Case structure and processing equipment
By using a support beam structure in the chassis, the problems of poor protection and looseness of the graphics card are solved, ensuring reliable fixation and performance of the graphics card, and simplifying the assembly process.
Patent Information
- Application Number
- CN202520338266.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-28
- Publication Date
- 2026-02-10
- Estimated Expiration
- 2035-02-28
AI Technical Summary
Existing computer cases offer poor protection for graphics cards, which are prone to loosening during transportation and handling, leading to damage and affecting performance.
The system adopts a support beam structure, with both ends of the support beam being respectively clipped to the first and second side panels of the chassis, and fixed to the end of the graphics card away from the side panel through a connecting part. The graphics card can be plugged into and installed on the main control board, and the support beam provides reliable support for the graphics card.
The chassis structure is strengthened to prevent the graphics card from becoming loose, avoid damage to the graphics card, ensure the performance of the graphics card, and simplify the assembly process.
Smart Images

Figure CN223897839U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of industrial control computer technology, and in particular to a chassis structure and processing equipment. Background Technology
[0002] A graphics card, also known as a video card, is one of the most basic and important components of a computer. As a crucial part of the computer's main unit, the graphics card is responsible for converting digital signals to analog signals and outputting graphics for display. The performance of the graphics card directly affects the computer's overall performance.
[0003] The graphics card is located inside the computer case, typically plugged directly into the motherboard. Currently, graphics cards are relatively expensive and heavy. Since the case offers poor protection for the heavy graphics card, it's prone to loosening during transport and handling, which can damage it and render it unusable. Utility Model Content
[0004] Therefore, it is necessary to provide a chassis structure and processing equipment that can improve the overall structural strength of the machine and fix the graphics card in order to address the problems of poor protection of graphics cards and easy loosening of graphics cards in current chassis.
[0005] A chassis structure for mounting a graphics card of a processing device, the chassis structure comprising:
[0006] The enclosure includes a base plate and a first side plate and a second side plate disposed opposite to the base plate; and
[0007] A support beam is provided in the box body, and the two ends of the support beam are respectively secured to the first side plate and the second side plate;
[0008] The supporting beam is provided with a connecting part for connecting to the end of the graphics card away from the second side plate.
[0009] The chassis structure of this application includes a support beam housed within the chassis. One end of the support beam is secured to the first side panel of the chassis, and the other end is secured to the second side panel, thus supporting the chassis. The support beam also features a connecting portion. A graphics card is housed within the chassis and is pluggably mounted to the main control board of the processing device. The end of the graphics card facing away from the second side panel is fixedly connected to the connecting portion, thus securing the graphics card to the support beam.
[0010] The support beam supports the first side plate and the second side plate, thereby improving the structural strength of the box body and the protection of the graphics card. Meanwhile, the end of the graphics card away from the second side plate is connected with the connecting part, so that the graphics card is fixed to the support beam, and the graphics card is reliably supported by the support beam, avoiding loosening of the graphics card relative to the box body and damage of the graphics card, and ensuring the use performance of the graphics card. Moreover, the support beam is reliably connected with the first side plate and the second side plate in a clamping manner, and has simple structure and low cost, facilitating assembly.
[0011] In an embodiment of the present application, one end of the support beam has a clamping part, and the other end has a plug-in part.
[0012] The support beam is clamped to the first side plate through the clamping part and clamped to the second side plate through the plug-in part.
[0013] In this way, the clamping connection of the support beam with the first side plate and the second side plate can be facilitated.
[0014] In an embodiment of the present application, the support beam comprises a beam main body and a clamping part arranged at one end of the beam main body.
[0015] The first side plate has a first cavity and a first mounting hole penetrating to the first cavity, and the clamping part is installed in the first cavity through the first mounting hole, so that the clamping part is clamped to the first side plate.
[0016] In this way, the clamping and fixing of the support side plate and the first side plate can be achieved.
[0017] In an embodiment of the present application, the clamping part comprises a bending part and a limiting part, the bending part is bent relative to the beam main body and extends towards the direction of the bottom plate, and the limiting part is arranged at one end of the bending part away from the beam main body and extends towards the direction away from the beam main body.
[0018] The limiting part is located in the first cavity, and the bending part is clamped in the first mounting hole.
[0019] In this way, reliable clamping of the clamping part and the first side plate can be achieved.
[0020] In an embodiment of the present application, the clamping part further comprises a limiting protrusion, the limiting protrusion is protruded from the limiting part and located on the surface of the limiting part away from the bottom plate, and the limiting protrusion can abut against the top wall of the first cavity.
[0021] The number of the limiting protrusions is one or at least two, and the at least two limiting protrusions are arranged at intervals along the extension direction of the first side plate.
[0022] Thus, the upward movement and rotation of the support beam can be limited.
[0023] In an embodiment of the present application, the support beam comprises a beam body and a plug-in part arranged at the other end of the beam body, the plug-in part is bent relative to the beam body and extends towards the direction of the bottom plate;
[0024] The second side plate has a second cavity and a second mounting hole penetrating to the second cavity, the plug-in part is installed in the second cavity through the second mounting hole, so that the plug-in part is clamped in the second side plate.
[0025] Thus, the clamping and fixing of the support beam and the second side plate can be realized.
[0026] In an embodiment of the present application, the support beam comprises a beam body and a first baffle and a second baffle arranged opposite to the beam body, the first baffle and the second baffle are located between the first side plate and the second side plate;
[0027] At least one of the first baffle and the second baffle is connected with the graphics card.
[0028] Thus, the connection of the graphics card and the support beam can be realized.
[0029] In an embodiment of the present application, the case structure further comprises a fastener, the connecting part is a plurality of adjusting holes arranged on the first baffle and / or the second baffle, a plurality of the adjusting holes are arranged staggered along the connecting line direction of the first side plate and the second side plate, and / or a plurality of the adjusting holes are arranged staggered along the connecting line direction of the support beam and the bottom plate, the fastener is installed on the graphics card through one of the adjusting holes;
[0030] And / or, the first baffle and / or the second baffle has a plurality of heat dissipation holes arranged in rows and / or columns.
