Computer system and case
By designing the rotating connection between the rotating components and the box in the computer system, the motherboard is covered and exposed, which solves the problem of motherboard maintenance in a narrow space, improves space utilization and reduces maintenance difficulty.
Patent Information
- Application Number
- CN202410115667.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2024-01-26
- Publication Date
- 2025-08-05
AI Technical Summary
In computer systems, as the number of motherboards and electronic devices increases, maintenance difficulty increases, especially in small spaces, it is difficult to achieve efficient maintenance of motherboards.
A computer system is designed, including a box, a first motherboard, a rotating component and a second motherboard. Through the rotating movement of the rotating component, the motherboard is covered and exposed, and the rotating connection between the rotating component and the box is used to improve the utilization rate of space and realize disassembly and maintenance-free.
Through the design of rotating components, the space utilization rate is improved, and the motherboard and electronic devices are removed without disassembly and maintenance is reduced.
Smart Images

Figure CN120428818A_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of information technology equipment, and in particular to a computer system and a chassis. Background Art
[0002] Computer systems in the industry can be information technology equipment such as servers and mainframe computers, each equipped with a motherboard. To increase system capacity and operating speed, there's a need to accommodate more motherboards and other electronic components within a confined enclosure. However, accommodating more motherboards and electronic components within a single enclosure can create challenges in terms of subsequent maintenance. Summary of the Invention
[0003] In view of this, the present application provides a computer system and a chassis, aiming to reduce the difficulty of maintaining a motherboard and electronic components.
[0004] In a first aspect, the present application provides a computer system comprising a housing, a first motherboard, a rotating assembly, and a second motherboard. The housing comprises a bottom wall, and the first motherboard is connected to the housing. The rotating assembly is located on a side of the first motherboard facing away from the bottom wall, and is rotatably connected to the housing. The rotating assembly is configured to rotate in a first rotational direction to expose the first motherboard and in a second rotational direction to cover the first motherboard, the first rotational direction being opposite to the second rotational direction. The second motherboard is connected to the rotating assembly and rotates with the rotating assembly; when the rotating assembly covers the first motherboard, the second motherboard is located on a side of the rotating assembly facing away from the first motherboard.
[0005] In the above embodiment, the rotating assembly can be rotated to cover the first main board, so that the bottom wall, the first main board, the rotating assembly and the second main board are arranged in sequence, thereby improving the space utilization rate of the box body, and the rotating assembly can also be rotated to expose the first main board, so that the first main board and the second main board can be maintained without disassembling the main board, thereby reducing the difficulty of maintaining the main board and electronic components.
[0006] In some embodiments, the computer system further includes a connecting device, the connecting device being located on one side of the first motherboard and the rotating assembly in a first direction, the connecting device being connected to the first motherboard, the connecting device and the first motherboard being both located on one side of the bottom wall in a second direction, the first direction being perpendicular to the second direction. The rotating assembly is further movably connected to the housing in a first direction and a direction opposite to the first direction, the rotating assembly being capable of moving in the first direction to connect with the second motherboard and the connecting device, and being capable of moving in a direction opposite to the first direction to disconnect from the second motherboard and the connecting device.
[0007] In the above embodiment, multiple main boards are arranged in the box, and the second main board can be rotated to cover and expose the first main board. In addition, the first main board and the second main board can be plugged into the connection device, thereby improving the utilization rate of the space in the box.
[0008] In some embodiments, the housing further comprises a side bracket, the side bracket being located on one side of the rotating assembly in the third direction, with the third direction, the first direction, and the second direction being perpendicular to each other. The side bracket is provided with a mounting slot, the mounting slot comprising a first portion and a second portion that are connected, the first portion extending in the first direction, the second portion extending in the second direction and penetrating one side of the side bracket in the second direction. The rotating assembly comprises a carrier and a rotating shaft, the carrier being connected to the second mainboard, and the rotating shaft being disposed through the first portion.
[0009] In the above embodiment, the rotating shaft can extend into the second part along one side of the second part through the side bracket, and then move from the second part to the first part, so that the rotating shaft can rotate relative to the side bracket, and can also move relative to the side bracket along the first direction and the direction opposite to the first direction.
[0010] In some embodiments, the rotating assembly further includes a telescopic member connected to the carrier frame, and the side bracket is further provided with a positioning hole, and the telescopic member is used to extend into the positioning hole when the carrier frame rotates and exposes the first mainboard.
[0011] In the above embodiment, when the telescopic member is inserted into the positioning hole, the carrier can be fixed in a position where the first mainboard is exposed, such as when the carrier and the first mainboard are perpendicular or when the carrier and the first mainboard form an angle greater than 90°. This arrangement can free the operator's hands to secure the carrier, or eliminate the need for a dedicated support structure for the rotating assembly, facilitating subsequent maintenance of the first mainboard.
