Server structure

By flexibly arranging the hard drive modules and designing the cloud platform mounting positions, combined with support frame and heat dissipation optimization, the problem of traditional server structures being unable to install cloud platform modules has been solved, achieving flexible configuration and efficient heat dissipation of the server structure, and improving space utilization and hardware integration.

CN223796901UActive Publication Date: 2026-01-13SUMA TECH CO LTD
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Patent Information

Application Number
CN202520326705.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-27
Publication Date
2026-01-13
Estimated Expiration
2035-02-27

AI Technical Summary

Technical Problem

Traditional server architectures cannot accommodate the installation of cloud platform modules and cannot meet the diverse configuration requirements of big data and cloud computing.

Method used

By flexibly arranging the hard drive modules in both planar and vertical directions, and designing the cloud platform mounting positions, combined with the optimization of support frames, heat sinks, and air vents, the installation and stability of the cloud platform modules are achieved, improving space utilization and heat dissipation performance.

Benefits of technology

It enables flexible configuration of server structure, improves internal space utilization and hardware integration, enhances heat dissipation performance and stability, and reduces maintenance costs and time.

✦ Generated by Eureka AI based on patent content.

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Abstract

The embodiment of the utility model provides a server structure, and relates to the technical field of servers. The structure comprises a shell, and the shell is provided with an accommodating cavity; the hard disk module at least comprises a first module and a second module, the first module and the second module are arranged in the containing cavity in the first direction and the second direction respectively, and the first module, the second module and the shell jointly define a cloud platform installation position; and the cloud platform module is installed at the cloud platform installation position. According to the server structure provided by the embodiment of the invention, the installation of the cloud platform module is realized, and flexible and diversified configuration support is provided for the server structure.
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Description

Technical Field

[0001] This application relates to the field of server technology, and in particular to a server architecture. Background Technology

[0002] Servers play a crucial role in network environments, providing computing power and running software applications to offer computing or application services to other client machines (such as personal computers, smartphones, ATMs, and other terminal devices). Servers are widely used in many fields, including internet services, enterprise data centers, and cloud computing platforms.

[0003] Traditional server architectures include components such as motherboards and hard drive modules. With the development of big data and cloud computing, servers need to meet diverse configuration requirements within a limited space. Therefore, some server architectures also need to be equipped with cloud platform modules.

[0004] However, the traditional server architecture, with its integrated components, cannot accommodate the installation of cloud platform modules. Utility Model Content

[0005] In view of this, the embodiments of this application provide a server structure that enables the installation of cloud platform modules and provides flexible and diverse configuration support for the server structure.

[0006] To achieve the above objectives, embodiments of this application provide a server architecture that employs the following technical solution:

[0007] This application provides a server structure, including: a housing with a receiving cavity; a hard disk module, including at least a first module and a second module, wherein the first module and the second module are respectively disposed in the receiving cavity along a first direction and a second direction, and the first module, the second module and the housing together surround a cloud platform mounting position; and a cloud platform module installed in the cloud platform mounting position.

[0008] By flexibly arranging the hard drive modules in both planar and vertical directions, and designing the cloud platform mounting positions, the server structure maximizes the use of internal space. Furthermore, this server structure can simultaneously or selectively accommodate multiple hard drive modules and cloud platform modules, enabling diverse configuration requirements. It is understood that this server structure allows for the selective installation or removal of components. For example, in a server structure where a cloud platform is not required, only the cloud platform module needs to be removed. Compared to traditional server structures, this application offers greater adaptability and flexibility in component installation, allowing for selective installation based on customer needs. In summary, the server structure design of this application improves internal space utilization and hardware integration, and also provides flexible and diverse configuration support for cloud computing and big data applications.

[0009] In one possible implementation, the cloud platform module includes: a support frame mounted on the housing and located at the cloud platform mounting position; and a cloud platform main component located below the support frame.

[0010] The cloud platform main component is mounted below the support frame. This design helps to fully utilize the space beneath the support frame for cloud platform mounting and also ensures compatibility and heat dissipation between the cloud platform main component and other components such as hard drive modules. This mounting arrangement ensures the stability and reliability of the cloud platform module within the server, and the modular design also makes maintenance of the cloud platform module simpler and more efficient, reducing maintenance costs and time.

