Two-way server

By optimizing the layout of the motherboard and power supply modules in the server chassis and setting up a card-pressing beam structure above the GPU card, the issues of space utilization and transportation reliability of the server chassis are solved, achieving more efficient space utilization and equipment protection during transportation.

CN223624568UActive Publication Date: 2025-12-02SHENZHEN GOOXI INFORMATION SECURITY CO LTD
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Patent Information

Application Number
CN202423050681.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-11
Publication Date
2025-12-02
Estimated Expiration
2034-12-11

AI Technical Summary

Technical Problem

Existing server chassis are inadequate in terms of space utilization and flexible layout, and are prone to GPU damage or increased signal contact failure rate due to vibration during transportation.

Method used

The motherboard and power supply modules are respectively located on both sides of the server chassis. The card expansion slot design features four dual-width GPU cards symmetrically positioned on both sides of the motherboard, and two PCIe modules positioned above the dual-width GPU cards. A card-pressing beam structure is added above the dual-width GPU cards to enhance fixation. The optimized structural design improves space utilization and transportation reliability.

Benefits of technology

It improves the space utilization and flexible layout of the server chassis, ensures the reliability of the GPU during transportation, and reduces the damage to the equipment caused by vibration and the rate of poor signal contact.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a two-way server which comprises a server case, a power supply module, a mainboard, a double-width GPU card, a PCIE module and a card pressing cross beam structure, the power supply module comprises two groups of power supplies which are vertically arranged, and the two groups of power supplies are arranged on one side of the server case; the mainboard is arranged on the other side of the server case, and a card insertion expansion position is arranged between the mainboard and the power supply module; the number of the double-width GPU cards is four, and the four double-width GPU cards are symmetrically arranged on the two sides of the mainboard respectively. The number of the PCIE modules is two, and the two PCIE modules are arranged above the double-width GPU cards on the two sides respectively. And the card pressing cross beam structure is arranged above the double-width GPU card. According to the utility model, the actual requirements of different clients can be met through the reserved space, so that the flexible layout degree of the server case is improved, and the space utilization rate and the assembly reliability can be improved.
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Description

Technical Field

[0001] This utility model relates to a server, and more particularly to a dual-socket server. Background Technology

[0002] Dual-socket servers, comprising dual CPU modules, possess powerful computing and data processing capabilities, making them widely applicable across various fields, including but not limited to Intel Eagle Stream dual-socket standard servers. Due to the wide range of applications, the requirements for server chassis space utilization and flexible layout also increase accordingly; however, current server chassis cannot adequately meet the demands for flexible layout within existing chassis configurations, which is one reason. Secondly, in existing servers, vibration during transportation or exposure to shocks may damage the GPU or increase the rate of signal contact failures. Therefore, the overall server structure needs optimization to better meet the practical application requirements for space utilization, flexible layout performance, and reliability. Summary of the Invention

[0003] The technical problem to be solved by this utility model is to provide a dual-socket server that can improve the space utilization and flexible layout of the server chassis through optimized structural design, and can also effectively ensure the reliability of the dual-socket server during transportation or when subjected to vibration.

[0004] To address this issue, this utility model provides a dual-socket server, comprising: a server chassis, a power supply module, a motherboard, dual-width GPU cards, PCIe modules, and a card-pressing beam structure. The power supply module includes two vertically arranged power supplies located on one side of the server chassis. The motherboard is located on the other side of the server chassis, and an expansion slot is provided between the motherboard and the power supply module. There are four dual-width GPU cards, symmetrically arranged on both sides of the motherboard. There are two PCIe modules, each positioned above one of the dual-width GPU cards. The card-pressing beam structure is located above the dual-width GPU cards.

[0005] A further improvement of this utility model is that the dual-width GPU card is vertically inserted into both sides of the CPU module on the motherboard, and the PCIe module is horizontally positioned above both sides of the CPU module.

[0006] A further improvement of this utility model is that the two CPU modules of the motherboard are respectively located at the front and rear ends of the middle of the motherboard.

