Processor module and electronic device

By combining the base bracket and the partition frame, the processor is fixed and an independent heat dissipation cycle is formed, which solves the problems of cable entanglement and temperature superposition in the graphics processor fan in the server, and achieves stable heat dissipation and safe operation.

CN224176962UActive Publication Date: 2026-04-28SUMA TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
SUMA TECH CO LTD
Filing Date
2025-05-09
Publication Date
2026-04-28

AI Technical Summary

Technical Problem

In existing servers, the fans of the graphics processors are prone to getting tangled in cables during operation, which affects heat dissipation and poses a safety hazard. Furthermore, multiple graphics processors sharing the same airflow can lead to temperature accumulation.

Method used

It adopts a combination structure of base bracket and partition bracket. The processor is fixed by the limiting end plate, the partition bracket isolates adjacent processors, forming an independent heat dissipation cycle, blocking the cable from entering the fan path, and the directional airflow design ensures independent heat dissipation for each processor.

Benefits of technology

It achieves stable installation and independent heat dissipation of the processor, reduces the risk of cables getting tangled in the fan, improves the stability and safety of equipment operation, and ensures heat dissipation efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The embodiment of the utility model provides a processor module and electronic equipment, and relates to the technical field of servers. The processor module comprises a processor provided with an air inlet and an air outlet; the fixing support comprises a bottom bracket, the bottom bracket comprises a bottom plate and limiting end plates, the limiting end plates are arranged at the two ends of the bottom plate in the first direction, and the bottom plate and the limiting end plates jointly define a mounting space; the separation frame extends in the first direction, the two ends of the separation frame are connected with the two limiting end plates correspondingly, the separation frame divides the installation space into at least two installation areas distributed in the second direction, and each installation area is suitable for installing a processor; each installation area is provided with a first ventilation opening corresponding to the air outlet and a second ventilation opening corresponding to the air inlet. According to the processor module and the electronic equipment, the heat dissipation efficiency of the processors is guaranteed, and the operation stability of the multiple processors during simultaneous operation is improved through physical isolation.
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Description

Technical Field

[0001] This application relates to the field of server technology, and more particularly to a processor module and an electronic device. Background Technology

[0002] With the rapid development of the server industry, the requirements for server graphics processing capabilities are also increasing, and servers with multiple graphics processing units (GPUs) have become a common configuration.

[0003] Existing servers consist of a chassis and a graphics processing unit (GPU), which is typically mounted inside the chassis using a mounting bracket. However, existing GPU configurations usually include a built-in fan, and the cables inside the chassis are usually concentrated at the bottom. As a result, when the GPU is operating, the fan can easily entangle the cables, posing a safety hazard and also affecting heat dissipation. Utility Model Content

[0004] This application provides a processor module and an electronic device that ensures the heat dissipation performance of the graphics processor and improves the operational stability when multiple graphics processors are operating simultaneously through physical isolation.

[0005] In a first aspect, embodiments of this application provide a processor module, including:

[0006] The processor has an air inlet and an air outlet;

[0007] The fixed bracket includes:

[0008] The base bracket includes a base plate and a limiting end plate, wherein the limiting end plate is disposed at both ends of the base plate along a first direction, and the base plate and the limiting end plate together define an installation space;

[0009] A partition frame extends along the first direction, with two limiting end plates connected to each end of the partition frame. The partition frame divides the installation space into at least two installation areas distributed along the second direction. Each installation area is suitable for installing a processor, and each installation area is provided with a first vent corresponding to the air outlet and a second vent corresponding to the air inlet.

[0010] When the processor is installed in the preset area, a limiting endplate is used to fix the end of the processor, and a separator is used to isolate adjacent processors. When the processor is running, the airflow generated by the fan is exhausted to the outside of the mounting bracket through the first vent, while external cool air is introduced into the processor's air intake through the second vent. This directional airflow design allows each processor to form an independent cooling cycle, avoiding the temperature superposition that could occur if multiple processors share a single airflow path. The combined structure of the base bracket and separator blocks the path of cables into the processor area, eliminating the risk of cables getting tangled in the fan.