[0012] In some embodiments, the rotating assembly further includes a rotating handle, which is rotatably connected to the carrier frame, at least a portion of the rotating handle is located on the side of the carrier frame away from the first main board, and the rotating handle is configured to be rotatable to form an angle with the carrier frame.
[0013] In the above embodiment, the rotating handle is at least partially located on the side of the carrier away from the first main board, which is convenient for the operator to operate the rotating handle, apply force to the rotating handle and make the rotating handle and the carrier form an angle, which is convenient for the operator to apply force to the carrier along the first direction or opposite to the first direction through the handle, thereby achieving a boosting effect on the carrier, thereby facilitating the connection and disconnection of the second main board with the connection device.
[0014] In some embodiments, the rotating handle includes a connecting arm and an operating arm, the connecting arm being rotatably connected to the carrier, at least a portion of the operating arm being located on a side of the carrier facing away from the first main board, and the operating arm being slidably connected to the connecting arm. The carrier is provided with a limiting slot, and the operating arm is provided with a limiting buckle, so that the operating arm can slide in a first direction until the limiting buckle enters the limiting slot, and can slide in a direction opposite to the first direction until the limiting buckle exits the limiting slot; when the limiting buckle enters the limiting slot, the rotation of the connecting arm is restricted.
[0015] In the above embodiment, the cooperation between the limit groove and the limit buckle enables the handle to be limited and fixed in a position that does not interfere with other structures when the handle does not need to be rotated out, thereby reducing the risk of the handle accidentally rotating and colliding with other structures, and improving the convenience and stability of the handle.
[0016] In some embodiments, the rotating handle further comprises an elastic member, the limiting buckle extends into the limiting groove along the first direction, the elastic member elastically acts on the connecting arm and the operating arm, and the elastic member provides a force for the limiting buckle of the operating arm to extend into the limiting groove.
[0017] In the above-described embodiment, the elastic member can exert a force on the operating arm to restrict the retaining buckle from sliding out of the retaining slot, thereby reducing the risk of the operating arm accidentally being subjected to force and sliding relative to the connecting arm, thereby reducing the risk of the retaining buckle accidentally sliding out of the retaining slot. The retaining buckle extends into the retaining slot along the first direction, allowing the operator to simultaneously release the rotation restriction on the rotating handle and simultaneously disconnect the second mainboard from the connecting device, thereby further facilitating the propulsion of the carrier and further enhancing the convenience of connecting and disconnecting the second mainboard from the connecting device.
[0018] In some embodiments, the computer system further includes a positioning block, located along a first direction on a side of the rotating assembly facing away from the connection device, the positioning block being connected to the housing. When the rotating assembly rotates along the first rotational direction to form an angle greater than 90° with the first mainboard, the positioning block abuts against the rotating assembly or the first mainboard.
[0019] In the above embodiment, the positioning block facilitates supporting the carrier, maintaining an angle greater than 90° with the first mainboard. This arrangement frees the operator's hands to secure the carrier, facilitating subsequent maintenance of the first mainboard. Alternatively, in embodiments with a telescopic member, this arrangement frees the operator's hands to operate the telescopic member and insert it into the positioning hole.
[0020] In some embodiments, the computer system further comprises a positioning block, located along a first direction on a side of the rotating assembly facing away from the connection device, the positioning block being connected to the housing. When the rotating assembly rotates along the first rotational direction to expose the first mainboard, the positioning block attracts the rotating assembly or the first mainboard.
[0021] In some embodiments, the rotating assembly further includes a cable clamp and a fixing plate, wherein the fixing plate has a first end and a second end disposed opposite each other, the first end being rotatably connected to the carrier, and the second end being detachably connected to the carrier. When the second end is connected to the carrier, the fixing plate presses the cable clamp.
[0022] In the above embodiment, the cable tie is used to secure the cables connecting the second mainboard to other components, facilitating cable management within the enclosure and improving space utilization. The fixing plate compresses the cable tie, further enhancing cable retention. During subsequent maintenance, the second end can be detached from the support frame to release the cable.
[0023] In some embodiments, the computer system further comprises a structural member and a buffer member, wherein the structural member is disposed on a side of the first mainboard facing away from the bottom wall and is connected to the housing. The buffer member is disposed on a side of the structural member facing away from the first mainboard and abuts against the rotating assembly or the second mainboard when the rotating assembly covers the first mainboard.
[0024] In the above embodiment, the structural parts can also protect and fix the electronic components on the first mainboard, and the buffer parts can buffer the rotating components or the second mainboard, reducing the risk of damage to the first mainboard and the second mainboard during operation and maintenance.