[0011] In one possible implementation, the cloud platform module further includes a heat sink, the support frame includes a top plate and a plurality of first support members connected to the top plate, the first support members are used to connect the housing, the top plate has an air vent, and the heat sink is located below the top plate.

[0012] By designing heat sinks and air vents, the heat dissipation performance of the server structure has been significantly improved, ensuring the stable operation of the server. The reasonable layout of heat sinks and support frames has also improved space utilization and hardware integration, enhancing heat dissipation performance.

[0013] In one possible implementation, the heat sink is located between the cloud platform main component and the top plate.

[0014] By placing the heat sink directly between the cloud platform main unit and the top plate, a highly efficient heat exchange space is formed, improving heat dissipation performance. In addition, this layout further ensures full utilization of the internal space of the server, meets heat dissipation requirements, and also ensures the stability of the cloud platform module inside the server.

[0015] In one possible implementation, the top plate includes a first plate segment and a second plate segment interconnected along a third direction, the first plate segment and the second plate segment being distributed in a stepped manner, and the second plate segment being disposed below the first plate segment along the second direction;

[0016] The air vent is located on the second plate segment, and the second plate segment and the first module define a first air guide channel.

[0017] By designing the first air duct and utilizing the guiding effect of the air vents, the top plate design improves the server's heat dissipation performance, optimizes the server's internal layout, and further improves space utilization.

[0018] In one possible implementation, a second air duct is further provided on the second plate segment, the first port of the second air duct is connected to the first air duct, and the second port of the second air duct is disposed toward the second module.

[0019] When the heat sink is operating, air enters the first air duct from the cloud platform main component through the vent, while some air flows towards the second module through the second air duct. In this way, the heat sink drives airflow around the cloud platform components and hard drive module, improving their heat dissipation. Thus, through the synergistic effect of the first and second air ducts, the airflow within the ducts is more orderly and efficient, helping to remove heat generated by the heat-generating components more quickly.

[0020] In one possible implementation, the housing includes a base and an outer shell.

[0021] The first module and the second module are disposed abutting against the outer casing.

[0022] The first module and the base are arranged at a distance, and the second module is disposed abutting against the base.

[0023] By further designing the positions of the first and second modules, the heat dissipation of the server structure was improved, the stability of the hard disk module inside the server was ensured, and the space utilization was optimized.

[0024] In one possible implementation, the outer casing has a fixing notch for fixing the first module.

[0025] The first module is connected to the outer casing via a fixing notch, which is simple, stable, and reliable to install. It also helps reduce installation time and costs. The fixing notch design ensures the stability of the first module inside the server, preventing it from moving or vibrating during operation. Furthermore, the fixing notch design also addresses the needs of heat dissipation and airflow; airflow within the server structure can exit through the fixing notch, aiding in heat dissipation.

[0026] In one possible implementation, a fixing plate is provided on the inner wall of the outer shell along a first direction, and the fixing plate is located at the bottom end of the fixing notch.

[0027] The design of the mounting plate enhances the connection stability between the first module and the housing, allowing the first module to be more securely fixed to the housing and remain stable even when the server structure is subjected to high loads or vibrations.

[0028] In one possible implementation, the server structure further includes a second support member, and the second module and the housing are respectively provided with mounting interfaces for mounting the second support member.

[0029] By setting up a second support component and installation interface, the server structure gains greater flexibility and scalability. When a cloud platform module needs to be installed, the second support component can be removed and the cloud platform module installed; when the cloud platform module is not needed, the second support component can be installed to maintain the overall stability of the server structure.

[0030] The server structure provided in this application embodiment, through the flexible layout of hard disk modules in the plane and height directions and the design of cloud platform installation positions, can make maximum use of internal space. In addition, the server structure of this application can simultaneously or selectively accommodate multiple hard disk modules and cloud platform modules to achieve diversification of configuration requirements.