[0011] Through the collaborative design of base plate support and area separation, the processors can be arranged in a matrix within the same space, ensuring the heat dissipation performance of a single processor and effectively blocking the contact path between cables and fans, eliminating the risk of cables getting tangled in the fans.

[0012] In one possible implementation, the air outlet is located at the first end of the processor.

[0013] The limiting end plate includes a first limiting plate disposed at a first end of the base bracket along a first direction, and the first vent is opened on the first limiting plate.

[0014] During processor installation, its first end faces the first limiting plate of the base bracket, and the air outlet is aligned with the first ventilation opening. The first limiting plate positions the end of the processor, confining it within the installation area, while the first ventilation opening provides a directional exhaust channel. Thus, the first limiting plate provides the mounting base for the processor, and the first ventilation opening ensures efficient heat dissipation, fulfilling the processor's positioning and heat dissipation requirements. The first limiting plate also acts as a barrier, reducing the risk of cables getting caught in the fan.

[0015] In one possible implementation, the air inlet is located at the second end of the processor.

[0016] The limiting end plate includes a second limiting plate disposed at the second end of the base bracket along the first direction, and the second vent is opened on the second limiting plate.

[0017] After entering the air inlet through the second vent, the external cold air flows along the inside of the processor and is discharged from the air outlet, achieving directional heat dissipation and ensuring heat dissipation performance. In addition, the second limiting plate physically isolates the installation area from the external cable area, which also reduces the risk of twisted wires.

[0018] In one possible implementation, the air inlet is located on one side of the processor along a third direction, and the second vent is located on the base plate.

[0019] The processor is installed within the mounting area defined by the base bracket, with its side air inlet aligned with the second vent on the base plate. When the processor's built-in fan is running, outside air enters the mounting space through the second vent on the base plate, is then drawn into the fan along the processor's side air inlet, and finally exits from the processor's exhaust outlet. By positioning the air inlet on the side of the processor and connecting it to the base plate vent, airflow is directed towards the base plate. This allows airflow to pass beneath the base plate, and the base plate also provides physical insulation to prevent cables from being drawn into the fan's operating range by airflow, improving the stability and safety of the equipment.

[0020] In one possible implementation, two processors adjacent to each other along a second direction, one of which has an air inlet facing the base plate and communicating with the second vent, and the other has an air inlet facing the open side of the base bracket.

[0021] This staggered layout allows the air intake paths of adjacent processors to complement each other, avoiding airflow short-circuiting and reducing the risk of cables being exposed in the fan area. During operation, the downward-facing air intakes physically isolate the cable routing area from the fan operating area, while processors with side air intakes utilize open space to create independent airflow channels, ensuring heat dissipation efficiency and reducing the probability of cables getting tangled.

[0022] In one possible implementation, the processor module further includes: two expansion adapters, each corresponding to one of the processors, with the expansion brackets of the two processors disposed between the two processors.

[0023] By confining the expansion adapter between two processors, the routing of cables connected to the expansion adapter is physically isolated from the fan operating area, preventing cables from being tangled in the processor fan. In addition, this design allows for the centralized arrangement of expansion adapters for multiple processors, facilitating unified cable management and maintenance.

[0024] In one possible implementation, the partitions are two spaced apart along a second direction, with an extension space defined between the two partitions, and the extension adapters of the two adjacent processors are both located in the extension space.

[0025] This solution creates an independent cabling area by setting up an expansion space, which physically isolates the cables connected to the expansion adapter from the fan operating area, preventing the cables from being caught in the processor fan. In addition, this design allows the expansion adapters of multiple processors to be arranged in a centralized manner, which facilitates unified cable management and maintenance.