[0025] In a second aspect, the present application further provides a chassis comprising a housing and a rotating assembly. The housing includes a bottom wall. The rotating assembly is located on one side of the bottom wall, and is positioned between the rotating assembly and the bottom wall to accommodate a first motherboard. The rotating assembly is rotatably connected to the housing and is configured to rotate in a first rotational direction away from the bottom wall and in a second rotational direction toward the bottom wall, the first rotational direction being opposite to the second rotational direction. The rotating assembly is configured to secure the second motherboard.
[0026] In the above embodiment, when the first mainboard and the second mainboard are installed in the chassis, the rotating assembly can be rotated to cover the first mainboard, so that the bottom wall, the first mainboard, the rotating assembly and the second mainboard are arranged in sequence, thereby improving the space utilization rate of the chassis, and the rotating assembly can also be rotated to expose the first mainboard, so that the first mainboard and the second mainboard can be maintained without removing the mainboard, thereby reducing the difficulty of maintaining the mainboard and electronic components. BRIEF DESCRIPTION OF THE DRAWINGS
[0027] Figure 1 A schematic diagram of the structure of a computer system provided in one embodiment of the present application.
[0028] Figure 2 This is a schematic diagram of the installation of a rotating component behind a hidden top wall of a computer system provided by an embodiment of the present application.
[0029] Figure 3This is a structural diagram of a computer system provided by an embodiment of the present application after the top wall is hidden.
[0030] Figure 4 for Figure 3 A schematic diagram of a rotating component in a computer system rotating along a first rotation direction until a first mainboard is exposed.
[0031] Figure 5 A top view of a computer system provided by an embodiment of the present application with the top wall hidden.
[0032] Figure 6 for Figure 5 Schematic diagram of the rotating component after moving in a direction opposite to the first direction.
[0033] Figure 7 for Figure 2 A partial enlarged view of part A in the middle.
[0034] Figure 8 for Figure 2 A partial enlarged view of part B in the middle.
[0035] Figure 9 This is a schematic diagram of the exploded structure of a computer system provided in one embodiment of the present application.
[0036] Figure 10 This is a schematic diagram of the handle limit buckle provided in one embodiment of the present application after extending into the limit slot.
[0037] Figure 11 for Figure 10 Schematic diagram of the handle being rotated to form an angle with the support frame after the middle limit buckle extends out of the limit slot.
[0038] Figure 12 This is a schematic structural diagram of a computer system provided by another embodiment of the present application with the top wall hidden.
[0039] Description of main component symbols
[0040] Computer System 100
[0041] Box 10
[0042] Bottom wall 11
[0043] Top wall 12
[0044] Side wall 13
[0045] Side stand 14
[0046] Mounting slot 141
[0047] Part I 1411
[0048] Part II 1412
[0049] Positioning hole 142
[0050] First motherboard 20
[0051] Rotating assembly 30
[0052] Carrier 31
[0053] Limiting slot 311
[0054] Rotating shaft 32
[0055] Telescopic member 33
[0056] Turn the handle 34
[0057] Connecting arm 341
[0058] Operating arm 342
[0059] Limit buckle 3421
[0060] Elastic member 343
[0061] Cable clip 35
[0062] Fixed plate 36
[0063] First end portion 361
[0064] Second end portion 362
[0065] Second main board 40
[0066] Connecting Device 50
[0067] Positioning block 60
[0068] Structural parts 70
[0069] Buffer 80
[0070] First direction X
[0071] Second direction Y
[0072] The third direction Z
[0073] First rotation direction C1
[0074] Second rotation direction C2 DETAILED DESCRIPTION
[0075] The technical solutions in the embodiments of the present application will be described below in conjunction with the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments.
[0076] It should be noted that when a component is considered to be "connected" to another component, it can be directly connected to the other component or there may be an intermediate component. When a component is considered to be "located on" another component, it can be directly located on the other component or there may be an intermediate component. The terms "top", "bottom" and similar expressions used herein are for illustrative purposes only, and are used to explain the relative positional relationship, movement, etc. between various components in a specific posture (as shown in the accompanying drawings).
[0077] Unless otherwise specified, the term "plurality" as used herein means two or more than two.
[0078] The terms "first", "second", etc. are only used to distinguish different objects and cannot be understood as indicating or implying relative importance or implying the quantity, specific order or primary and secondary relationship of the technical features indicated.
[0079] The term "perpendicular" is used to describe an ideal position between two components. In actual production or use, the position between two components may be approximately perpendicular.
[0080] The term "parallel" is used to describe an ideal state between two components. In actual production or use, two components may be approximately parallel.