[0031] Thus, the fixation of graphics cards of different sizes can be realized, and the heat dissipation of the graphics card is facilitated.
[0032] In an embodiment of the present application, the case structure further comprises a cover plate, the cover plate is arranged on the case and abuts against the support beam, the cover plate can limit the support beam in the direction away from the bottom plate;
[0033] And / or, the surface of the first side plate towards the second side plate has a first recess part, the support beam is clamped on the first side plate at the first recess part;
[0034] And / or, a surface of the second side plate towards the first side plate has a second recess, and the support beam is clamped in the second side plate at the second recess;
[0035] And / or, the case structure further comprises an unlocking component, the unlocking component extends along a line direction of the bottom plate and the support beam, the support beam has a guide portion, the unlocking component movably penetrates the guide portion to abut a lock structure of the processing device, so that the graphics card can be pulled out.
[0036] In this way, the upward movement of the support beam can be prevented, and the support beam is limited in the width direction, so that the graphics card can be unlocked.
[0037] A processing device, comprising a graphics card, a main control board, and the case structure according to any one of the above technical features.
[0038] The main control board is arranged at the bottom of the case structure, the graphics card is arranged in the case structure, and the graphics card is plug-in installed in the graphics card, and the graphics card is further connected to the support beam of the case structure.
[0039] The processing device of the present application adopts the case structure described above, so that the structural strength of the whole machine can be improved, and the fixation of the graphics card is facilitated. BRIEF DESCRIPTION OF DRAWINGS
[0040] Figure 1 It is a schematic view of the case structure of an embodiment of the present application.
[0041] Figure 2 It is a schematic view of the case structure of an embodiment of the present application. Figure 1
[0042] Figure 3 It is a sectional view of the case structure shown in FIG. 1 at A-A. Figure 2
[0043] Figure 4 It is an exploded schematic view of the case structure shown in FIG. 1 cooperating with the graphics card and the main control board. Figure 1
[0044] Figure 5 It is a schematic view of the case structure shown in FIG. 1 cooperating with the graphics card without the cover plate. Figure 1
[0045] Figure 6 It is a partial enlarged view of the case structure shown in FIG. 1 at B. Figure 3
[0046] Figure 7 It is a partial enlarged view of the case structure shown in FIG. 1 at C. Figure 3
[0047] Figure 8 It is a partial enlarged view of the case structure shown in FIG. 1 at C.Figure 4 schematic view of the support beam in the chassis structure from another perspective.
[0048] Figure 9 for Figure 8 partial enlarged view of the support beam at D.
[0049] Figure 10 for Figure 4 schematic view of the cabinet in the chassis structure.
[0050] Figure 11 for Figure 10 partial enlarged view of the cabinet at E.
[0051] Figure 12 for Figure 8 schematic view of the support beam from another perspective.
[0052] Figure 13 for Figure 12 partial enlarged view of the support beam at F.
[0053] Figure 14 for Figure 10 partial enlarged view of the cabinet at G.
[0054] Figure 15 for Figure 5 schematic view of the unlocking component cooperating with the main control board in the chassis structure.
[0055] Figure 16 for Figure 15 enlarged view of the unlocking component cooperating with the main control board.
[0056] Figure 17 for Figure 15 schematic view of the unlocking component cooperating with the support beam from one perspective.
[0057] Figure 18 for Figure 15 schematic view of the unlocking component cooperating with the support beam from another perspective.
[0058] Wherein: 100, case structure; 110, box body; 111, bottom plate; 112, first side plate; 1121, first cavity; 1122, first mounting hole; 1123, first recess; 113, second side plate; 1131, second cavity; 1132, second mounting hole; 1133, second recess; 120, support cross beam; 121, clamping part; 1211, bending part; 1212, limiting part; 1213, limiting protrusion; 122, plug-in part; 123, cross beam main body; 124, first baffle; 1241, adjusting hole; 1242, heat dissipation hole; 125, second baffle; 126, guide part; 130, fastener; 140, cover plate; 150, unlocking part; 200, display card; 300, main control board; 400, lock catch structure. DETAILED DESCRIPTION
[0059] In order to make the above objectives, characteristics and advantages of the present application more apparent, a detailed description of the specific embodiments of the present application will be given below with reference to the drawings. In the following description, a large number of specific details are set forth in order to provide a sufficient understanding of the present application. However, the present application can be implemented in many different ways other than those described herein, and those skilled in the art can make similar improvements without departing from the spirit of the present application, so the present application is not limited to the specific embodiments disclosed below.
[0060] In the description of the present application, it should be understood that if these terms "center", "longitudinal", "transverse", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", "axial", "radial", "circumferential" and the like appear, these terms indicate the orientation or positional relationship based on the orientation or positional relationship shown in the drawings, and are only for the purpose of facilitating the description of the present application and simplifying the description, and therefore cannot be understood as indicating or implying that the device or element referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as limiting the present application.
[0061] In addition, if these terms "first", "second" appear, these terms are only for the purpose of description, and cannot be understood as indicating or implying relative importance or implicitly indicating the number of technical features indicated. Therefore, the features limited by "first", "second" can explicitly or implicitly include at least one of the features. In the description of the present application, if the term "multiple" appears, the meaning of "multiple" is at least two, for example, two, three, etc., unless otherwise explicitly specified.
[0062] In the present application, unless specifically defined and limited otherwise, if there are terms such as "mounting", "connecting", "connecting", "fixing" and the like, these terms should be understood in a broad sense. For example, it can be fixedly connected, or it can be detachably connected, or it can be integrated; it can be mechanically connected, or it can be electrically connected; it can be directly connected, or it can be indirectly connected through an intermediate medium; it can be the internal communication of two elements or the interaction relationship between two elements, unless otherwise specifically limited. For those skilled in the art, the specific meaning of the above terms in the present application can be understood according to the specific circumstances.