[0031] This server architecture allows for the selective installation or removal of components. For example, in server architectures that do not require a cloud platform, only the cloud platform module needs to be removed. Compared to traditional server architectures, this application offers greater adaptability and flexibility in component installation, allowing for selective installation and preparation based on customer needs. Therefore, the server architecture design of this application improves internal space utilization and hardware integration, while also providing flexible and diverse configuration support for cloud computing and big data applications. Attached Figure Description

[0032] The accompanying drawings, which are incorporated in and constitute a part of this specification, illustrate corresponding embodiments and, together with the description, serve to explain the principles of the embodiments of this application. Obviously, the drawings described below are some embodiments, and those skilled in the art can obtain other drawings based on these drawings without creative effort.

[0033] Figure 1 A schematic diagram of the server structure provided in the embodiments of this application, which includes a cloud platform module. Figure 1 ;

[0034] Figure 2 A schematic diagram of the server structure provided in the embodiments of this application, which includes a cloud platform module. Figure 2 ;

[0035] Figure 3 for Figure 2 Schematic diagram of the middle support frame;

[0036] Figure 4 The schematic diagram of the server structure provided in this embodiment of the application does not include a cloud platform module.

[0037] Explanation of reference numerals in the attached figures:

[0038] 10-Cloud platform installation slots;

[0039] 100 - Housing; 100a - Receiving cavity; 100b - Fixing notch; 110 - Base; 120 - Outer shell;

[0040] 200 - Hard disk module; 210 - First module; 220 - Second module;

[0041] 300 - Cloud platform module; 310 - Support frame; 311 - Top plate; 311a - First plate segment; 311b - Second plate segment; 312 - First support component;

[0042] 410 - Air outlet; 420 - First air duct; 430 - Second air duct;

[0043] 500-Fixed Plate;

[0044] 600 - Second support component;

[0045] 700 - Installation Interface.

[0046] The accompanying drawings have illustrated specific embodiments, which will be described in more detail below. These drawings and descriptions are not intended to limit the scope of the embodiments of this application in any way, but rather to illustrate the concepts of the embodiments of this application to those skilled in the art through reference to particular embodiments. Detailed Implementation

[0047] 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 represent the same or similar elements. The embodiments described in the following exemplary embodiments do not represent all embodiments consistent with those of this application. Rather, they are merely examples of apparatuses and methods consistent with some aspects of the embodiments of this application as detailed in the appended claims.

[0048] Secondly, it should be noted that in the description of the embodiments of this application, the terms "inner" and "outer" and other terms indicating the direction or positional relationship are based on the direction or positional relationship shown in the drawings. This is only for the convenience of description and is not intended to indicate or imply that the device or component must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, it should not be construed as a limitation on the embodiments of this application.

[0049] Furthermore, it should be noted that, in the description of the embodiments of this application, unless otherwise explicitly specified and limited, the terms "connected" and "linked" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in the embodiments of this application according to the specific circumstances.

[0050] Servers play a crucial role in network environments, providing computing power and running software applications to offer computing or application services to other client machines (such as personal computers, smartphones, ATMs, and other terminal devices). Servers are widely used in many fields, including internet services, enterprise data centers, and cloud computing platforms.

[0051] Traditional server architectures include components such as motherboards and hard drive modules. With the development of big data and cloud computing, servers need to meet diverse configuration requirements within limited space. Therefore, some server architectures also require the installation of cloud platform modules. However, the integrated nature of traditional server components makes it impossible to install cloud platform modules.

[0052] To address the aforementioned issues, this application provides a server structure that, through flexible layout of hard drive modules in both planar and vertical directions, and the design of cloud platform mounting positions, maximizes the utilization of internal space. Furthermore, this server structure can simultaneously or selectively accommodate multiple hard drive modules and cloud platform modules, enabling diverse configuration requirements. This server structure allows for the selective installation or removal of components; for example, in a server structure where a cloud platform is not required, only the cloud platform module needs to be removed. Compared to traditional server structures, this application offers greater adaptability and flexibility in component installation, allowing for selective installation based on customer needs. In summary, the server structure design of this application improves internal space utilization and hardware integration, and also provides flexible and diverse configuration support for cloud computing and big data applications.