[0081] It should be understood that the dimensions of the various structures shown in the drawings are provided for better understanding and more convenient description, and the present application is not limited to the dimensions shown in the drawings. In order to make the present invention clear, elements not related to the description are omitted from the details of this specification.
[0082] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as those commonly understood by those skilled in the art to which this application pertains. The terms used herein in the specification of this application are for the purpose of describing specific embodiments only and are not intended to limit this application.
[0083] The present application discloses a computer system comprising a housing, a first motherboard, a rotating assembly, and a second motherboard. The housing includes a bottom wall, and the first motherboard is connected to the housing. The rotating assembly is located on a side of the first motherboard facing away from the bottom wall and is rotatably connected to the housing. The rotating assembly is configured to rotate in a first rotational direction to expose the first motherboard and in a second rotational direction to cover the first motherboard, the first rotational direction being opposite to the second rotational direction. The second motherboard is connected to the rotating assembly and rotates with the rotating assembly; when the rotating assembly covers the first motherboard, the second motherboard is located on the side of the rotating assembly facing away from the first motherboard.
[0084] The above-mentioned rotating assembly can be rotated to cover the first main board, so that the bottom wall, the first main board, the rotating assembly and the second main board are arranged in sequence, thereby improving the space utilization rate of the box body, and the rotating assembly can also be rotated to expose the first main board, so that the first main board and the second main board can be maintained without removing the main board, thereby reducing the difficulty of maintaining the main board and electronic components.
[0085] The following will describe some embodiments of the present application in conjunction with the accompanying drawings. In the absence of conflict, the following embodiments and features in the embodiments may be combined with each other.
[0086] See also Figure 1 and Figure 2 The present invention provides a computer system 100, which includes a housing 10, a first motherboard 20, a rotating assembly 30, and a second motherboard 40. The housing 10 includes a bottom wall 11. The first motherboard 20 is connected to the housing 10. The rotating assembly 30 is rotatably connected to the housing 10. The second motherboard 40 is connected to the rotating assembly 30, and the second motherboard 40 rotates with the rotating assembly 30.
[0087] The computer system 100 may be a server, a computer host, or other information technology equipment with a motherboard, which is not specifically limited here.
[0088] In some embodiments, see Figure 1 and Figure 2 The computer system 100 further includes a top wall 12 and side walls 13. The top wall 12 is disposed opposite the bottom wall 11. The side walls 13 are disposed between the top wall 12 and the bottom wall 11, and the side walls 13 connect the top wall 12 and the bottom wall 11. The top wall 12, the bottom wall 11, and the side walls 13 form a space for accommodating the first motherboard 20, the rotating assembly 30, and the second motherboard 40.
[0089] In one embodiment, the top wall 12 and a portion of the side wall 13 may be formed into one shell, and the bottom wall 11 and a portion of the side wall 13 may be formed into another shell.
[0090] In some embodiments, see Figure 2 The bottom wall 11 is arranged parallel to the first main board 20. The first main board 20 and the second main board 40 are both provided with electronic components and connecting terminals.
[0091] In some embodiments, the first mainboard 20 is fixed to the bottom wall 11 by hand screws.
[0092] See also Figure 3 and Figure 4The rotating assembly 30 is located on a side of the first main board 20 facing away from the bottom wall 11. The rotating assembly 30 is rotatably connected to the housing 10. The rotating assembly 30 is configured to rotate in a first rotational direction C1 to expose the first main board 20 and to rotate in a second rotational direction C2 to cover the first main board 20. The first rotational direction C1 is opposite to the second rotational direction C2. The second main board 40 is connected to the rotating assembly 30 and rotates with the rotating assembly 30. When the rotating assembly 30 covers the first main board 20, the second main board 40 is located on the side of the rotating assembly 30 facing away from the first main board 20.
[0093] The fact that the rotating assembly 30 covers the first main board 20 can be understood as follows: when viewed from the first main board 20 toward the bottom wall 11, the rotating assembly 30 can fully or partially cover the side of the first main board 20 facing away from the bottom wall 11. The partial covering of the first main board 20 may be due to the rotating assembly 30 having a smaller area than the first main board 20 or due to the rotating assembly 30 having a hollow structure.
[0094] The rotating assembly 30 exposing the first main board 20 can be understood as: observing from the direction of the first main board 20 toward the bottom wall 11, the rotating assembly 30 avoids the first main board 20, so that the side of the first main board 20 away from the bottom wall 11 is completely exposed.