[0063] In the present application, unless specifically defined and limited otherwise, if there are terms such as "mounting", "connecting", "connecting", "fixing" and the like, these terms should be understood in a broad sense. For example, it can be fixedly connected, or it can be detachably connected, or it can be integrated; it can be mechanically connected, or it can be electrically connected; it can be directly connected, or it can be indirectly connected through an intermediate medium; it can be the internal communication of two elements or the interaction relationship between two elements, unless otherwise specifically limited. For those skilled in the art, the specific meaning of the above terms in the present application can be understood according to the specific circumstances.
[0064] It should be noted that if an element is referred to as "fixed to" or "disposed on" another element, it can be directly on another element or there can be a middle element. If an element is considered to be "connected" to another element, it can be directly connected to another element or there can be a middle element. If present, the terms "vertical", "horizontal", "up", "down", "left", "right" and similar expressions used in the present application are for illustrative purposes only and are not the only embodiment.
[0065] It can be understood that the graphics card, also known as the display card, is one of the most basic configurations and the most important accessories of the computer. As an important part of the computer host, the graphics card is a device for digital-to-analog signal conversion and undertakes the task of outputting display graphics. The installation effect of the graphics card directly affects the use performance of the computer.
[0066] The graphics card is located in the computer case. Usually, the graphics card is directly plugged and set on the main control board. At present, the price of the graphics card is relatively high, and the weight is relatively heavy. Usually, the graphics card is directly plugged and set on the main control board. The case has poor protection for the heavy graphics card, and the graphics card is prone to looseness during transportation and handling, which may cause damage to the graphics card and make the graphics card unable to be used normally.
[0067] Therefore, referring to Figures 1 to 3 The present application provides a case structure 100. Figure 1 The schematic diagram of the case structure 100 of an embodiment of the present application,Figure 2 for Figure 1 The top view of the chassis structure 100 shown is as follows. Figure 3 for Figure 2 The diagram shows a cross-sectional view of the chassis structure 100 at point AA. This chassis structure 100 is used in a processing device (not shown), which primarily refers to a computing device including a graphics card 200, such as a computer. Of course, in other embodiments of this application, this chassis structure 100 can also be used in a device including a graphics card 200.
[0068] The chassis structure 100 of this application uses a support beam 120 to securely connect the first side panel 112 and the second side panel 113. In this way, the support beam 120 supports the first side panel 112 and the second side panel 113, thereby increasing the structural strength of the chassis 110 and enhancing its protective function for the graphics card 200. Simultaneously, the end of the graphics card 200 facing away from the second side panel 113 is fixed to the support beam 120, which reliably supports the graphics card 200, preventing it from loosening relative to the chassis 110, avoiding damage, and ensuring the performance of the graphics card 200. Furthermore, the support beam 120 is reliably connected to the first side panel 112 and the second side panel 113 through a snap-fit method, resulting in a simple structure, low cost, and ease of assembly.
[0069] To better illustrate the specific structure of chassis structure 100, a brief introduction to the structure of the processing equipment is provided below. See [link / reference] Figure 3 and Figure 4 , Figure 4 for Figure 1 The diagram shown is an exploded view of the chassis structure 100 in conjunction with the graphics card 200 and the main control board 300. The processing device includes the graphics card 200, the main control board 300, and the chassis structure 100 of this application. The main control board 300 is disposed in the chassis structure 100 and located at the bottom of the chassis structure 100. The graphics card 200 is located in the chassis structure 100 and is pluggably installed into the main control board 300 for electrical connection with the main control board 300. The chassis structure 100 can protect the graphics card 200 and the main control board 300 to ensure the performance of the graphics card 200 and the main control board 300.
[0070] It is worth noting that the focus of this application is on the specific structure of the chassis structure 100. The structure and working principle of the graphics card 200 and the main control board 300 will not be described in this application, and other structures of the processing equipment will also not be described.
[0071] See Figures 1 to 5In one embodiment, the chassis structure 100 includes a chassis 110 and a supporting beam 120. The chassis 110 includes a base plate 111 and a first side plate 112 and a second side plate 113 disposed opposite to each other on the base plate 111. The supporting beam 120 is disposed in the chassis 110, and its two ends are respectively engaged with the first side plate 112 and the second side plate 113. The supporting beam 120 has a connecting portion for connecting to the end of the graphics card 200 opposite to the second side plate 113. Figure 5 for Figure 1 The diagram shows the chassis structure 100 and the graphics card 200 with the cover plate 140 removed.
[0072] The enclosure 110 is the outer shell of the chassis structure 100. The enclosure 110 is hollow, and all the components of the processing equipment are housed within it. The enclosure 110 protects these components to ensure its structural strength. A support beam 120 is located within the enclosure 110 and connects to two opposite side plates of the enclosure 110, providing support for the enclosure 110.
[0073] Specifically, the enclosure 110 includes a base plate 111 and a first side plate 112 and a second side plate 113 disposed opposite to each other on the base plate 111. The first side plate 112 and the second side plate 113 are spaced apart along the length of the enclosure structure 100. It is worth noting that the enclosure 110 may also include side plates in other directions and / or outer shells, etc., which will not be described in detail in this application.
[0074] like Figures 3 to 5 As shown, the left-right direction of the chassis structure 100 is the length direction, the front-back direction is the width direction, and the up-down and top-bottom directions are the height directions. These length, width, and height directions apply to the processing equipment, the chassis structure 100, and its various components, and will not be elaborated further below.
[0075] A support beam 120 is disposed along the length of the housing 110, and is located above the first side plate 112 and the second side plate 113. One end of the support beam 120 is engaged with the first side plate 112, and the other end of the support beam 120 is engaged with the second side plate 113. The support beam 120 has sufficient strength and rigidity, so that it can support the first side plate 112 and the second side plate 113, thereby improving the structural strength of the housing 110.
[0076] The graphics card 200 is generally heavy. During the transportation of the processing equipment, the supporting beam 120 can improve the structural strength of the cabinet 110 and prevent the first side plate 112 and the second side plate 113 from deforming. This allows the cabinet 110 to protect the graphics card 200, the main control board 300 and other components of the processing equipment, thus ensuring the performance of the processing equipment.