[0053] It should be noted that the cloud platform installation slot designed in this application can also selectively install other components required by the server structure, especially in server structures that do not require the installation of a cloud platform module. Replacing the cloud platform module at the installation slot with other required components still falls within the scope of protection of this application.

[0054] 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.

[0055] The following will combine Figures 1 to 4 The embodiments of this application will be described below. Optionally, x represents a first direction, z represents a second direction, and y represents a third direction.

[0056] Reference Figures 1 to 3 As shown in the figure, an embodiment of this application provides a server structure including a shell 100, a hard disk module 200, and a cloud platform module 300.

[0057] The housing 100 is the external frame of the server, used to protect and support the internal components. The housing 100 has a receiving cavity 100a, which is used to accommodate server components such as the hard disk module 200 and the cloud platform module 300.

[0058] The hard disk module 200 includes at least a first module 210 and a second module 220, which are respectively disposed within the receiving cavity 100a along a first direction and a second direction. Optionally, the first direction and the second direction are at a preset angle; preferably, the first direction is perpendicular to the second direction.

[0059] Optionally, the first module 210 and the second module 220 may each include two hard drives arranged side by side, wherein the two hard drives of the first module 210 are arranged sequentially along a first direction, and the two hard drives of the second module 220 are stacked along a second direction. For example, the hard drives are 2.5-inch hard drives.

[0060] Optionally, the first direction can be the horizontal direction (i.e., the x-direction), and the second direction can be the vertical direction (i.e., the z-direction). This layout design aims to make full use of the space of the housing 100a, both expanding in the plane and stacking in the height. Compared with the traditional method of laying only in the horizontal or vertical direction, this design increases the number of hard disk modules 200 that can be installed and also improves the overall space utilization.

[0061] The first module 210, the second module 220, and the housing 100 together enclose the cloud platform mounting position 10, and the cloud platform module 300 is installed in the cloud platform mounting position 10.

[0062] In actual design, the cloud platform mounting position 10 needs to be adapted to the size of the cloud platform module 300, its heat dissipation requirements, and its compatibility with other components. The cloud platform module 300 is installed in the cloud platform mounting position 10 to provide cloud computing services or support the functions required for the operation of the cloud platform.

[0063] Optionally, the cloud platform module 300 may be an OCP (Open Compute Project) module to improve the efficiency, reliability and flexibility of data center and server architecture. The cloud platform module 300 may include necessary hardware and software components such as processors, memory, and storage.

[0064] As can be seen, through the flexible layout of the hard disk module 200 in the plane and height directions, and the design of the cloud platform mounting position 10, the server structure can make maximum use of the internal space. In addition, the server structure of this application can simultaneously or selectively accommodate multiple hard disk modules 200 and cloud platform modules 300, realizing the diversification of configuration requirements.

[0065] Understandably, this server architecture allows for the selective installation or removal of components. For example, in a server architecture that does not require a cloud platform, only the cloud platform module 300 needs to be removed. Compared to traditional server architectures, this application is highly adaptable and offers greater flexibility in component installation, allowing for selective installation and preparation based on customer needs. In summary, the server architecture design of this application improves internal space utilization and hardware integration, and also provides flexible and diverse configuration support for cloud computing and big data applications.

[0066] In some embodiments, combined with Figure 1 and Figure 2 The cloud platform module 300 includes a support frame 310 and a cloud platform main component. The support frame 310 is mounted on the housing 100 and is located at the cloud platform mounting position 10. The cloud platform main component is located below the support frame 310.

[0067] The support frame 310 is the main support component of the cloud platform module 300, used to provide rigid support for the hardware and software at the cloud platform mounting position 10. Optionally, the support frame 310 is configured to match the mounting points (such as screw holes, clips, etc.) on the housing 100 to ensure its stable installation. For example, the support frame 310 can be installed with screws, which can be ordinary screws or non-releasable hand screws.

