3 and the second driving assembly 8 can achieve better balance and ensure the reliable stability when the display device 6 rotates or moves and adjusts.

[0068] On the basis of any of the above embodiments, please refer to Figure 6 , the second driving assembly 8 includes a second driving member 81, a driving member 82, and at least one driven member 83. The driving member 82 is connected to the output end of the second driving member 81. The driven member 83 is in transmission connection with the driving member 82. The driven member 83 at the end of the transmission route is slidably connected to the driving shaft 5. The first driving member 32 can make the driving shaft 5 slide relative to the driven member 83, and the second driving member 81 can drive the driven member 83 to make the driving shaft 5 rotate.

[0069] The second driving member 81 can transmit power through the driving member 82 and further through at least one driven member 83, so as to transmit the force for driving rotation to the driving shaft 5, achieve the effect of driving the display device 6 to rotate, and realize the flexibility of adjusting the direction of the display device 6.

[0070] In this embodiment, specifically, at least one driven member 83 is provided based on the ability to change the rotation speed of the driving shaft 5 according to the actual transmission ratio, so as to meet more working conditions.

[0071] The driven member 83 located at the end of the transmission route, that is, the component capable of being in transmission connection with the driving shaft 5, can be slidably connected to the driving shaft 5. Substantially, the driving shaft 5 can slide relative to this driven member 83, and the driven member 83 is relatively fixed to the fixing member 31. Only when the second driving member 81 operates, the driven member 83 can obtain the rotational force and drive the driving shaft 5 to realize the rotational adjustment of the display device 6.

[0072] For the slidable connection between the driven member 83 and the driving shaft 5, specifically, the first driving member 32 can operate to drive the driving shaft 5 to move up and down, so as to change the contact position between the driving shaft 5 and the driven member 83 and realize the movement adjustment of the display device 6.

[0073] It should be noted that the connection between the driven member 83 and the driving shaft 5 is a slidable connection. Without applying an external force to the driven member 83, the driven member 83 remains stationary, and the driving shaft 5 can slide up and down driven by the first driving member 32; when the driven member 83 is driven by an external force, specifically, the second driving member 81 operates to drive the driven member 83 to rotate through the driving member 82, then it can drive the rotation of the driving shaft 5 connected to the driven member 83, that is, the rotation of the display device 6 can be realized. In this process, the driving shaft 5 can only rotate and will not move.

[0074] On the basis of any of the above embodiments, please refer to Figure 6 , the driven member 83 located at the end of the transmission route is slidably connected to the driving shaft 5 through a rotating sleeve 4. The rotating sleeve 4 is arranged through the fixing member 31. The inner ring of the rotating sleeve 4 is slidably connected to the spline on the outer circumference of the driving shaft 5, and the outer ring of the rotating sleeve 4 is connected to at least one bearing 2 fixedly arranged on the fixing member 31.

[0075] In this embodiment, the driving shaft 5 is a spline shaft, and a plurality of splines are arranged on the outer circumference of the driving shaft 5 along its axial direction. These splines can be slidably connected to the rotating sleeve 4. When no force for moving the driving shaft 5 up and down is applied, the splines are engaged with the rotating sleeve 4, so as to drive the rotation of the driving shaft 5 through the rotation of the driven member 83. Through the arrangement of the rotating sleeve 4 and the bearing 2, the driving shaft 5 can meet both rotation and movement, and the display device 6 can be flexibly adjusted in position and direction according to actual needs.

[0076] As shown Figure 6 in the figure, the rotating sleeve 4 extends out of both sides of the fixing member 31. The outer periphery of one side passes through the bearing 2 and is connected to the driven member 83 at the end of the transmission route. The other side extends out of the fixing member 31 to balance the two sides relatively, ensuring the reliable and stable rotation adjustment of the display device 6.

[0077] When the operator needs to work while checking the inside of the chassis 1 and the touch display screen 7, the second driving member 81 is driven to drive the driving member 82 to rotate, driving the driven member 83, the rotating sleeve 4 and the driving shaft 5 to rotate. After adjusting the touch display screen 7 by a certain angle, it stops, facilitating the operator to perform quick maintenance. The certain angle here can be 180°, or it can be other values, which can be determined according to actual needs.