[0077] Furthermore, the support beam 120 is engaged with the first side plate 112 and the second side plate 113 by snap-fitting. This not only ensures that the support beam 120 is reliably fixed to the first side plate 112 and the second side plate 113, but also simplifies the connection structure between the support beam 120 and the first side plate 112 and the second side plate 113, reduces the complexity of the structure, and facilitates assembly.
[0078] Meanwhile, the support beam 120 is provided with a connecting part, after which the graphics card 200 can be plugged and detached and installed on the main control board 300. The end of the graphics card 200 that is away from the second side plate 113 is the end of the graphics card 200, which can be connected to the connecting part to fix the graphics card 200 to the support beam 120. The support beam 120 provides reliable support for the graphics card 200, preventing the graphics card 200 from moving during the transportation of the processing equipment, ensuring the accuracy of the cooperation between the graphics card 200 and the main control board 300, and ensuring the performance of the graphics card 200.
[0079] The chassis structure 100 of the above embodiment supports the first side panel 112 and the second side panel 113 through the support beam 120, thereby improving the structural strength of the chassis 110 and enhancing its protective function for the graphics card 200. Simultaneously, the end of the graphics card 200 facing away from the second side panel 113 is connected to the connecting part, fixing the graphics card 200 to the support beam 120. The support beam 120 reliably supports the graphics card 200, preventing it from loosening relative to the chassis 110, avoiding damage to the graphics card 200, and ensuring its performance.
[0080] Furthermore, the support beam 120 is reliably connected to the first side plate 112 and the second side plate 113 by a snap-fit method, eliminating the need for a complex connection structure. This simplifies the fit between the support beam 120 and the housing 110, reduces the cost of fixing the graphics card 200, and facilitates assembly.
[0081] See Figures 3 to 7 In one embodiment, the supporting beam 120 has a snap-fit portion 121 at one end and a plug-in portion 122 at the other end. The supporting beam 120 is snapped onto the first side plate 112 via the snap-fit portion 121 and onto the second side plate 113 via the plug-in portion 122. Figure 6 for Figure 3 The diagram shows a partial enlarged view of the chassis structure 100 at point B. Figure 7 for Figure 3 A magnified view of the chassis structure 100 at point C.
[0082] The supporting beam 120 has a snap-fit part 121 at one end facing the first side plate 112 and a plug-in part 122 at the other end facing the second side plate 113. In this way, the supporting beam 120 is snapped into the first side plate 112 through the snap-fit part 121 and snapped into the second side plate 113 through the plug-in part 122, thereby achieving the snap-fit fixation between the supporting beam 120 and the box body 110.
[0083] When installing the support beam 120, the snap-fit part 121 of the support beam 120 is installed into the first side plate 112, and then the support beam 120 is rotated so that the plug-in part 122 can be installed into the second side plate 113. In this way, the support beam 120 can support the cabinet 110, and at the same time, it can be snapped into the first side plate 112 and the second side plate 113, which facilitates the support beam 120 in fixing the graphics card 200.
[0084] In other embodiments of this application, both ends of the supporting beam 120 may also have snap-fit portions 121, and the two ends of the supporting beam 120 may engage with the first side plate 112 and the second side plate 113 by snap-fit. For example, the snap-fit portion 121 may be a buckle, and the first side plate 112 and the second side plate 113 may have slots corresponding to the snap-fit portion 121. Alternatively, the snap-fit portion 121 may be a slot, and the first side plate 112 and the second side plate 113 may have buckles corresponding to the slots. The supporting beam 120 may be connected by the snap-fit of the buckles and the slots, thereby achieving the snap-fit fixation between the supporting beam 120 and the first side plate 112 and the second side plate 113.
[0085] In other embodiments of this application, both ends of the support beam 120 may be provided with insertion portions 122, and the first side plate 112 and the second side plate 113 may be provided with slots that cooperate with the insertion portions 122. The support beam 120 may be inserted and fixed to the first side plate 112 and the second side plate 113 through the insertion portions 122; or, the support beam 120 and the first side plate 112 and the second side plate 113 may be other structural forms that can achieve snap-fit connection.
[0086] See Figures 3 to 6 , Figures 8 to 11 In one embodiment, the supporting beam 120 includes a beam body 123 and a snap-fit portion 121 disposed at one end of the beam body 123. The first side plate 112 has a first cavity 1121 and a first mounting hole 1122 extending into the first cavity 1121. The snap-fit portion 121 passes through the first mounting hole 1122 and is installed in the first cavity 1121 so that the snap-fit portion 121 snaps onto the first side plate 112. Figure 8 for Figure 4 The diagram shown is a schematic representation of the supporting beam 120 in the chassis structure 100 from one perspective. Figure 9 for Figure 8 The diagram shows a partial enlarged view of the supporting beam 120 at point D.Figure 10 for Figure 4 The diagram shows the enclosure 110 in the chassis structure 100. Figure 11 for Figure 10 The enlarged view of the box 110 at point E is shown.
[0087] The main body 123 is the main component supporting the crossbeam 120. The main body 123 extends along the length direction and is located between the first side plate 112 and the second side plate 113. The snap-fit part 121 is provided at the end of the main body 123 facing the first side plate 112. Furthermore, the first side plate 112 is hollow, and the cavity inside the first side plate 112 is a first cavity 1121. The first side plate 112 also has a first mounting hole 1122, which is located at the top of the first side plate 112 and extends through the first cavity 1121.
[0088] In other words, the first mounting hole 1122 penetrates the wall of the first side plate 112 and connects to the first cavity 1121. Thus, the snap-fit part 121 can pass through the first mounting hole 1122 and be installed into the first cavity 1121. At this time, the inner wall of the first mounting hole 1122 can engage the snap-fit part 121. Therefore, through the cooperation between the first cavity 1121 and the first mounting hole 1122, the snap-fit part 121 and the first side plate 112 can be snapped and fixed, so that the support beam 120 is snapped and connected to the first side plate 112.
[0089] See Figure 3 , Figure 6 , Figures 8 to 11 In one embodiment, the engaging portion 121 includes a bent portion 1211 and a limiting portion 1212. The bent portion 1211 is bent relative to the crossbeam body 123 and extends toward the base plate 111. The limiting portion 1212 is disposed at the end of the bent portion 1211 opposite to the crossbeam body 123 and extends in a direction opposite to the crossbeam body 123. The limiting portion 1212 is located in the first cavity 1121, and the bent portion 1211 is engaged in the first mounting hole 1122.