[0068] The cloud platform main component is the core of the cloud platform module 300, and may contain the main hardware and software components required to realize cloud computing functions. The cloud platform main component is mounted under the support frame 310. This design helps to make full use of the space in the cloud platform mounting position 10 under the support frame 310, and also ensures compatibility and heat dissipation between the cloud platform main component and other components such as the hard drive module 200.

[0069] This installation relationship ensures the stability and reliability of the cloud platform module 300 within the server. The modular design also makes the maintenance of the cloud platform module 300 simpler and more efficient, reducing maintenance costs and time.

[0070] In some embodiments, combined with Figure 2 and Figure 3 The cloud platform module 300 also includes a heat sink. The support frame 310 includes a top plate 311 and a plurality of first support members 312 connected to the top plate 311. The first support members 312 are used to connect the housing 100. An air vent 410 is provided on the top plate 311. The heat sink is located below the top plate 311.

[0071] Understandably, the heat sink is designed to be located above the cloud platform module 300 to assist in heat dissipation, such as helping to cool the cloud platform main unit, the hard disk module 200 above it, and other components that may generate heat.

[0072] Optionally, the heat dissipation component can be a cooling fan, heat sink, heat pipe, etc. The specific design can be selected according to actual needs, and there are no restrictions here.

[0073] Optionally, the first support member 312 may be a support plate extending in a third direction. The support plate plays a certain role in shielding and further ensures the directional flow of air when the heat dissipation component is in operation.

[0074] The top plate 311 in the support frame 310 is the main load-bearing part. The top plate 311 is located above the cloud platform module 300. The first support member 312 connects the top plate 311 and the shell 100, providing structural support and ensuring the stability of the cloud platform module 300 inside the server.

[0075] Furthermore, an air vent 410 is provided on the top plate 311, which allows airflow and helps the heat dissipation components to more effectively carry heat flow.

[0076] Optionally, the hard drive module 200 and the cloud platform main component are located on the upper and lower sides of the air vent 410, respectively. The operation of the heat dissipation component will accelerate the airflow between the two and ensure heat dissipation efficiency.

[0077] It is evident that by designing heat sinks and air vents 410, the heat dissipation performance of the server structure has been significantly improved, ensuring the stable operation of the server. The reasonable layout of the heat sinks and support frame 310 has also improved space utilization and hardware integration, enhancing heat dissipation performance.

[0078] In some embodiments, not shown in the figures, a heat sink is disposed between the cloud platform main unit and the top plate 311. It is understood that the heat sink is disposed between the cloud platform main unit and the top plate 311 to form a tight heat exchange space. This arrangement involves enabling the heat sink to more effectively absorb the heat generated by the cloud platform main unit and dissipate the heat through the vent 410 out of the cloud platform mounting position 10, and then to the outside of the server.

[0079] The cloud platform main component is positioned below the heat sink. Optionally, the cloud platform component is in close contact with the heat sink or there is an appropriate gap to allow airflow.

[0080] By directly placing the heat sink between the cloud platform main component and the top plate 311, a highly efficient heat exchange space is formed, improving heat dissipation performance. In addition, this layout further ensures full utilization of the internal space of the server, meets heat dissipation requirements, and also ensures the stability of the cloud platform module 300 inside the server.

[0081] In some embodiments, combined with Figure 2 and Figure 3The top plate 311 includes a first plate segment 311a and a second plate segment 311b connected to each other along a third direction (i.e., the y direction). The first plate segment 311a and the second plate segment 311b are distributed in a stepped manner. The second plate segment 311b is located below the first plate segment 311a along the second direction. The air vent 410 is located on the second plate segment 311b. The second plate segment 311b and the first module 210 define a first air guide duct 420.

[0082] It is understood that the top plate 311 is designed as a first plate segment 311a and a second plate segment 311b, which are connected to each other along a third direction. Optionally, the third direction and the first direction are at a preset angle on the horizontal plane. Preferably, the third direction is set perpendicular to the first direction.

[0083] The first plate segment 311a and the second plate segment 311b are distributed in a stepped manner in terms of height, that is, the second plate segment 311b is offset downward relative to the first plate segment 311a along a second direction. Optionally, the second direction can be the height direction.