[0095] The rotating assembly 30 of the present application can be rotated to cover the first main board 20, so that the bottom wall 11, the first main board 20, the rotating assembly 30 and the second main board 40 can be arranged in sequence, thereby improving the space utilization rate of the box body 10, and the rotating assembly 30 can also be rotated to expose the first main board 20. After the first main board 20 is exposed, the first main board 20 and the second main board 40 can be maintained, realizing the maintenance of the first main board 20 and the second main board 40 without disassembling the main board, thereby reducing the difficulty of maintaining the main board and electronic components.
[0096] In some embodiments, the rotating assembly 30 can rotate along the second rotational direction C2 until the first and second main boards 20 and 40 are arranged parallel to each other, thereby covering the first main board 20. The rotating assembly 30 can also rotate along the first rotational direction C1 until the first and second main boards 20 and 40 are arranged perpendicular to each other or at an angle greater than 90°, thereby exposing the rotating assembly 30 and second main boards 40 to the first main board 20. This arrangement further improves the space utilization of the housing 10, allowing maintenance of the first and second main boards 20 and 40 without removing the main boards, thereby reducing the difficulty of maintaining the main boards and electronic components.
[0097] In some embodiments, see Figure 3 and Figure 4The computer system 100 further includes a connecting device 50, which is located on one side of the first motherboard 20 and the rotating assembly 30 in the first direction X, and is connected to the first motherboard 20. The connecting device 50 and the first motherboard 20 are both located on one side of the bottom wall 11 in the second direction Y, and the first direction X is perpendicular to the second direction Y.
[0098] In some embodiments, the connection device 50 may be an electronic device for connecting to a mainboard. For example, the connection device 50 is a storage module or a programmable module, which is not specifically limited here.
[0099] In some embodiments, the connection device 50 is plugged into the first mainboard 20 , and the connection device 50 is also plugged into the second mainboard 40 .
[0100] In some embodiments, see Figure 5 and Figure 6 ,in Figure 6 for Figure 5 Schematic diagram of the rotating assembly 30 after it moves in a direction opposite to the first direction X. The rotating assembly 30 is also movably connected to the housing 10 in the first direction X and in a direction opposite to the first direction X. The second mainboard 40 can move in the first direction X to connect with the connecting device 50, and can also move in a direction opposite to the first direction X to disconnect from the connecting device 50. This arrangement allows for multiple mainboards to be installed within the housing 10. Furthermore, while the second mainboard 40 can rotate to cover and expose the first mainboard 20, it also allows both the first mainboard 20 and the second mainboard 40 to be plugged into the connecting device 50, thereby improving the utilization of the space within the housing 10.
[0101] In some embodiments, when the rotating assembly 30 rotates along the second rotation direction C2 until the second main board 40 is parallel to the first main board 20, the second main board 40 can move along the first direction X to connect with the connecting device 50. The second main board 40 can also move along a direction opposite to the first direction X to disconnect from the connecting device 50. This configuration ensures that the interface on the connecting device 50 for connecting to the first main board 20 is parallel to the interface for connecting to the second main board 40.
[0102] In some embodiments, see Figure 2 、 Figure 7 and Figure 8The housing 10 further includes a side bracket 14, which is connected to the housing 10 and has a mounting slot 141. The rotating assembly 30 includes a carrier 31 and a rotating shaft 32 extending into the mounting slot 141. The carrier 31 is connected to the second motherboard 40 and is rotatably connected to the computer system 100 via the rotating shaft 32. The rotating shaft 32 is also capable of moving within the mounting slot 141 along a first direction X and a direction opposite to the first direction X. The rotating shaft 32 can move along the first direction X until the second motherboard 40 is connected to the connection device 50. The rotating shaft 32 can also move along the direction opposite to the first direction X until the second motherboard 40 is disconnected from the connection device 50.
[0103] In some embodiments, see Figure 2 、 Figure 7 and Figure 8 The side bracket 14 is located on one side of the rotating assembly 30 in the third direction Z. The third direction Z, the first direction X, and the second direction Y are perpendicular to each other. The mounting slot 141 includes a first portion 1411 and a second portion 1412. The first portion 1411 extends along the first direction X, and the second portion 1412 extends along the second direction Y and passes through one side of the side bracket 14 in the second direction Y. The rotating shaft 32 can extend through the side of the side bracket 14 along the second portion 1412, extend into the second portion 1412, and then move from the second portion 1412 to the first portion 1411, allowing the rotating shaft 32 to rotate relative to the side bracket 14 and move relative to the side bracket 14 in the first direction X and in a direction opposite to the first direction X.
[0104] In some embodiments, the rotating assembly 30 is provided with side brackets 14 on both sides in the third direction Z, so that the rotating brackets can be more firmly installed on the box body 10 . In some embodiments, the side brackets 14 are connected to the side walls 13 .