[0090] The bent portion 1211 is bent relative to the main body 123 of the crossbeam, and the bent portion 1211 bends toward the base plate 111. The limiting portion 1212 is connected to the bent portion 1211 and extends away from the main body 123 of the crossbeam. In this way, the bent portion 1211 can bend to connect the limiting portion 1212 and the main body 123 of the crossbeam, so that the main body 123 of the crossbeam and the limiting portion 1212 are offset in the height direction.
[0091] When the snap-fit part 121 is installed onto the first side plate 112, the limiting part 1212 can pass through the first mounting hole 1122 and be installed into the first cavity 1121. Simultaneously, the bent part 1211 is located in the first mounting hole 1122 and can be snapped against the inner wall of the first mounting hole 1122, and is limited in the first cavity 1121 by the limiting part 1212. Thus, the bent part 1211 and the limiting part 1212 form the snap-fit part 121, allowing the snap-fit part 121 to be snapped into the first mounting hole 1122.
[0092] In this embodiment, the limiting part 1212, the bending part 1211, and the main body 123 of the crossbeam are arranged with Z-shaped folds. This allows the Z-shaped folds to engage with the first mounting hole 1122, thus achieving a snap-fit connection between the snap-fit part 121 and the first side plate 112. Alternatively, the limiting part 1212 and the snap-fit part 121 can also be formed into a shape similar to a hook or other shapes that can engage with the first mounting hole 1122.
[0093] In this embodiment, the main body 123, the bent portion 1211, and the limiting portion 1212 are plate-shaped to ensure the structural strength of the supporting beam 120. Of course, in other embodiments of this application, the main body 123, the bent portion 1211, and the limiting portion 1212 may also be a frame structure, an I-beam shape, or other shapes.
[0094] See Figure 3 , Figure 6 , Figure 8 and Figure 9 In one embodiment, the snap-fit portion 121 further includes a limiting protrusion 1213, which protrudes from the limiting portion 1212 and is located on the surface of the limiting portion 1212 opposite to the bottom plate 111. The limiting protrusion 1213 can abut against the top wall of the first cavity 1121. The number of limiting protrusions 1213 is one or at least two, and at least two limiting protrusions 1213 are arranged at intervals along the extending direction of the first side plate 112.
[0095] A limiting protrusion 1213 protrudes from the upper surface of the limiting part 1212. After the supporting beam 120 is installed in place, the limiting part 1212 is installed into the first cavity 1121, and the limiting protrusion 1213 can abut against the top wall of the first cavity 1121. In this way, the limiting protrusion 1213 can limit the movement of the limiting part 1212 away from the base plate 111, preventing the supporting beam 120 from moving upward, so that the supporting beam 120 can reliably fix the graphics card 200.
[0096] Furthermore, in this embodiment, there are two limiting protrusions 1213, which are spaced apart along the width direction. When the support beam 120 is installed in place, the two limiting protrusions 1213 can abut against the top wall of the first cavity 1121. Through the friction and clamping force of the two limiting protrusions 1213 contacting the top wall of the first cavity 1121, the rotation of the support beam 120 relative to the first side plate 112 can be restricted, ensuring that the support beam 120 is accurately fixed in the corresponding position.
[0097] Of course, in other embodiments of this application, the number of limiting protrusions 1213 may be one or more. When there are more limiting protrusions 1213, the more limiting protrusions 1213 can be spaced apart in the width direction and / or length direction.
[0098] See 4. Figure 5 , Figure 10 and Figure 11 In one embodiment, the surface of the first side plate 112 facing the second side plate 113 has a first recess 1123, and the support beam 120 is engaged with the first side plate 112 at the first recess 1123. That is, the first side plate 112 is recessed at the engaging portion 121 of the support beam 120 to form the first recess 1123.
[0099] The first mounting hole 1122 is located in the first recess 1123. One end of the support beam 120 extends into the first recess 1123 so that the snap-fit part 121 can snap into the first mounting hole 1122 in the first recess 1123. At the same time, the first recess 1123 can also limit the support beam 120 in the width direction to prevent the support beam 120 from moving in the width direction.
[0100] See Figures 3 to 7 , Figure 10 , Figures 12 to 14 In one embodiment, the supporting beam 120 includes a beam body 123 and a connector 122 disposed at the other end of the beam body 123. The connector 122 is bent relative to the beam body 123 and extends toward the base plate 111. The second side plate 113 has a second cavity 1131 and a second mounting hole 1132 extending into the second cavity 1131. The connector 122 passes through the second mounting hole 1132 and is installed in the second cavity 1131 so that the connector 122 is engaged with the second side plate 113. Figure 12 for Figure 8 The diagram shown is a schematic representation of the support beam 120 from another perspective. Figure 13 for Figure 12 The enlarged view of the supporting beam 120 at point F is shown. Figure 14 for Figure 10 The enlarged view of the box 110 at point G is shown.
[0101] A plug-in portion 122 is provided at one end of the crossbeam body 123 away from the snap-fit portion 121, and the plug-in portion 122 is located at the end of the crossbeam body 123 facing the second side plate 113. Furthermore, the second side plate 113 is also hollow, with a cavity inside the second side plate 1131. The second side plate 113 also has a second mounting hole 1132, which is located at the top of the second side plate 113 and extends into the second cavity 1131.
[0102] In other words, the second mounting hole 1132 penetrates the wall of the second side plate 113 and connects to the second cavity 1131. Thus, the insertion part 122 can pass through the second mounting hole 1132 and be installed into the second cavity 1131. At this time, the inner wall of the second mounting hole 1132 can engage the insertion part 122. Therefore, the engagement between the second cavity 1131 and the second mounting hole 1132 enables the insertion part 122 to be fixed to the second side plate 113, thereby connecting the support beam 120 to the second side plate 113.