[0007] A further improvement of this utility model is that the pressure-clamping crossbeam structure includes a crossbeam body, a first pressure-clamping part, a second pressure-clamping part, and a clearance-raising part. The first pressure-clamping part, the second pressure-clamping part, and the clearance-raising part are all disposed below the crossbeam body, and the first pressure-clamping part is connected to the second pressure-clamping part through the clearance-raising part. The position of the clearance-raising part corresponds to the position of the CPU module of the motherboard, and the positions of the first pressure-clamping part and the second pressure-clamping part correspond to the positions of the dual-width GPU cards on both sides, respectively.

[0008] A further improvement of this utility model is that the first pressing part and the second pressing part are lower than the clearance lifting part, and the first pressing part and the second pressing part press on the top of the dual-width GPU card.

[0009] A further improvement of this utility model is that the crossbeam body forms a groove structure with the first pressing part, the second pressing part, and the clearance lifting part respectively.

[0010] A further improvement of this utility model is that ventilation holes are provided on the side wall of the groove structure.

[0011] A further improvement of this utility model is that the groove structure is provided with a cable clip structure.

[0012] A further improvement of this utility model is that it also includes a power board cable cover, which is disposed on the power module, and the power board cable cover has a cable outlet on the side closer to the motherboard.

[0013] A further improvement of this utility model is that the end of the pressure beam structure near the power module also includes a power limiting groove, the position and size of which correspond to the position and size of the power board wire cover.

[0014] Compared with the prior art, the beneficial effects of this utility model are as follows: the motherboard and power supply module are respectively set on both sides of the server chassis, and an expansion slot is provided between the motherboard and the power supply module, which facilitates meeting the actual needs of different customers by reserving space and improving the flexibility of server chassis layout; the number of dual-width GPU cards is four, and the four dual-width GPU cards are symmetrically arranged on both sides of the motherboard; the number of PCIe modules is two, and the two PCIe modules are respectively set above the dual-width GPU cards on both sides. Thus, through efficient structural optimization design, the space utilization of the server chassis is improved, realizing the design of four dual-width GPU cards and two PCIe modules; on this basis, a card-pressing beam structure is also provided above the dual-width GPU cards, which can effectively ensure the reliability of the dual-socket server during transportation or when subjected to vibration, so as to meet the actual application requirements of dual-socket servers. Attached Figure Description

[0015] Figure 1 This is an exploded structural diagram of one embodiment of the present invention;

[0016] Figure 2 This is a schematic diagram of the assembly structure of one embodiment of the present invention;

[0017] Figure 3 This is a schematic diagram of the structure of this utility model after removing the top cover;

[0018] Figure 4 This is a partial structural schematic diagram of one embodiment of the present invention.

[0019] Figure labels: 1-Server chassis; 2-Power supply module; 3-Motherboard; 301-CPU module; 4-Dual-width GPU card; 5-PCIe module; 6-Card clamping beam structure; 601-Beam body; 602-First clamping card; 603-Second clamping card section; 604-Allowing and raising section; 605-Groove structure; 606-Ventilation hole; 607-Cable clip structure; 608-Power supply limiting slot; 7-Power board cable cover; 8-Extension slot. Detailed Implementation

[0020] In the description of this utility model, if directional descriptions are involved, such as "up," "down," "front," "back," "left," "right," etc., indicating the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, it is only for the convenience of describing this utility model and simplifying the description, and does not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this utility model. If a certain technical feature is referred to as "set," "fixed," "connected," or "installed" on another technical feature, it can be directly set, fixed, or connected to the other technical feature, or it can be indirectly set, fixed, connected, or installed on the other technical feature.

[0021] In the description of this utility model, the term "several" means one or more; the term "multiple" means two or more; the terms "greater than," "less than," and "exceeding" should be understood as excluding the stated number; and the terms "above," "below," and "within" should be understood as including the stated number. The terms "first," "second," etc., should be understood as being used only to distinguish identical or similar technical feature names, and should not be interpreted as implying / indicating the relative importance of the technical features, the number of technical features, or the sequential relationship between the technical features.

[0022] The preferred embodiments of the present invention will be further described in detail below with reference to the accompanying drawings.