[0026] In one possible implementation, the base bracket includes a second limiting plate disposed at a second end of the base bracket along a first direction. The second limiting plate includes two upright plates distributed along a second direction, with the two upright plates respectively located on both sides of the partition frame and opposite to the corresponding installation areas.

[0027] The stand ensures unobstructed ventilation while blocking external cables from entering the processor fan area, reducing the probability of cables getting tangled. In addition, the combined structure of the stand and the connecting plate enhances the overall stability of the bracket, ensuring stable installation of the processor.

[0028] In one possible implementation, the fixing bracket further includes a connecting plate, which spans across the side of the partition frame facing away from the base plate in a third direction, and the two ends of the connecting plate are respectively connected to the two upright plates.

[0029] The connecting plate connects to two upright plates, enhancing the overall rigidity of the second end of the base bracket and ensuring the processor remains stable under vibration. Furthermore, the connecting plate spans one side of the partition frame, creating a handle between the connecting plate and the partition frame, allowing operators to easily and conveniently lift and remove the entire fixed support by gripping the connecting plate.

[0030] Secondly, embodiments of this application also provide an electronic device, including the processor module in any of the above possible implementations.

[0031] The processor module uses a fixed bracket to separate and install multiple processors in independent areas. Each processor's air inlet is aligned with a second ventilation port, and its air outlet is aligned with a first ventilation port, forming a directional heat dissipation channel. A partition extends along a first direction and connects to a limiting end plate, dividing the internal space of the base bracket into installation areas arranged along a second direction, with each area corresponding to one processor. During installation, the processor is confined within the installation space formed by the base plate and the limiting end plate, and its air inlet and outlet communicate with the external environment through corresponding ventilation ports.

[0032] Thus, this solution creates an installation space using a base bracket and a partition, confining cables outside the extended space or installation area to prevent them from entering the fan's rotation range and ensuring the stability of electronic equipment operation. In addition, the design of the vents and processor air inlet / outlet can reduce airflow turbulence while ensuring heat dissipation efficiency, preventing cables from being sucked into the ventilation path and achieving safe heat dissipation. Attached Figure Description

[0033] The accompanying drawings, which are incorporated in and form part of this specification, illustrate embodiments consistent with this application and, together with the description, serve to explain the principles of this application.

[0034] Figure 1 This is a schematic diagram of the processor module provided in this application;

[0035] Figure 2 Exploded view of the processor module provided in this application;

[0036] Figure 3 This is a structural schematic diagram of the fixing bracket provided in this application;

[0037] Figure 4 Exploded view of the fixing bracket provided in this application.

[0038] Explanation of reference numerals in the attached figures:

[0039] 100 - Processor; 100a - First end; 100b - Second end; 110 - Air inlet; 120 - Air outlet;

[0040] 200 - Fixed bracket; 200a - Installation area; 200b - First ventilation opening; 200c - Second ventilation opening;

[0041] 210-Base bracket; 211-Base plate; 212-Limiting end plate; 2121-First limiting plate; 2122-Second limiting plate; 2122a-Upright plate;

[0042] 220 - Divider; 230 - Connecting plate;

[0043] 300-Extension Adapter;

[0044] 400 - Insulation components.

[0045] The accompanying drawings illustrate specific embodiments of this application, which will be described in more detail below. These drawings and descriptions are not intended to limit the scope of the concept in any way, but rather to illustrate the concept of this application to those skilled in the art through reference to particular embodiments. Detailed Implementation

[0046] Exemplary embodiments will now be described in detail, examples of which are illustrated in the accompanying drawings. When the following description relates to the drawings, unless otherwise indicated, the same numbers in different drawings denote the same or similar elements. The embodiments described in the following exemplary embodiments do not represent all embodiments consistent with this application. Rather, they are merely examples of apparatuses and methods consistent with some aspects of this application as detailed in the appended claims.