[0105] In some embodiments, see Figure 4 and Figure 9 The rotating assembly 30 further includes a telescopic member 33 connected to the carrier 31. The side bracket 14 further includes a positioning hole 142. The telescopic member 33 is configured to extend into the positioning hole 142 when the carrier 31 rotates to expose the first mainboard 20. When the telescopic member 33 extends into the positioning hole 142, the carrier 31 is secured in a position where the first mainboard 20 is exposed, such as when the carrier 31 and the first mainboard 20 are perpendicular or at an angle greater than 90°. This arrangement frees the operator's hands from securing the carrier 31, eliminates the need for a dedicated support structure for the rotating assembly 30, and facilitates subsequent maintenance of the first mainboard 20.
[0106] In some embodiments, the telescopic member 33 may be a telescopic column capable of adjusting its length. For example, the telescopic member 33 includes two nested columns, one of which is connected by a connecting rod structure, and rotating the connecting rod structure can move one of the two columns relative to the other.
[0107] In some embodiments, see Figure 10 and Figure 11 The rotating assembly 30 also includes a rotating handle 34, which is rotatably connected to the carrier 31. At least a portion of the rotating handle 34 is located on the side of the carrier 31 away from the first main board 20, and the rotating handle 34 is configured to be rotatable to form an angle with the carrier 31.
[0108] The rotating handle 34 is at least partially located on the side of the carrier 31 away from the first main board 20, which is convenient for the operator to operate the rotating handle 34, apply force to the rotating handle 34 and make the rotating handle 34 form an angle with the carrier 31, which is convenient for the operator to apply force along the first direction X or opposite to the first direction X to the carrier 31 through the handle, thereby achieving a boosting effect on the carrier 31, thereby facilitating the connection and disconnection of the second main board 40 with the connection device 50.
[0109] In some embodiments, see Figure 10 and Figure 11 The carrier 31 is provided with a retaining slot 311. The rotating handle 34 includes a connecting arm 341 and an operating arm 342. The connecting arm 341 is rotatably connected to the carrier 31. At least a portion of the operating arm 342 is located on the side of the carrier 31 facing away from the first main board 20, facilitating an operator's application of force to the operating arm 342. The operating arm 342 is slidably connected to the connecting arm 341. The operating arm 342 is provided with a retaining buckle 3421. The operating arm 342 can slide along a first direction X until the retaining buckle 3421 enters the retaining slot 311, and can slide in a direction opposite to the first direction X until the retaining buckle 3421 exits the retaining slot 311. When the retaining buckle 3421 enters the retaining slot 311, the rotation of the connecting arm 341 is restricted. The cooperation between the retaining slot 311 and the retaining buckle 3421 allows the handle to be fixed in a position that does not interfere with other structures when it is not needed to be rotated out. This reduces the risk of the handle accidentally rotating and colliding with other structures, and improves the convenience and stability of the handle.
[0110] In some embodiments, when the limiting buckle 3421 extends into the limiting slot 311 , the operating arm 342 fits against the side of the carrier 31 facing away from the bottom wall 11 , which helps reduce the risk of the rotating handle 34 interfering with other structures.
[0111] In some embodiments, see Figure 10 and Figure 11The rotating handle 34 further includes an elastic member 343, which elastically acts on the connecting arm 341 and the operating arm 342. The elastic member 343 provides a force for the limiting buckle 3421 of the operating arm 342 to extend into the limiting slot 311. This arrangement ensures that when the rotating handle 34 needs to be rotated, the operator must first apply force to the operating arm 342, causing the limiting buckle 3421 to overcome the elastic effect and exit the limiting slot 311. The elastic member 343 can exert a force on the operating arm 342 to prevent the limiting buckle 3421 from sliding out of the limiting slot 311, thereby reducing the risk of the operating arm 342 accidentally being subjected to force and sliding relative to the connecting arm 341, thereby reducing the risk of the limiting buckle 3421 accidentally sliding out of the limiting slot 311.
[0112] In some embodiments, see Figure 10 and Figure 11 The limiting buckle 3421 extends into the limiting slot 311 along the first direction X. When the limiting buckle 3421 is withdrawn from the limiting slot 311, the operator applies a force in the direction opposite to the first direction X to the operating arm 342. The operating arm 342 transmits the force to the carrier 31, thereby driving the second mainboard 40 to move in the direction opposite to the first direction X and disconnecting from the connecting device 50. This is conducive to further achieving a boosting effect on the carrier 31 and further improving the convenience of connecting and disconnecting the second mainboard 40 from the connecting device 50.
[0113] In some embodiments, the elastic member 343 may be a compression spring, or a tension spring, a compression spring, an elastic rope, a metal spring sheet, or other components, which are not specifically limited here.