[0103] Furthermore, the insertion part 122 extends toward the base plate 111, that is, the insertion part 122 is arranged perpendicularly to the main body of the crossbeam 123. In this way, after the insertion part 122 is inserted into the second mounting hole 1132, the insertion part 122 can fit against the side wall of the second cavity 1131 to limit the movement of the support crossbeam 120 along the length direction.
[0104] See Figure 4 , Figure 5 , Figure 10 and Figure 14 In one embodiment, the surface of the second side plate 113 facing the second side plate 113 has a second recess 1133, and the support beam 120 is engaged with the second side plate 113 in the second recess 1133. That is, the second side plate 113 is recessed at the insertion portion 122 of the support beam 120 to form the second recess 1133.
[0105] The second mounting hole 1132 is located in the second recess 1133. One end of the support beam 120 extends into the second recess 1133 so that the insertion part 122 can engage with the second mounting hole 1132 in the second recess 1133. At the same time, the second recess 1133 can also limit the support beam 120 in the width direction to prevent the support beam 120 from moving in the width direction.
[0106] In one embodiment, the main body 123 of the crossbeam, the snap-fit portion 121, and the insertion portion 122 are integrally formed. In this way, the main body 123 of the crossbeam, the snap-fit portion 121, and the insertion portion 122 can be formed by bending to improve the structural strength of the supporting crossbeam 120, prevent the snap-fit portion 121 and the insertion portion 122 from breaking at the bending point, and ensure the structural strength of the supporting crossbeam 120.
[0107] When assembling the support beam 120 with the housing 110, the snap-fit portion 121 at one end of the support beam 120 is aligned with the first mounting hole 1122 of the first side plate 112 and inserted obliquely into the first mounting hole 1122. Then, the other end of the support beam 120 is rotated, allowing the support beam 120 to rotate relative to the first side plate 112 via the snap-fit portion 121, so that the insertion portions 122 are close to the second side plate 113. The insertion portions 122 are then installed into the second mounting hole 1132. In this way, the support beam 120 is snapped onto the first side plate 112 via the snap-fit portion 121 and connected to the second side plate 113 via the insertion portions 122, thus achieving the assembly of the support beam 120 with the housing 110.
[0108] The support beam 120 of this application restricts the movement of the support beam 120 along its length direction through the engagement of the snap-fit part 121 with the first mounting hole 1122 and the engagement of the plug-in part 122 with the second mounting hole 1132. The limiting protrusion 1213 restricts the upward movement and rotation of the support beam 120, and the first recess 1123 and the second recess 1133 limit the width direction of the support beam 120. In this way, the support beam 120 can be reliably fixed to the first side plate 112 and the second side plate 113, preventing the position of the support beam 120 from shifting, thereby facilitating the fixation of the graphics card 200.
[0109] See Figure 4 , Figure 8 and Figure 12 In one embodiment, the supporting beam 120 includes a beam body 123 and a first baffle 124 and a second baffle 125 disposed opposite to each other on the beam body 123. The first baffle 124 and the second baffle 125 are located between the first side plate 112 and the second side plate 113. At least one of the first baffle 124 and the second baffle 125 is connected to the graphics card 200.
[0110] The first baffle 124 and the second baffle 125 are located on both sides of the crossbeam body 123 in the width direction. The first baffle 124 and the second baffle 125 extend in the length direction and are bent relative to the crossbeam body 123 toward the bottom plate 111. In this way, the first baffle 124 and the second baffle 125 can strengthen the structure of the crossbeam body 123 to improve the rigidity and strength of the supporting crossbeam 120.
[0111] Simultaneously, the first baffle 124, the second baffle 125, the snap-fit part 121, and the plug-in part 122 are bent relative to the main body 123 of the crossbeam to adjust the structural strength of the supporting crossbeam 120 and partially limit the graphics card 200, thereby achieving the initial limiting of the graphics card 200. Then, the graphics card 200 is connected to the first baffle 124 and / or the second baffle 125 to fix the graphics card 200 at its end.
[0112] In this way, the end of the graphics card 200 is fixed to the support beam 120 by the first baffle 124 and / or the second baffle 125. The support beam 120 fixes the end of the graphics card 200, preventing damage to the graphics card 200 during transportation and ensuring the performance of the processing equipment.
[0113] In this embodiment, the graphics card 200 is fixed to the first baffle 124. Of course, in other embodiments of this application, the graphics card 200 may also be fixed to the second baffle 125, or fixed to both the first baffle 124 and the second baffle 125.
[0114] See Figure 4 and Figure 5 In one embodiment, the chassis structure 100 further includes a fastener 130, which is installed onto the graphics card 200 through the connection portion of the support beam 120. In this way, the fastener 130 can fix the end of the graphics card 200 to the support beam 120, thereby securing the end of the graphics card 200 to prevent damage during transportation and ensuring the performance of the processing equipment.
[0115] See Figure 4 and Figure 5 In one embodiment, the connecting part is a plurality of adjustment holes 1241 provided on the first baffle 124 and / or the second baffle 125. The plurality of adjustment holes 1241 are staggered along the line connecting the first side plate 112 and the second side plate 113, and / or the plurality of adjustment holes 1241 are staggered along the line connecting the support beam 120 and the base plate 111. The fastener 130 passes through one of the adjustment holes 1241 and is installed on the graphics card 200.
[0116] In other words, the graphics card 200 is fixed to the first baffle 124 and / or the second baffle 125 by fasteners 130. Adjustment holes 1241 are provided on the first baffle 124 and the second baffle 125, arranged along the height and / or length directions. Thus, the fasteners 130 can pass through the corresponding adjustment holes 1241 and be installed onto the graphics card 200. In this way, graphics cards 200 of different sizes can be fixed to the support beam 120 by the cooperation of the fasteners 130 and the adjustment holes 1241, increasing the application range of the support beam 120.
[0117] See Figure 4 andFigure 5 In one embodiment, the adjustment hole 1241 is an elongated hole. This allows the fastener 130 to move along the adjustment hole 1241 to accommodate adjustment holes 1241 of different sizes. Of course, in other embodiments of this application, the connecting part may also be a snap-fit device or the like provided on the first baffle 124 and / or the second baffle 125, which connects to the graphics card 200 via the snap-fit device or the like, thus fixing the graphics card 200 to the support beam 120.