[0047] With the rapid development of the server industry, the requirements for server graphics processing capabilities are also increasing, and servers with multiple graphics processing units (GPUs) have become a common configuration.

[0048] Existing servers consist of a chassis and a graphics processing unit (GPU), with the GPU typically mounted inside the chassis using a mounting bracket. However, current GPU configurations usually include a built-in fan, and the cables inside the chassis are often concentrated at the bottom. This makes it easy for the fan to tangle the cables when the GPU is operating. As GPU performance and density increase, this structure fails to address the safety hazards and also hinders heat dissipation.

[0049] To address the aforementioned issues, this application provides a processor module and electronic device. When the processor is installed in a preset area, a limiting end plate is used to fix the end of the processor, and a separator is used to isolate adjacent processors. When the processor is running, the airflow generated by the fan is discharged to the outside of the fixing bracket through a first vent, while external cool air is introduced into the processor's air inlet through a second vent. This directional airflow design allows each processor to form an independent cooling cycle, avoiding temperature superposition caused by multiple processors sharing a single airflow path. The combined structure of the base bracket and the separator blocks the path of cables entering the processor area, eliminating the risk of cables getting tangled in the fan.

[0050] Through the collaborative design of base plate support and area separation, the processors can be arranged in a matrix within the same space, ensuring the heat dissipation performance of a single processor and effectively blocking the contact path between cables and fans, eliminating the risk of cables getting tangled in the fans.

[0051] The technical solution of this application and how the technical solution of this application solves the above-mentioned technical problems are described in detail below with specific embodiments. The following specific embodiments can be combined with each other, and the same or similar concepts or processes may not be described again in some embodiments.

[0052] The following will combine Figures 1 to 4 The embodiments of this application will be described below.

[0053] Optionally, x is the first direction, y is the second direction, and z is the third direction.

[0054] Reference Figures 1 to 3 As shown in the figure, this application provides a processor module, which includes a processor 100 and a mounting bracket 200. It is understood that the processor module can be adapted to a processor 100 with or without a fan.

[0055] In some embodiments, the processor 100 has a fan and an air inlet 110 and an air outlet 120.

[0056] The fixed bracket 200 includes a base bracket 210 and a partition bracket 220. The base bracket 210 includes a base plate 211 and limiting end plates 212 located at both ends of the base plate 211 along a first direction. The base plate 211 and the limiting end plates 212 together define the installation space. The partition bracket 220 extends along the first direction, and its two ends are respectively connected to two limiting end plates 212. The partition bracket 220 divides the installation space into at least two installation areas 200a distributed along a second direction. Each installation area 200a is suitable for installing the processor 100, and each installation area 200a is provided with a first vent 200b corresponding to the air outlet 120 and a second vent 200c corresponding to the air inlet 110.

[0057] The base bracket 210 serves as the supporting structure. Optionally, the base bracket 210 may include a stamped steel plate and reinforcing ribs to ensure load-bearing capacity. This design replaces the traditional suspension structure with rigid support, eliminating the possibility of cables contacting the fan on the processor 100.

[0058] Optionally, the partition 220 can be made of aluminum alloy. The partition 220 longitudinally isolates the heat dissipation channels according to the processor 100 units, separates the installation space for the processor 100, and also reduces the possible airflow interference between multiple processors 100.

[0059] Optionally, the first vent 200b and the second vent 200c can be designed with various forms such as circular slots, strip slots, and arrayed circular holes.

[0060] Optionally, the vent positions form a straight airflow channel with the air inlet 110 or exhaust vent of the processor 100 to ensure smooth airflow. Specifically, the first vent 200b is aligned with the exhaust vent 120 to accelerate the discharge of hot air, and the second vent 200c works with the air inlet 110 to accelerate the entry of cold air.