[0084] Air vent 410 is located on the second plate segment 311b. This arrangement helps guide airflow and improves heat dissipation efficiency. A first air duct 420 is defined between the second plate segment 311b and the first module 210. The first air duct 420 utilizes the stepped design of the second plate segment 311b and the shape of the first module 210 to form a narrow channel, which helps accelerate airflow and improve heat dissipation.

[0085] By designing the first air duct 420 and utilizing the guiding effect of the air outlet 410, the top plate 311 design improves the server's heat dissipation performance, optimizes the server's internal layout, and further improves space utilization.

[0086] In some embodiments, combined with Figure 1 , Figure 2 and Figure 3 The second section 311b is also provided with a second air duct 430. The first port of the second air duct 430 is connected to the first air duct 420, and the second port of the second air duct 430 is set towards the second module 220.

[0087] Understandably, the second air guide 430 is located on the second plate segment 311b and complements the first air guide 420. The first port of the second air guide 430 is connected to the first air guide 420, ensuring that air can flow freely between the two air guides.

[0088] In addition, the second port of the second air duct 430 is set towards the second module 220. When the heat dissipation component is working, air will enter the first air duct 420 from the cloud platform main component through the air outlet 410, and some air will flow towards the second module 220 through the second air duct 430. In this way, the heat dissipation component will drive the air flow at the cloud platform component and the hard disk module 200, thereby improving the heat dissipation effect of the cloud platform component and the hard disk module 200.

[0089] Thus, through the synergistic effect of the first air duct 420 and the second air duct 430, the airflow in the air duct is more orderly and efficient, which helps to remove the heat generated by the heat-generating components more quickly.

[0090] In some embodiments, the housing 100 may be provided with an air inlet and an air outlet. Optionally, the cloud platform main component may be located close to the air inlet, and the first air duct 420 may be designed to face the air outlet.

[0091] As can be seen, by opening a second air duct 430 on the second plate segment 311b and connecting it with the first air duct 420, this design further improves the heat dissipation performance and enhances the flexibility of the heat dissipation system.

[0092] In some embodiments, combined with Figure 1 and Figure 2 The housing 100 includes a base 110 and an outer shell 120. A first module 210 and a second module 220 are disposed abutting against the outer shell 120. The first module 210 and the base 110 are arranged at a distance, and the second module 220 is disposed abutting against the base 110.

[0093] It is understood that the housing 100 includes a base 110 and an outer shell 120. The base 110 may be designed to be located at the bottom of the server to support the various components of the server. The base 110 may include multiple interfaces and expansion slots. The outer shell 120 covers the base 110 to protect the internal electronic components from physical damage. The outer shell 120 may include structures such as heat dissipation holes.

[0094] Furthermore, optionally, the first module 210 can be closely attached to the inner wall of the housing 120 and fixed to the housing 120. This layout design helps to utilize the heat dissipation capacity of the housing 120 to help dissipate the heat generated by the first module 210 to the outside of the server. Optionally, the second module 220 can be designed to abut against the base 110 and the housing 120. The second module 220 can be directly mounted on the base 110. This layout involves ensuring the stability of the second module 220 inside the server.

[0095] The first module 210 and the base 110 are designed to be spaced apart, with a certain space or gap between them. This design helps to assist airflow and improve heat dissipation efficiency.

[0096] It is evident that by further designing the positions of the first module 210 and the second module 220, the heat dissipation of the server structure has been improved, the stability of the hard disk module 200 inside the server has been ensured, and the space utilization has been optimized.

[0097] In some embodiments, combined with Figure 2 The outer casing 120 has a fixing notch 100b, which is used to fix the first module 210.

[0098] In the actual design, the shape and size of the fixing notch 100b are matched with the first module 210 to ensure the secure installation of the first module 210. Optionally, the fixing notch 100b may be designed with a snap, screw hole or other fixing mechanism to securely fix the first module 210 to the housing 120.