[0118] See Figure 5 and Figure 8 In one embodiment, the first baffle 124 and / or the second baffle 125 have a plurality of heat dissipation holes 1242 arranged in rows and / or columns. It is understood that the graphics card 200 generates heat during operation, and the heat dissipation holes 1242 can accelerate the cooling of the graphics card 200, preventing any impact on its performance.
[0119] In this embodiment, the first baffle 124 is provided with heat dissipation holes 1242 arranged in rows and columns, and the first baffle 124 is also provided with adjustment holes 1241. Meanwhile, the second baffle 125 has a smaller height to avoid obstructing the graphics card 200, facilitating its assembly. Of course, in other embodiments of this application, the second baffle 125 may also be provided with heat dissipation holes 1242 and adjustment holes 1241.
[0120] In one embodiment, the main body 123 of the crossbeam, the first baffle 124, and the second baffle 125 are integrally formed. In this way, the main body 123 of the crossbeam, the first baffle 124, and the second baffle 125 are integrally formed by bending, which improves the structural strength of the supporting crossbeam 120.
[0121] See Figure 3 and Figure 4 In one embodiment, the chassis structure 100 further includes a cover plate 140, which covers the chassis 110 and abuts against the support beam 120. The cover plate 140 can limit the support beam 120 in the direction away from the bottom plate 111. The cover plate 140 covers the top of the chassis 110, and the cover plate 140 and the chassis 110 enclose a closed space to protect the graphics card 200 and the main control board 300, etc.
[0122] Meanwhile, the cover plate 140 is placed over the housing 110, and the lower surface of the cover plate 140 can abut against the upper surface of the support beam 120. In this way, the cover plate 140 can press against the support beam 120, preventing the support beam 120 from moving upward, ensuring that the support beam 120 is reliably fixed to the housing 110, thereby achieving reliable fixation of the graphics card 200.
[0123] See Figure 4 , Figure 5 , Figures 15 to 18In one embodiment, the chassis structure 100 further includes an unlocking component 150, which extends along the line connecting the base plate 111 and the support beam 120. The support beam 120 has a guide portion 126, and the unlocking component 150 movably passes through the guide portion 126 to abut against the locking structure 400 of the processing device, so that the graphics card 200 can be pulled out from the main control board 300. Figure 15 for Figure 5 The diagram shows the interaction between the unlocking component 150 and the main control board 300 in the chassis structure 100. Figure 16 for Figure 15 An enlarged view showing the unlocking component 150 in conjunction with the main control board 300. Figure 17 for Figure 15 The diagram shown illustrates the engagement of the unlocking component 150 and the support beam 120 from one viewpoint. Figure 18 for Figure 15 The diagram shows the unlocking component 150 and the support beam 120 in cooperation from another perspective.
[0124] Understandably, the graphics card 200 is installed onto the main control board 300 via a pluggable design. To ensure reliable installation of the graphics card 200 onto the main control board 300, a locking structure 400 is typically provided on the main control board 300. This locking structure 400 is existing technology and will not be described here. After the graphics card 200 is inserted into the main control board 300, the locking structure 400 locks the graphics card 200 in place, preventing it from accidentally detaching from the main control board 300, thus ensuring the performance of both the graphics card 200 and the main control board 300.
[0125] When it is necessary to remove the graphics card 200, the locking structure 400 is pressed to unlock the graphics card 200, and then the graphics card 200 can be pulled out from the main control board 300. However, the bottom space of the graphics card 200 is generally small, making it inconvenient for the operator to press the locking structure 400 with their fingers. Therefore, this application provides a movable unlocking component 150 on the support beam 120. When unlocking is required, the operator presses the locking structure 400 through the unlocking component 150. At this time, the locking structure 400 can unlock the graphics card 200, and then the graphics card 200 can be pulled out from the main control board 300.
[0126] Specifically, the unlocking component 150 is movably disposed on the supporting beam 120 along the height direction, and the supporting beam 120 is provided with a guide portion 126, through which the unlocking component 150 movably passes. In this way, the guide portion 126 can guide the movement of the unlocking component 150, so that the unlocking component 150 can accurately press the locking structure 400, thereby unlocking the graphics card 200 from the main control board 300.
[0127] In one embodiment, at least two guide portions 126 are provided on the support beam 120, and the at least two guide portions 126 are coaxially arranged along the height direction. The unlocking component 150 is movably passed through the at least two guide portions 126. Of course, in other embodiments of this application, only one guide portion 126 may be provided.
[0128] In one embodiment, the guide portion 126 is a guide hole, and the unlocking component 150 is movably disposed in the guide hole. The movement of the unlocking component 150 is guided by the guide hole, ensuring that the unlocking component 150 can accurately press the locking structure 400.
[0129] It is worth noting that the structural form of the guide hole is not limited in principle, as long as it can guide the movement of the unlocking component 150. In one embodiment, the guide hole is a through hole that is engaged with the support beam 120, and / or the support beam 120 has an arched portion, with the arched portion and the support beam 120 forming a guide hole, etc.
[0130] It is worth noting that the structural form of the unlocking component 150 is not limited in principle, as long as the unlocking component 150 can move along the height direction to press the locking structure 400. In this embodiment, the unlocking component 150 is a rod, and a pressing ring is provided at the top of the unlocking component 150. Of course, in other embodiments of this application, the unlocking component 150 can also be a pin, a sliding mechanism, etc.
[0131] In this application, the chassis structure 100 has a supporting beam 120, one end of which is secured to the first side plate 112, and the other end to the second side plate 113. Understandably, when a graphics card 200 weighing 1kg to 2kg is installed in the processing equipment, the weight of the chassis structure 100 also increases. During transportation, the overall structural strength requirements are higher. By supporting the first side plate 112 and the second side plate 113 with the supporting beam 120, the structural strength of the chassis 110 is improved, thereby enhancing the protective effect of the chassis 110 on the graphics card 200.