[0023] like Figures 1 to 4 As shown, this embodiment provides a dual-socket server, including: a server chassis 1, a power supply module 2, a motherboard 3, dual-width GPU cards 4, PCIe modules 5, and a card-pressing beam structure 6. The power supply module 2 includes two vertically arranged power supplies, which are located on one side of the server chassis 1. The motherboard 3 is located on the other side of the server chassis 1, and an expansion slot 8 is provided between the motherboard 3 and the power supply module 2. There are four dual-width GPU cards 4, which are symmetrically arranged on both sides of the motherboard 3. There are two PCIe modules 5, which are located above the dual-width GPU cards 4 on both sides. The card-pressing beam structure 6 is located above the dual-width GPU cards 4.

[0024] In this embodiment, the motherboard 3 and the power supply module 2 are respectively located on both sides of the server chassis 1, and an expansion slot 8 is provided between the motherboard 3 and the power supply module 2. The expansion slot 8 is preferably a reserved PCIe card slot. When a PCIe card needs to be added, it can be inserted through the expansion slot 8. When no additional card is needed, it can be used as one of the heat dissipation channels. This allows for the provision of space to meet the actual needs of different customers and improves the flexibility of the server chassis 1 layout. The number of dual-width GPU cards 4 is four, and the four dual-width GPU cards 4 are symmetrically arranged on both sides of the motherboard 3; the number of PCIe modules 5 is two, and the two PCIe modules 5 are respectively arranged above the dual-width GPU cards 4 on both sides. Thus, through efficient structural optimization design, the space utilization of the server chassis 1 is improved, realizing the design of four dual-width GPU cards 4 and two PCIe modules 5; on this basis, a card-pressing beam structure 6 is also provided above the dual-width GPU cards 4, which can enhance the fixing effect on the power supply module 2 and the dual-width GPU cards 4, etc., effectively ensuring the reliability of the dual-socket server during transportation or when subjected to vibration, so as to meet the actual application requirements of the dual-socket server.

[0025] More specifically, such as Figures 1 to 4As shown, in this embodiment, the dual-width GPU card 4 is vertically inserted on both sides of the CPU module 301 on the motherboard 3, and the PCIe module 5 is horizontally positioned above both sides of the CPU module 301 to make reasonable and efficient use of the space on both sides of the CPU module 301 on the motherboard 3. The CPU module 301 includes a CPU and a heatsink mounted on the CPU. Preferably, in this embodiment, the two CPU modules 301 of the motherboard 3 are respectively located at the front and rear ends of the middle of the motherboard 3, that is, at the end closer to the front panel and the end closer to the rear panel. This ensures that the heat dissipation exhaust direction of the dual-width GPU card 4 and the CPU module 301 is aligned, avoiding mutual interference and improving heat dissipation efficiency.

[0026] like Figure 3 and Figure 4 As shown, the pressure beam structure 6 in this embodiment includes a beam body 601, a first pressure part 602, a second pressure part 603, and a clearance lifting part 604. The first pressure part 602, the second pressure part 603, and the clearance lifting part 604 are all located below the beam body 601, and the first pressure part 602 is connected to the second pressure part 603 through the clearance lifting part 604. The first pressure part 602 is used to press down on the dual-width GPU card 4 on one side, the second pressure part 603 is used to press down on the dual-width GPU card 4 on the other side, and the clearance lifting part 604 is used to provide clearance space for the CPU and its heat sink of the CPU module 301. Therefore, the position of the clearance lifting part 604 corresponds to the position of the CPU module 301 of the motherboard 3, and the positions of the first pressure part 602 and the second pressure part 603 correspond to the positions of the dual-width GPU cards 4 on both sides, respectively. The first clamping part 602 and the second clamping part 603 are lower than the raised relief part 604 to provide better heat dissipation and installation space for the CPU heatsink. In this embodiment, the first clamping part 602 and the second clamping part 603 press against the top of the dual-width GPU card 4 to enhance the reliability of its structure, so that even during transportation or when subjected to vibration, it will not cause damage to the GPU or increase the failure rate of signal contact.