[0061] Specifically, when the processor 100 is installed in the preset area, the limiting end plate 212 is used to fix the end of the processor 100, and the separator 220 is used to isolate adjacent processors 100. When the processor 100 is running, the airflow generated by the fan is discharged to the outside of the fixing bracket 200 through the first vent 200b, and the external cold air is introduced into the air inlet 110 of the processor 100 through the second vent 200c. This directional airflow design allows each processor 100 to form an independent heat dissipation cycle, avoiding the temperature superposition caused by multiple processors 100 sharing a single air duct. The combined structure of the base bracket 210 and the separator 220 blocks the path of cables into the processor 100 area, eliminating the risk of cables getting tangled in the fan.

[0062] This solution, through the coordinated design of the base plate 211 for support and area separation, achieves a matrix arrangement of processors 100 within the same space, ensuring the heat dissipation performance of a single processor 100, and effectively blocking the contact path between cables and fans, eliminating the risk of cables getting tangled in the fans.

[0063] In addition, the composite design of the limiting end plate 212 and the partition frame 220 improves the vibration resistance compared to the suspension fixation in the prior art.

[0064] In some embodiments, combined with Figure 2 and Figure 3 The air outlet 120 is located at the first end 100a of the processor 100. The limiting end plate 212 includes a first limiting plate 2121 located at the first end 100a of the base bracket 210 along the first direction. The first ventilation opening 200b is opened on the first limiting plate 2121.

[0065] Specifically, when the processor 100 is installed, its first end 100a faces the first limiting plate 2121 of the base bracket 210, and the air outlet 120 is aligned with the first ventilation port 200b. The first limiting plate 2121 achieves end positioning of the processor 100, confining the processor 100 within the installation area 200a, and the first ventilation port 200b serves as the air outlet 120, providing a directional exhaust channel.

[0066] As can be seen, the first limiting plate 2121 provides the mounting base for the processor 100 and also has a first ventilation port 200b to ensure heat dissipation efficiency, thus fulfilling the positioning and heat dissipation requirements of the processor 100. The first limiting plate 2121 also has a barrier function, reducing the risk of cables being caught in the fan.

[0067] In some embodiments, combined with Figure 2 and Figure 3 The air inlet 110 is located at the second end 100b of the processor 100. The limiting end plate 212 includes a second limiting plate 2122 located at the second end 100b of the base bracket 210 along the first direction. The second vent 200c is opened on the second limiting plate 2122.

[0068] Optionally, the air inlet 110 can be implemented by opening a through hole or channel at the end of the processor 100 housing to guide external airflow into the processor 100.

[0069] Optionally, the second limiting plate 2122 can be made of sheet metal by stamping. The second limiting plate 2122 is used to fix to the base plate 211, to limit the displacement of the processor 100 within the installation area 200a, and to form a ventilation channel.

[0070] Specifically, after external cold air enters the air inlet 110 through the second vent 200c, it flows along the inside of the processor 100 and is discharged from the air outlet 120, achieving directional heat dissipation and ensuring heat dissipation performance. In addition, the second limiting plate 2122 physically isolates the installation area 200a from the external cable area, which also reduces the risk of twisted wires.

[0071] In some embodiments, combined with Figure 2 and Figure 3 The air inlet 110 is located on one side of the processor 100 along the third direction, and the second vent 200c is opened on the base plate 211.

[0072] In this embodiment, the air inlet 110 of the processor 100 is located on its side. Optionally, the air inlet 110 can be a circular opening on the side of the processor 100.

[0073] Optionally, the second vent 200c can be formed on the base plate 211 in the form of an array of circular holes.

[0074] Specifically, the processor 100 is installed within the mounting area 200a defined by the base bracket 210, with its side air inlet 110 aligned with the second vent 200c of the base plate 211. When the processor 100's built-in fan is running, external air enters the mounting space through the second vent 200c of the base plate 211, is then drawn into the fan along the side air inlet 110 of the processor 100, and is finally exhausted from the air outlet 120 of the processor 100.