[0078] Based on any of the above embodiments, please refer to Figure 3 、 Figure 4 、 Figure 5 , and further includes a heat dissipation mechanism 13. The heat dissipation mechanism 13 includes a heat dissipation member 1308 movably disposed in the chassis 1, a first power member 1304, and a second power member 1315. The first power member 1304 is connected to a plurality of heat dissipation members 1308 to drive their rotation. The second power member 1315 is connected to the first power member 1304 to be able to drive the first power member 1304 and the heat dissipation member 1308 to reciprocate in the chassis 1.

[0079] The heat dissipation mechanism 13 is disposed in the chassis 1 and can reciprocate the heat dissipation member 1308 when the temperature in the chassis 1 is relatively high, so as to quickly discharge the heat in the chassis 1 and ensure a reliable heat dissipation effect.

[0080] Specifically, the heat dissipation mechanism 13 includes a first power member 1304 and a second power member 1315. One is used to realize the reciprocating movement of the heat dissipation member 1308, and the other is used to drive the heat dissipation member 1308.

[0081] In a specific embodiment, the first power member 1304 can be connected to a plurality of heat dissipation members 1308 to realize their rotation. The second power member 1315 is connected to the first power member 1304 to be able to drive the heat dissipation member 1308 connected thereto to reciprocate by driving the first power member 1304.

[0082] In this embodiment, a plurality of heat dissipation members 1308 means that one, two or more heat dissipation members 1308 can be driven to rotate by the first power member 1304. Specifically, the first power member 1304 can be connected to at least one heat dissipation member 1308 by means of a transmission shaft and transmission wheels. For example, one or more transmission wheels are provided on the output shaft of the first power member 1304, and each transmission wheel is connected to a heat dissipation member 1308. When the first power member 1304 rotates, at least one heat dissipation member 1308 can rotate naturally, so as to improve the heat dissipation efficiency.

[0083] In this embodiment, by starting the first power member 1304 to start the rotation of the heat dissipation member 1308, and the reciprocating movement of the heat dissipation member 1308 can be achieved through the second power member 1315, so as to realize the reciprocating and comprehensive air-cooling heat dissipation of the chassis 1, quickly discharge the heat outwards, and stop the first power member 1304 and the second power member 1315 until the temperature drops to the target value.

[0084] The reciprocating movement of the first power member 1304 and the heat dissipation member 1308 that the second power member 1315 can drive can specifically be the up-and-down movement along the height direction of the chassis 1, so as to quickly discharge the hot air rising upwards in the chassis 1 through the rotation of the heat dissipation member 1308 and ensure the heat dissipation effect. The second power member 1315 can specifically be a component such as a cylinder, an oil cylinder, etc. that can achieve translation, or a motor and a ball screw, a gear and rack structure, etc.

[0085] On the basis of any of the above embodiments, please refer to Figure 3 、 Figure 4 、 Figure 5 , the output end of the first power member 1304 is engaged with the transmission bevel gears 1309 on the output shafts 1307 of at least two heat dissipation members 1308 through a bevel gear assembly. The axis direction of the bevel gear assembly is perpendicular to the axis direction of the output shaft 1307, and the first power member 1304 drives the at least two heat dissipation members 1308 to rotate in the same direction / opposite directions through the bevel gear assembly.

[0086] Among them, the first power member 1304 can specifically drive two heat dissipation members 1308. As Figure 5 shown, a driving bevel gear 1316 is connected to the output end of the first power member 1304, and two first bevel gears 1313 are connected through the driving bevel gear 1316, so as to be able to transmit power to the transmission bevel gear 1309 through these two first bevel gears 1313 respectively, so as to realize driving the two heat dissipation members 1308 respectively corresponding to both sides of the first power member 1304.

[0087] In one embodiment, the bevel gear assembly includes two first bevel gears 1313. The first bevel gears 1313 are directly meshed with the drive bevel gear 1309 to drive two radiators 1308 respectively corresponding to both sides of the first power member 1304. This form can drive the rotation of the two radiators 1308 in a relatively simple and compact form, reducing the design and processing costs.

[0088] In another embodiment, the bevel gear assembly includes two first bevel gears 1313, two second bevel gears 1312, and a transmission rod 1311. The bevel gear assembly is supported on the assembly plate 1301 through a support seat 1310. Specifically, the support seat 1310 and the transmission rod 1311 are rotatably connected to achieve support. The first bevel gear 1313 can transmit power to the transmission rod 1311, and then transmit it to the second bevel gear 1312 connected to the transmission rod 1311. By meshing the second bevel gear 1312 with the drive bevel gear 1309, the two radiators 1308 respectively corresponding to both sides of the first power member 1304 are driven. This form can effectively increase the distance between the two radiators 1308 through the arrangement of the transmission rod 1311 to be applicable to larger radiators 1308. In this case, different lengths of the transmission rod 1311 can be configured to meet different sizes of the chassis 1 and different sizes of the radiators 1308, improving the applicability.