[0114] In some embodiments, see Figure 4 The computer system 100 further includes a positioning block 60. Along the first direction X, the positioning block 60 is located on the side of the rotating assembly 30 away from the connecting device 50, and the positioning block 60 is connected to the housing 10. When the rotating assembly 30 rotates along the first rotation direction C1 to form an angle greater than 90° with the first mainboard 20, the positioning block 60 abuts against the rotating assembly 30 or the first mainboard 20. The positioning block 60 is conducive to supporting the carrier 31 so that the carrier 31 remains in a state of forming an angle greater than 90° with the first mainboard 20. Such a setting is conducive to freeing the operator's hands to fix the carrier 31, which is conducive to the subsequent maintenance of the first mainboard 20. Or in an embodiment with a telescopic member 33, it is conducive to allowing the operator to free his hands to operate the telescopic member 33 so that the telescopic member 33 extends into the positioning hole 142.
[0115] In some other embodiments, the computer system 100 further includes a positioning block 60. The positioning block 60 is located on a side of the rotating assembly 30 facing away from the connection device 50 along the first direction X, and the positioning block 60 is connected to the housing 10. When the rotating assembly 30 rotates along the first rotational direction C1 to expose the first mainboard 20, the positioning block 60 absorbs the rotating assembly 30 or the first mainboard 20. The positioning block 60 can secure the carrier 31 or the first mainboard 20 through vacuum absorption. For example, the positioning block 60 can be provided with a suction cup for adsorbing the carrier 31 or the first mainboard 20.
[0116] In some embodiments, see Figure 12 The rotating assembly 30 also includes a cable clamp 35 and a fixing plate 36. The fixing plate 36 has a first end 361 and a second end 362 that are arranged opposite to each other. The first end 361 is rotatably connected to the carrier frame 31, and the second end 362 is detachably connected to the carrier frame 31. When the second end 362 is connected to the carrier frame 31, the fixing plate 36 presses the cable clamp 35. The cable rack is used to fix the connecting wires between the second main board 40 and other structures, which is beneficial for arranging the connecting wires in the box body 10 and improving the space utilization rate in the box body 10. The fixing plate 36 presses the cable clamp 35, which is beneficial for improving the fixing effect of the connecting wires, and in subsequent maintenance, the second end 362 can be detached from the carrier frame 31 to release the fixation of the connecting wires.
[0117] In some embodiments, see Figure 2 The computer system 100 further includes a structural member 70 and a buffer member 80. The structural member 70 is disposed on the side of the first mainboard 20 facing away from the bottom wall 11 and is connected to the housing 10. The buffer member 80 is disposed on the side of the structural member 70 facing away from the first mainboard 20. When the rotating assembly 30 covers the first mainboard 20, the buffer member 80 abuts against the rotating assembly 30 or the second mainboard 40. The structural member 70 also protects and secures the electronic components on the first mainboard 20. The buffer member 80 provides a buffering effect on the rotating assembly 30 or the second mainboard 40, reducing the risk of damage to the components of the first and second mainboards 20, 40, during operation and maintenance.
[0118] In some embodiments, the structural member 70 can be fixed to the side bracket 14 or the side wall 13 by means of I-nail and thumb screws. The buffer member 80 is a metal spring or a compression spring, a silicone pad or the like.
[0119] In some embodiments, a structural member 70 and a buffer member 80 may also be provided on the side of the second main board 40 facing away from the carrier 31 , which will not be described in detail here.
[0120] The embodiments of the present application further provide a chassis (not labeled), comprising a housing 10 and a rotating assembly 30. The housing 10 comprises a bottom wall 11. The rotating assembly 30 is located on one side of the bottom wall 11, and is used to accommodate the first mainboard 20 between the rotating assembly 30 and the bottom wall 11. The rotating assembly 30 is rotatably connected to the housing 10, and is configured to be able to rotate along a first rotation direction C1 to move away from the bottom wall 11, and to rotate along a second rotation direction C2 to move closer to the bottom wall 11, wherein the first rotation direction C1 is opposite to the second rotation direction C2. The rotating assembly 30 is used to fix the second mainboard 40.
[0121] It should be noted that the embodiment of the chassis of the present application includes the housing 10 and the rotating assembly 30 in any embodiment of the above-mentioned computer system 100, and therefore has the beneficial effects of the housing 10 and the rotating assembly 30 in any embodiment of the above-mentioned computer system 100, which will not be repeated here.
[0122] In addition, those skilled in the art should recognize that the above embodiments are merely intended to illustrate the present application and are not intended to limit the present application. As long as they are within the substantive scope of the present application, appropriate changes and modifications to the above embodiments are within the scope disclosed in the present application.