[0075] This design places the air inlet 110 on the side of the processor 100 and connects it to the ventilation opening of the base plate 211, allowing airflow to enter from the direction of the base plate 211. This allows airflow to flow from below the base plate 211, and the base plate 211 also provides physical isolation to prevent cables from being drawn into the fan's operating range by airflow, thus improving the stability and safety of the equipment operation.

[0076] As can be seen from the above embodiments, the fixed bracket 200 of this application embodiment can be adapted to processors 100 with various air intake and exhaust forms. In actual operation, the specific specifications of processor 100 can be selectively selected according to the specific installation situation in the server to ensure assembly requirements and heat dissipation requirements.

[0077] In some embodiments, combined with Figure 1 and Figure 2 Two adjacent processors 100 along the second direction, one of which has an air inlet 110 facing the base plate 211 and communicating with the second vent 200c, and the other has an air inlet 110 facing the open side of the base bracket 210.

[0078] For example, when two processors 100 are installed side by side in a horizontal direction, the processor 100 on the left faces its air inlet 110 toward the base plate 211 below, and draws in cooling airflow through the ventilation holes opened in the base plate 211; the processor 100 on the right faces its air inlet 110 toward the open side away from the base plate 211, allowing airflow to enter directly.

[0079] This staggered layout allows the air intake paths of adjacent processors 100 to complement each other, avoiding airflow short-circuiting and reducing the risk of cables being exposed in the fan area. During operation, the downward-facing air intake 110 physically isolates the cable routing area from the fan operating area, while the side-intake processors 100 utilize open space to establish independent air ducts, ensuring heat dissipation efficiency and reducing the probability of cables getting tangled.

[0080] In some embodiments, combined with Figure 2 , Figure 3 and Figure 4The processor module also includes an expansion adapter 300, which consists of two adapters corresponding one-to-one with the processor 100. The expansion brackets of the two processors 100 are located between the two processors 100.

[0081] Optionally, the functional expansion component can be a PCIe expansion card adapter (Riser) to connect the motherboard and the expansion card, which has the advantages of expansion slots, optimized space and power supply design.

[0082] Specifically, when the expansion adapter 300 is installed in the installation area 200a, the expansion bracket is confined to the middle area of ​​the adjacent processor 100. Optionally, the functional expansion component can be fixed by mechanical connection or snap-fit ​​structure.

[0083] In some examples, the extension adapter 300 is also connected to cables, and when the extension adapter 300 is confined between two processors 100, the connected cables will also be concentrated in this area. In this way, the cables will be confined between the two processors 100, preventing them from extending outward into the air inlet 110 area of ​​the processors 100.

[0084] In this way, by constraining the expansion adapter 300 between the two processors 100, the routing of the cables connected to the expansion adapter 300 can be physically isolated from the fan operating area, preventing the cables from being caught in the fan of the processor 100. In addition, this design also allows the expansion adapters 300 of multiple processors 100 to be arranged in a centralized manner, which facilitates the unified management and maintenance of cables.

[0085] In addition, the space-integrated design of the extension adapter 300 simplifies maintenance operations and improves the ease of installation and maintenance.

[0086] In some embodiments, combined with Figure 2 and Figure 4 The partition 220 consists of two spacers arranged at intervals along the second direction, and an expansion space is defined between the two partitions 220. The expansion adapters 300 of the two adjacent processors 100 are both located in the expansion space.

[0087] It is understood that the expansion space is a cavity area formed by two partitions 220 in the second direction. The size of the expansion space can be controlled by adjusting the spacing between the partitions 220. The expansion space can be used to accommodate the expansion adapter 300.

[0088] Optionally, two spaced-apart dividers 220 are arranged in parallel.

[0089] Optionally, the two extension adapters 300 are mounted on the two dividers 220 respectively.