[0089] Alternatively, the first power member 1304 can drive three, four, or five radiators 1308. By increasing the number of the first bevel gears 1313, the number of driven radiators 1308 is increased. For example, additional first bevel gears 1313 are added on the opposite side, upper side, or lower side of the drive bevel gear 1316, and then the additional radiators 1308 are driven through the first bevel gears 1313, so as to increase the number of radiators 1308, expand the heat dissipation coverage, and ensure the reliable and effective heat dissipation.

[0090] Taking the example that the first power member 1304 can drive at least two radiators 1308 to rotate in the same direction, as Figure 5 shown, if the driving direction of the first power member 1304 is clockwise, with the connection relationship in Figure 5 , the two radiators 1308 located on both sides of the first power member 1304 can rotate counterclockwise simultaneously; if the driving direction of the first power member 1304 is counterclockwise, with the connection relationship in Figure 5 , the two radiators 1308 located on both sides of the first power member 1304 can rotate clockwise simultaneously. One of the clockwise rotation and counterclockwise rotation of the two radiators 1308 corresponds to air intake and the other corresponds to air exhaust.

[0091] Taking the example of the first power part 1304 being able to drive the reverse drive of at least two heat sinks 1308, if the first power part 1304 is two separately set motors, both of which can rotate forward and reverse, then the direction of the two motors can be controlled differently to control the reverse rotation of the two heat sinks 1308 connected to the motor transmission, that is, one heat sink 1308 rotates clockwise and the other heat sink 1308 rotates counterclockwise, that is, one is set to take in air and the other to exhaust air, which can achieve the technical effect of improving the heat dissipation efficiency.

[0092] If the second bevel gear 1312 on either side of the first power member 1304 changes its meshing position with the transmission bevel gear 1309, or if the second bevel gear 1312 on the right side of the first power member 1304 is reversed so that it has the same form as the first bevel gear 1313 on the same side, and the second bevel gear 1312 is meshed with the right side of the transmission bevel gear 1309, the two heat sinks 1308 can also be rotated in opposite directions, that is, one heat sink 1308 rotates clockwise and the other heat sink 1308 rotates counterclockwise, that is, one is set to take in air and the other to exhaust air, which can achieve the technical effect of improving the heat dissipation efficiency.

[0093] Based on any of the above embodiments, please refer to Figure 5 The output end of the second power member 1315 is connected to the first power member 1304 through a screw slider assembly to enable the reciprocating movement of the first power member 1304 and the heat sink 1308 connected thereto. Specifically, the second power member 1315 can be a motor that can rotate forward and reverse.

[0094] The screw slider assembly includes a screw 1303 and a sliding member 1305. One end of the sliding member 1305 is used to connect to the first power member 1304. The other end of the sliding member 1305 is provided with a transmission groove 13051 and a guide groove 13052. The transmission groove 13051 can be connected to the screw 1303 by transmission, and the guide groove 13052 is used to pass the guide rod 1306 for guidance. When the second power member 1315 is driven, the transmission connection between the transmission groove 13051 and the screw 1303 can make the sliding member 1305 generate a force to move up and down, so as to change the reciprocating movement of the several heat sinks 1308 connected to the first power member 1304, so as to be able to perform comprehensive air cooling and heat dissipation of the chassis 1 up and down, so that the heat is quickly discharged to the outside. The air cooling here specifically means that the heat sink 1308 can be a fan.

[0095] The setting of the guide groove 13052 in conjunction with the guide rod 1306 can ensure the accuracy of the movement route of the plurality of heat sinks 1308, ensure the reliability of the movement operation of the plurality of heat sinks 1308, and avoid the heat dissipation process being affected by movement deviation.

[0096] The forms of the specific guiding grooves 13052 and the guiding rods 1306 are not limited and can be circular, square structures, etc.

[0097] In this embodiment, both ends of the guiding rod 1306 and the end of the lead screw 1303 away from the first power member 1304 can be fixed to the mounting plate 1301 by means of fixing blocks 1302, and the mounting plate 1301 is connected to the inside of the chassis 1 in a detachable connection form, and the hot air is led out of the machine after passing through the mounting plate 1301.