[0132] Meanwhile, the graphics card 200 is relatively expensive and heavy, and it is easily damaged during transportation if it is not properly secured. Therefore, a support beam 120 is used to secure the graphics card 200. The end of the graphics card 200 facing away from the second side panel 113 is fixed to the support beam 120. The support beam 120 reliably supports the graphics card 200, preventing it from becoming loose relative to the case 110, thus avoiding damage and ensuring its performance.
[0133] In the chassis structure 100 of this application, one end of the supporting beam 120 is snapped onto the first side plate 112 via the snap-fit part 121, and the other end is snapped onto the second side plate 113 via the plug-in part 122. Its structure is simple and facilitates the assembly and disassembly of the supporting beam 120 with the first side plate 112 and the second side plate 113, and can be achieved without the use of tools.
[0134] Furthermore, the support beam 120, after connecting the first side plate 112 and the second side plate 113, can support the cabinet 110, improve the structural strength of the cabinet 110, and fix the graphics card 200. At the same time, the graphics card 200 is installed on the support beam 120 through fasteners 130 and adjustment holes 1241 to be compatible with graphics cards 200 of different sizes, and heat dissipation holes 1242 are provided on the support beam 120 to facilitate heat dissipation of the graphics card 200.
[0135] See Figures 1 to 4 This application also provides a processing device, which includes a graphics card 200, a main control board 300, and a chassis structure 100 as described in any of the above embodiments. The main control board 300 is disposed at the bottom of the chassis structure 100, the graphics card 200 is disposed in the chassis structure 100 and is pluggably mounted on the graphics card 200, and the graphics card 200 is also connected to the support beam 120 of the chassis structure 100. When the processing device of this application adopts the chassis structure 100 of the above embodiments, it can protect the graphics card 200 and fix the graphics card 200 while ensuring the overall structural strength.
[0136] The technical features of the above embodiments can be combined in any way. For the sake of brevity, not all possible combinations of the technical features in the above embodiments are described. However, as long as there is no contradiction in the combination of these technical features, they should be considered to be within the scope of this specification.
[0137] The embodiments described above are merely illustrative of several implementation methods of this application, and while the descriptions are relatively specific and detailed, they should not be construed as limiting the scope of the patent application. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of this application, and these all fall within the protection scope of this application. Therefore, the protection scope of this patent application should be determined by the appended claims.
Claims
1. A chassis structure, characterized in that, The chassis structure includes a graphics card for mounting processing devices. The enclosure includes a base plate and a first side plate and a second side plate disposed opposite to the base plate; and A support beam is provided in the box body, and the two ends of the support beam are respectively secured to the first side plate and the second side plate; The supporting beam is provided with a connecting part for connecting to the end of the graphics card away from the second side plate.
2. The chassis structure according to claim 1, characterized in that, One end of the supporting beam has a snap-fit part, and the other end has a plug-in part; The supporting beam is engaged with the first side plate via the snap-fit part and with the second side plate via the plug-in part.
3. The chassis structure according to claim 1, characterized in that, The supporting beam includes a beam body and a snap-fit part disposed at one end of the beam body; The first side plate has a first cavity and a first mounting hole extending into the first cavity. The snap-fit part passes through the first mounting hole and is installed in the first cavity so that the snap-fit part snaps onto the first side plate.
4. The chassis structure according to claim 3, characterized in that, The snap-fit part includes a bending part and a limiting part. The bending part is bent relative to the main body of the crossbeam and extends toward the bottom plate. The limiting part is disposed at the end of the bending part away from the main body of the crossbeam and extends toward the direction away from the main body of the crossbeam. The limiting part is located in the first cavity, and the bending part is engaged in the first mounting hole.
5. The chassis structure according to claim 4, characterized in that, The snap-fit portion further includes a limiting protrusion, which protrudes from the limiting portion and is located on the surface of the limiting portion away from the bottom plate. The limiting protrusion can abut against the top wall of the first cavity. The number of the limiting protrusions is one or at least two, and at least two of the limiting protrusions are arranged at intervals along the extension direction of the first side plate.
6. The chassis structure according to claim 1, characterized in that, The supporting beam includes a beam body and a connector at the other end of the beam body. The connector is bent relative to the beam body and extends toward the base plate. The second side plate has a second cavity and a second mounting hole that extends into the second cavity. The plug-in part passes through the second mounting hole and is installed in the second cavity so that the plug-in part is engaged with the second side plate.
7. The chassis structure according to any one of claims 1 to 6, characterized in that, The supporting beam includes a beam body and a first baffle and a second baffle disposed opposite to each other on the beam body, wherein the first baffle and the second baffle are located between the first side plate and the second side plate; At least one of the first baffle and the second baffle is connected to the graphics card.
8. The chassis structure according to claim 7, characterized in that, The chassis structure also includes fasteners, and the connecting part is a plurality of adjustment holes provided on the first baffle and / or the second baffle. The plurality of adjustment holes are staggered along the line connecting the first side plate and the second side plate, and / or the plurality of adjustment holes are staggered along the line connecting the support beam and the base plate. The fastener passes through one of the adjustment holes and is installed on the graphics card. And / or, the first baffle and / or the second baffle have a plurality of heat dissipation holes arranged in rows and / or columns.
9. The chassis structure according to any one of claims 1 to 6, characterized in that, The chassis structure also includes a cover plate, which covers the chassis and abuts against the support beam. The cover plate can limit the support beam in the direction away from the bottom plate. And / or, the surface of the first side plate facing the second side plate has a first recess, and the support beam is engaged with the first side plate at the first recess; And / or, the surface of the second side plate facing the first side plate has a second recess, and the support beam is engaged with the second side plate in the second recess; And / or, the chassis structure further includes an unlocking component that extends along the line connecting the base plate and the support beam, the support beam having a guide portion, and the unlocking component movably passing through the guide portion to abut against the locking structure of the processing device, thereby allowing the graphics card to be removed.
10. A processing apparatus, characterized in that, Includes a graphics card, a main control board, and a chassis structure as described in any one of claims 1 to 9; The main control board is located at the bottom of the chassis structure, the graphics card is located in the chassis structure and can be plugged into the graphics card, and the graphics card is also connected to the support beam of the chassis structure.