[0090] In some examples, the expansion adapter 300 is also connected to cables, and when the expansion adapter 300 is confined within the expansion space, the connected cables will also be concentrated in that area. In this way, the cables will be confined within the expansion space, preventing them from extending outward into the air inlet 110 area of ​​the processor 100.

[0091] Thus, by setting up an expansion space to form an independent cabling area, this solution can physically isolate the cable route connected to the expansion adapter 300 from the fan working area, preventing the cable from being caught in the processor 100 fan. In addition, this design also allows the expansion adapters 300 of multiple processors 100 to be arranged in a centralized manner, which facilitates the unified management and maintenance of cables.

[0092] In some embodiments, the processor module further includes an insulating element 400 disposed between the extension adapter 300 and the partition 220 to which the extension adapter 300 is connected, so as to achieve an insulating effect.

[0093] In some embodiments, combined with Figure 3 and Figure 4 The base bracket 210 includes a second limiting plate 2122 disposed at the second end 100b of the base bracket 210 along the first direction. The second limiting plate 2122 includes two upright plates 2122a distributed along the second direction. The two upright plates 2122a are respectively located on both sides of the partition frame 220 and opposite to the corresponding installation area 200a.

[0094] The upright plate 2122a provides end support for the processor module and forms a ventilation path. Optionally, the upright plate 2122a can be detachably connected to the base bracket 210 by riveting.

[0095] In this way, while ensuring unobstructed ventilation, the upright plate 2122a also blocks external cables from entering the fan area of ​​the processor 100, reducing the probability of cables getting tangled. In addition, the combined structure of the upright plate 2122a and the connecting plate 230 strengthens the overall stability of the bracket and ensures the stable installation of the processor 100.

[0096] In some embodiments, combined with Figure 3 and Figure 4 The fixed bracket 200 also includes a connecting plate 230, which spans across the side of the partition frame 220 facing away from the bottom plate 211 in a third direction. The two ends of the connecting plate 230 are respectively connected to two upright plates 2122a.

[0097] The connecting plate 230 is a plate-shaped component located on top of the partition frame 220 and extending laterally. Optionally, the connecting plate 230 can be a flat plate or a shaped plate with reinforcing ribs.

[0098] Understandably, the design of connecting plate 230 to connect two upright plates 2122a respectively enhances the overall rigidity of the second end 100b of the base bracket 210, enabling the processor 100 to remain stable under vibration.

[0099] In addition, the connecting plate 230 is straddling one side of the partition frame 220, so that there is a certain gap between the connecting plate 230 and the partition frame 220, forming a handle. Operators can grasp the connecting plate 230 to pick up the fixed bracket 200 as a whole, which is simple and convenient.

[0100] It is understood that adjacent connecting components in the embodiments of this application can be fixed by limiting structures and screws, which facilitates later maintenance and repair.

[0101] In addition, this application also provides an electronic device including the processor module in any of the above embodiments.

[0102] Optionally, the electronic module can be a hardware device with an integrated processor module, such as a server or graphics workstation, and can be assembled with multiple components through a chassis structure.

[0103] Specifically, the processor module uses a mounting bracket 200 to separate and install multiple processors 100 in independent areas. The air inlet 110 of each processor 100 is aligned with the second vent 200c, and the air outlet 120 is aligned with the first vent 200b, forming a directional heat dissipation channel. A partition bracket 220 extends along a first direction and connects to a limiting end plate 212, dividing the internal space of the base bracket 210 into installation areas 200a arranged along a second direction, each area corresponding to one processor 100. During installation, the processor 100 is confined within the installation space formed by the base plate 211 and the limiting end plate 212, and its air inlet and outlet 120 communicate with the external environment through the corresponding vents.

[0104] For example, when the processor 100 is a graphics processing unit with a built-in fan, the airflow generated by its fan draws in cool air through the second vent 200c, dissipates heat inside the processor 100, and then exits through the first vent 200b. The design of the partition 220 prevents cables from coming into contact with the fan area.