Claims
1. A computer system, characterized in that: include: a box body, the box body comprising a bottom wall; a first mainboard connected to the box; a rotating assembly, the rotating assembly being located on a side of the first main board facing away from the bottom wall, the rotating assembly being rotatably connected to the box body, the rotating assembly being configured to rotate along a first rotation direction to expose the first main board, and rotate along a second rotation direction to cover the first main board, the first rotation direction being opposite to the second rotation direction; a second mainboard, the second mainboard being connected to the rotating assembly and rotating along with the rotating assembly; When the rotating assembly covers the first main board, the second main board is located on a side of the rotating assembly facing away from the first main board.
2. The computer system according to claim 1, wherein: The computer system further includes a connecting device, the connecting device being located on one side of the first motherboard and the rotating assembly in a first direction, the connecting device being connected to the first motherboard, the connecting device and the first motherboard being both located on one side of the bottom wall in a second direction, the first direction being perpendicular to the second direction; The rotating component is also movably connected to the box along a first direction and a direction opposite to the first direction. The rotating component can move along the first direction to the second main board to connect with the connecting device. The rotating component can also move along the direction opposite to the first direction to the second main board to disconnect from the connecting device.
3. The computer system according to claim 2, wherein: The box body further includes a side bracket, the side bracket being located on one side of the rotating assembly in the third direction, the third direction, the first direction, and the second direction being perpendicular to each other; the side bracket is provided with a mounting groove, the mounting groove including a first portion and a second portion being connected, the first portion extending along the first direction, the second portion extending along the second direction and penetrating one side of the side bracket in the second direction; The rotating assembly includes a supporting frame and a rotating shaft. The supporting frame is connected to the second main board, and the rotating shaft is passed through the first part.
4. The computer system according to claim 3, wherein: The rotating assembly further includes a telescopic member connected to the supporting frame. The side bracket is further provided with a positioning hole. The telescopic member is used to extend into the positioning hole when the supporting frame rotates and exposes the first mainboard.
5. The computer system according to claim 3, wherein: The rotating assembly also includes a rotating handle, which is rotatably connected to the carrier. At least a portion of the rotating handle is located on the side of the carrier away from the first main board, and the rotating handle is configured to be rotatable to form an angle with the carrier.
6. The computer system according to claim 5, wherein: The rotating handle includes a connecting arm and an operating arm, the connecting arm is rotatably connected to the supporting frame, at least a portion of the operating arm is located on a side of the supporting frame away from the first main board, and the operating arm is slidably connected to the connecting arm; The supporting frame is provided with a limiting groove, and the operating arm is provided with a limiting buckle. The operating arm can slide along the first direction until the limiting buckle extends into the limiting groove, and slide along the direction opposite to the first direction until the limiting buckle exits the limiting groove; when the limiting buckle extends into the limiting groove, the rotation of the connecting arm is restricted.
7. The computer system according to claim 6, wherein: The limiting buckle extends into the limiting groove along the first direction; The rotating handle further comprises an elastic member, which elastically acts on the connecting arm and the operating arm, and the elastic member provides a force for the limiting buckle of the operating arm to extend into the limiting groove.
8. The computer system according to claim 3, wherein: The rotating assembly further includes a cable clamp and a fixing plate, wherein the fixing plate has a first end and a second end opposite to each other, the first end being rotatably connected to the carrier, and the second end being detachably connected to the carrier; When the second end portion is connected to the carrier, the fixing plate presses the cable clamp.
9. The computer system according to claim 2, wherein: The computer system further includes a positioning block, which is located on a side of the rotating assembly away from the connecting device along the first direction, and is connected to the box; When the rotating assembly rotates along the first rotating direction to form an angle greater than 90° with the first main board, the positioning block abuts against the rotating assembly or the first main board; or When the rotating assembly rotates along the first rotating direction until the first main board is exposed, the positioning block absorbs the rotating assembly or the first main board.
10. The computer system according to any one of claims 1 to 9, wherein: The computer system further includes a structural member and a buffer member, wherein the structural member is provided on a side of the first mainboard away from the bottom wall, and the structural member is connected to the box; The buffer component is provided on a side of the structural component away from the first main board, and the buffer component abuts against the rotating component or the second main board when the rotating component covers the first main board.
11. A chassis, characterized in that: include: a box body, the box body comprising a bottom wall; a rotating assembly, the rotating assembly being located on one side of the bottom wall, and being used to accommodate a first main board between the rotating assembly and the bottom wall; The rotating assembly is rotatably connected to the box body, and the rotating assembly is configured to be able to rotate along a first rotation direction to move away from the bottom wall, and to rotate along a second rotation direction to move closer to the bottom wall, wherein the first rotation direction is opposite to the second rotation direction; The rotating assembly is used to fix the second main board.