[0027] like Figure 4 As shown, in this embodiment, the crossbeam body 601 forms a groove structure 605 with the first clamping part 602, the second clamping part 603, and the clearance lifting part 604. The groove structure 605 refers to a structure where the width of the top (crossbeam body 601) and the bottom (first clamping part 602, second clamping part 603, and clearance lifting part 604) are both greater than the width of the middle position. This facilitates fixing and organizing cables, increasing the reliability of power cord and other cable connections, as well as improving aesthetics and neatness.

[0028] Preferably, the groove structure 605 described in this embodiment is provided with ventilation holes 606 on its side wall to facilitate ventilation; the groove structure 605 is provided with a cable clip structure 607, which is a clip structure for fixing cables, making it easy to fix the cables and also easy to maintain them later.

[0029] like Figure 1 and Figure 3 As shown, preferably, this embodiment also includes a power board cable cover 7, which is disposed on the power module 2. The power board cable cover 7 has a cable outlet 701 on the side near the motherboard 3. The position of the cable outlet 701 corresponds to the position of the groove structure 605, facilitating cable management. In this embodiment, the end of the clamping beam structure 6 near the power module 2 also includes a power limiting groove 608. The position and size of the power limiting groove 608 correspond to the position and size of the power board cable cover 7, facilitating the fixing and pressing of the dual-width GPU card 4 while simultaneously fixing and pressing the power board cable cover 7, ensuring the reliable assembly performance of the power module 2.

[0030] The specific embodiments described above are preferred embodiments of this utility model, and are not intended to limit the specific scope of this utility model. The scope of this utility model includes, but is not limited to, these specific embodiments. All equivalent changes made in accordance with the shape and structure of this utility model are within the protection scope of this utility model.

Claims

1. A dual-processor server, characterized in that, include: The server chassis, power supply module, motherboard, dual-width GPU cards, PCIe modules, and card clamping beam structure are described. The power supply module includes two vertically arranged power supplies located on one side of the server chassis. The motherboard is located on the other side of the server chassis, and expansion slots are provided between the motherboard and the power supply module. There are four dual-width GPU cards, symmetrically arranged on both sides of the motherboard. There are two PCIe modules, each located above the dual-width GPU cards on both sides. The card clamping beam structure is located above the dual-width GPU cards.

2. The dual-processor server according to claim 1, characterized in that, The dual-width GPU card is vertically inserted on both sides of the CPU module on the motherboard, and the PCIe module is horizontally positioned above both sides of the CPU module.

3. The dual-processor server according to claim 1, characterized in that, The two CPU modules of the motherboard are respectively located at the front and rear ends of the middle of the motherboard.

4. The dual-processor server according to any one of claims 1 to 3, characterized in that, The pressure beam structure includes a beam body, a first pressure part, a second pressure part, and a clearance lifting part. The first pressure part, the second pressure part, and the clearance lifting part are all located below the beam body, and the first pressure part is connected to the second pressure part through the clearance lifting part. The position of the clearance lifting part corresponds to the position of the CPU module on the motherboard, and the positions of the first pressure part and the second pressure part correspond to the positions of the dual-width GPU cards on both sides.

5. The dual-processor server according to claim 4, characterized in that, The first pressing part and the second pressing part are lower than the clearance lifting part, and the first pressing part and the second pressing part press on the top of the dual-width GPU card.

6. The dual-processor server according to claim 4, characterized in that, The crossbeam body forms a groove structure with the first pressing part, the second pressing part, and the clearance lifting part.

7. The dual-processor server according to claim 6, characterized in that, Ventilation holes are provided on the side wall of the groove structure.

8. The dual-processor server according to claim 6, characterized in that, The groove structure is equipped with a cable clip structure.

9. The dual-processor server according to claim 4, characterized in that, It also includes a power board cable cover, which is disposed on the power module, and the power board cable cover has a cable outlet on the side of the power board cable cover closer to the motherboard.

10. The dual-processor server according to claim 9, characterized in that, The end of the pressure beam structure near the power module also includes a power limiting groove, the position and size of which correspond to the position and size of the power board wire cover.