[0105] Thus, this solution forms an installation space through the base bracket 210 and the partition bracket 220, restricting the cables outside the extended space or installation area 200a, preventing the cables from entering the fan's rotation range, and ensuring the stability of the electronic equipment's operation. In addition, the design of the vent and the air inlet / outlet 120 of the processor 100 can reduce airflow turbulence while ensuring heat dissipation efficiency, preventing the cables from being sucked into the ventilation path, and achieving safe heat dissipation.

[0106] Finally, it should be noted that other embodiments of this application will readily conceive of by those skilled in the art upon consideration of the specification and practice of the application disclosed herein. This application is intended to cover any variations, uses, or adaptations of this application that follow the general principles of this application and include common knowledge or customary techniques in the art not disclosed herein, and is not limited to the precise structures described above and shown in the accompanying drawings, and various modifications and alterations may be made without departing from its scope. The scope of this application is limited only by the appended claims.

Claims

1. A processor module, characterized in that, include: The processor (100) has an air inlet (110) and an air outlet (120); The fixed bracket (200) includes: The base bracket (210) includes a base plate (211) and a limiting end plate (212). The limiting end plate (212) is disposed at both ends of the base plate (211) along a first direction. The base plate (211) and the limiting end plate (212) together define the installation space. A partition frame (220) extends along the first direction, and two limiting end plates (212) are respectively connected to the two ends of the partition frame (220). The partition frame (220) divides the installation space into at least two installation areas (200a) distributed along the second direction. Each installation area (200a) is suitable for installing the processor (100). Furthermore, each installation area (200a) is provided with a first vent (200b) corresponding to the air outlet (120) and a second vent (200c) corresponding to the air inlet (110).

2. The processor module according to claim 1, characterized in that, The air outlet (120) is located at the first end (100a) of the processor (100). The limiting end plate (212) includes a first limiting plate (2121) disposed at the first end (100a) of the bottom bracket (210) along the first direction, and the first vent (200b) is opened on the first limiting plate (2121).

3. The processor module according to claim 2, characterized in that, The air inlet (110) is located at the second end (100b) of the processor (100). The limiting end plate (212) includes a second limiting plate (2122) disposed at the second end (100b) of the bottom bracket (210) along the first direction, and the second vent (200c) is opened on the second limiting plate (2122).

4. The processor module according to claim 2, characterized in that, The air inlet (110) is located on one side of the processor (100) along a third direction, and the second vent (200c) is opened on the base plate (211).

5. The processor module according to claim 4, characterized in that, Two processors (100) adjacent to each other along the second direction, one of which has an air inlet (110) facing the base plate (211) and communicating with the second vent (200c), and the other has an air inlet (110) facing the open side of the base bracket (210).

6. The processor module according to claim 1, characterized in that, Also includes: An expansion adapter (300) is provided, wherein there are two expansion adapters (300) corresponding one-to-one with the processor (100), and the expansion brackets of the two processors (100) are disposed between the two processors (100).

7. The processor module according to claim 6, characterized in that, The partition (220) consists of two spaced apart along the second direction, and an extension space is defined between the two partitions (220). The extension adapters (300) of the two adjacent processors (100) are all located in the extension space.

8. The processor module according to claim 2, characterized in that, The base bracket (210) includes a second limiting plate (2122) disposed at the second end (100b) of the base bracket (210) along the first direction. The second limiting plate (2122) includes two upright plates (2122a) distributed along the second direction. The two upright plates (2122a) are respectively located on both sides of the partition frame (220) and opposite to the corresponding installation area (200a).

9. The processor module according to claim 8, characterized in that, The fixed bracket (200) further includes a connecting plate (230), which spans the partition frame (220) on the side opposite to the base plate (211) in a third direction, and the two ends of the connecting plate (230) are respectively connected to the two upright plates (2122a).

10. An electronic device, characterized in that, The processor module included in any one of claims 1-9.