[0098] In this embodiment, a fixing piece 1314 is fixedly connected to the center of the outer side wall of the sliding member 1305, and a first power member 1304 is fixedly connected to the fixing piece 1314. The output shaft of the first power member 1304 passes through the fixing piece 1314 and is connected to the driving bevel gear 1316.

[0099] On the basis of any of the above embodiments, please refer to Figure 3 、 Figure 4 , the heat dissipation mechanism 13 further includes a mounting plate 1301. One side of the mounting plate 1301 away from the inside of the chassis 1 is connected with a filter element 1319 through a plurality of mounting seats 1317. The filter element 1319 is fixed in a filter frame 1318, and the filter frame 1318 is connected to the side of the chassis 1 opposite to the opening part, so as to be able to complete the installation of the filtering components on the chassis 1. When dissipating heat, the filter holes of the filter element 1319 can intake air or exhaust air, specifically depending on whether this filter hole is located in the position of the heat dissipation part 1308 with the exhaust function or the intake function. In addition, the filter element 1319 can also play the role of blocking external impurities, dust, etc. from entering the chassis 1.

[0100] A plurality of air vents 1320 are provided on the mounting plate 1301, and the heat dissipation part 1308 can reciprocally move along the first area formed by the plurality of air vents 1320; the first area can be a square area, a circular area, etc. formed by the plurality of air vents 1320, and the heat dissipation part 1308 can cover and reciprocally move along the position of the first area, so as to be able to send the heat in the chassis 1 out of the chassis 1 through the air vents 1320, achieving the effect of air-cooled heat dissipation.

[0101] Please refer to Figure 4 , a controller 1321 and a temperature sensor 1322 are provided on the mounting plate 1301. The controller 1321 and the temperature sensor 1322 are both located in the second area. The temperature sensor 1322, the first power member 1304, and the second power member 1315 are all signal-connected to the controller 1321. The second area is the area on the mounting plate 1301 except the first area.

[0102] The controller 1321 can control the operations of the first power component 1304 and the second power component 1315 according to the detection information of the temperature sensor 1322, so as to blow the heat out of the machine through the ventilation opening 1320. The temperature sensor 1322 can monitor the temperature inside the chassis 1 to determine the start and stop of the first power component 1304 and the second power component 1315. Specifically, according to the relationship between the temperature and the preset value, if the temperature is lower than the preset value, there is no need for the power component to operate; if it is higher than the preset value, it is necessary to control the two power components to operate for reliable air-cooling heat dissipation operation.

[0103] In summary, the server provided by the present invention can at least achieve the following technical effects:

[0104] Automatically and flexibly adjust the height of the display device 6, which is convenient for operators of different heights to use;

[0105] It is convenient to flexibly adjust the direction of the display device 6. When the operator needs to check the inside of the server box while looking at the display device 6 during maintenance, it can be flexibly adjusted, reducing the maintenance efficiency of the operator.

[0106] Realize reciprocating up and down to comprehensively air-cool the server in the server box, so that the heat can be quickly dissipated to the outside. The range of air-cooling is wider, improving the heat dissipation effect, and the heat dissipation is automatic, avoiding waste of electric power resources caused by continuous heat dissipation, and ensuring the service life of the internal components of the server.

[0107] In specific applications, the sizes of the installation box 12 and the touch display screen 7 can be flexibly adjusted according to the specifications of the server to be carried, and it can be used for storing devices such as processors, controllers, network switches, and cloud processors, with significant application prospects.

[0108] The above has introduced in detail a server provided by the present application. Specific examples are used in this article to elaborate on the principle and implementation manner of the present application. The description of the above embodiments is only used to help understand the method and its core idea of the present application. It should be noted that for those of ordinary skill in the art in this technical field, without departing from the principle of the present application, several improvements and modifications can be made to the present application, and these improvements and modifications also fall within the protection scope of the claims of the present application.

Claims

1. A server, characterized in that, Comprising: A chassis (1) provided with an opening facilitating maintenance; A display device (6) disposed on the outer periphery of the chassis (1); A first driving assembly (3), the output end of the first driving assembly (3) being connected to the display device (6), and the first driving assembly (3) being configured such that its output end drives the display device (6) to move in at least one direction relative to the chassis (1); A second driving assembly (8), the output end of the second driving assembly (8) being connected to the first driving assembly (3), and the second driving assembly (8) being configured such that its output end drives the first driving assembly (3) and the display device (6) to rotate, so that the display device (6) can rotate to approach or move away from the opening; Or, the output end of the second driving assembly (8) is connected to the display device (6), and the second driving assembly (8) is configured such that its output end drives the display device (6) to rotate relative to the second driving assembly (8), so that the display device (6) can rotate to approach or move away from the opening.

2. The server according to claim 1, wherein It further includes a driving shaft (5), the driving shaft (5) including a first part, a second part, and a third part. The first part is rotatably connected to the output end of the first driving assembly (3), the second part is rotatably connected to the output end of the second driving assembly (8), and the third part is fixedly connected to the display device (6). The second driving assembly (8) can rotate the driving shaft (5) to realize the rotation of the display device (6) relative to the first driving assembly (3).

3. The server according to claim 2, wherein The first driving assembly (3) includes a fixing member (31) connected to the chassis (1), the fixing member (31) being connected to a first driving member (32), and the output end of the first driving member (32) being capable of being connected to the driving shaft (5) to drive the display device (6) to move through the driving shaft (5).

4. The server according to claim 3, wherein It further includes a connecting assembly connected to the output end of the first driving member (32). The connecting assembly includes a first connecting member (33), a second connecting member (34), and a connecting rod (35). The connecting rod (35) passes through the fixing member (31) and is respectively connected to the first connecting member (33) and the second connecting member (34) at both ends. The first driving member (32) drives the first connecting member (33) to move, so as to be able to drive the second connecting member (34) and the driving shaft (5) connected to the second connecting member (34) to move.

5. The server according to claim 4, characterized in that, The second driving component (8) includes a second driving member (81), a driving member (82), and at least one driven member (83). The driving member (82) is connected to the output end of the second driving member (81). The driven member (83) is in transmission connection with the driving member (82). The driven member (83) at the end of the transmission route is slidably connected to the driving shaft (5). The first driving member (32) can make the driving shaft (5) slide relative to the driven member (83). The second driving member (81) can drive the driven member (83) to make the driving shaft (5) rotate.

6. The server according to claim 5, wherein The driven member (83) at the end of the transmission route is slidably connected to the driving shaft (5) through a rotating sleeve (4). The rotating sleeve (4) is arranged through the fixing member (31). The inner ring of the rotating sleeve (4) is in sliding connection with the spline on the outer periphery of the driving shaft (5). The outer ring of the rotating sleeve (4) is connected to at least one bearing (2) fixedly arranged on the fixing member (31).

7. The server according to any one of claims 1 to 6, characterized in that, It further includes a heat dissipation mechanism (13). The heat dissipation mechanism (13) includes a heat dissipation member (1308) movably arranged in the chassis (1), a first power member (1304), and a second power member (1315). The first power member (1304) is connected to several heat dissipation members (1308) to drive them to rotate. The second power member (1315) is connected to the first power member (1304) to be able to drive the first power member (1304) and the heat dissipation members (1308) to reciprocate in the chassis (1).

8. The server according to claim 7, wherein The output end of the first power member (1304) is engaged with the transmission bevel gears (1309) on the output shafts (1307) of at least two heat dissipation members (1308) through a bevel gear assembly. The axis direction of the bevel gear assembly is perpendicular to the axis direction of the output shaft (1307). The first power member (1304) drives at least two heat dissipation members (1308) to rotate in the same / opposite direction through the bevel gear assembly.

9. The server according to claim 8, characterized in that, The output end of the second power member (1315) is connected to the first power member (1304) through a lead screw slider assembly. The lead screw slider assembly includes a lead screw (1303) and a sliding member (1305). One end of the sliding member (1305) is used to connect the first power member (1304). The other end of the sliding member (1305) is provided with a transmission groove (13051) and a guiding groove (13052). The transmission groove (13051) can be in transmission connection with the lead screw (1303). The guiding groove (13052) is used to pass through a guiding rod (1306) for guiding.

10. The server according to claim 9, wherein The heat dissipation mechanism (13) further includes an assembly plate (1301). A plurality of air vents (1320) are arranged on the assembly plate (1301). The heat dissipation members (1308) can reciprocate along a first area formed by the plurality of air vents (1320); A controller (1321) and a temperature sensor (1322) are provided on the assembly plate (1301). Both the controller (1321) and the temperature sensor (1322) are located in the second area. The temperature sensor (1322), the first power member (1304), and the second power member (1315) are all connected to the controller (1321) in a signal manner. The second area is the area on the assembly plate (1301) except the first area. The controller (1321) can control the operation of the first power member (1304) and the second power member (1315) according to the detection information of the temperature sensor (1322) to blow out heat outside the machine through the air vent (1320).