[0099] The first module 210 is connected to the housing 120 via a fixing notch 100b, which is simple, stable, and reliable to install, and also helps reduce installation time and costs. The design of the fixing notch 100b also ensures the stability of the first module 210 inside the server, preventing it from moving or vibrating during operation. In addition, the design of the fixing notch 100b also takes into account the needs of heat dissipation and airflow. Airflow within the server structure can flow out through the fixing notch 100b, assisting in heat dissipation.

[0100] In some embodiments, combined with Figure 2 The inner wall of the outer casing 120 is provided with a fixing plate 500 arranged along the first direction (i.e., the x direction), and the fixing plate 500 is located at the bottom end of the fixing notch 100b.

[0101] A mounting plate 500 is positioned at the bottom of the mounting notch 100b. This design prevents the first module 210 from slipping during installation and provides additional support for the first module 210. The mounting plate 500 enhances the connection stability between the first module 210 and the housing 120, allowing the first module 210 to be more securely fixed to the housing 120, maintaining stability even under high loads or vibrations.

[0102] In some embodiments, combined with Figure 4 The server structure also includes a second support component 600, and mounting interfaces 700 for mounting the second support component 600 are respectively provided on the second module 220 and the housing 100. It can be understood that the second support component 600 is also used to be mounted at the cloud platform mounting position 10, so as to replace the support frame 310 for support when the cloud platform module 300 is not installed or does not need to be installed.

[0103] Optionally, the second support member 600 can be designed as a support rod extending along the second direction, which achieves the support effect while saving material compared to the support plate.

[0104] The second support component 600 can provide additional support and stability in the server structure. It is understood that when the server structure does not require the cloud platform module 300 to be installed, only the second support component 600 can be installed to ensure the overall stability of the server structure.

[0105] The second module 220 and the housing 100 are respectively provided with mounting interfaces 700 for mounting the second support member 600. Optionally, the mounting interface 700 may include screw holes, clips, or other fixing mechanisms to securely mount the second support member 600 on the server. The design of the mounting interface 700 ensures that the second support member 600 can be accurately installed in a preset position, improving installation convenience and support stability.

[0106] It is understood that, optionally, the mounting structure on the housing 100 can also be connected to the first support member 312.

[0107] Thus, by setting up the second support component 600 and the installation interface 700, the server structure has greater flexibility and scalability. When it is necessary to install the cloud platform module 300, the second support component 600 can be removed and the cloud platform module 300 can be installed; when the cloud platform module 300 is not needed, the second support component 600 can be installed to maintain the overall stability of the server structure.

[0108] Those skilled in the art, upon considering the specification and practicing the technical solutions disclosed herein, will readily conceive of other embodiments of the present application. The embodiments of this application are intended to cover any variations, uses, or adaptations of the embodiments of this application that follow the general principles of the embodiments of this application and include common knowledge or customary technical means in the art not disclosed in the embodiments of this application. The specification and embodiments are to be considered exemplary only, and the true scope and spirit of the embodiments of this application are indicated by the following claims.

[0109] It should be understood that the embodiments of this application are not limited to the precise structures described above and shown in the accompanying drawings, and various modifications and changes can be made without departing from their scope. The scope of the embodiments of this application is limited only by the appended claims.

Claims

1. A server architecture, characterized in that, include: The housing (100) has a receiving cavity (100a); The hard disk module (200) includes at least a first module (210) and a second module (220). The first module (210) and the second module (220) are respectively disposed in the receiving cavity (100a) along a first direction and a second direction. The first module (210), the second module (220) and the housing (100) together surround the cloud platform mounting position (10). A cloud platform module (300) is installed in the cloud platform mounting position (10).

2. The server structure according to claim 1, characterized in that, The cloud platform module (300) includes: A support frame (310) is installed on the housing (100) and located at the cloud platform mounting position (10); The cloud platform main component is located below the support frame (310).

3. The server structure according to claim 2, characterized in that, The cloud platform module (300) also includes a heat sink. The support frame (310) includes a top plate (311) and a plurality of first support members (312) connected to the top plate (311). The first support members (312) are used to connect the housing (100). The top plate (311) has an air vent (410). The heat sink is located below the top plate (311).

4. The server structure according to claim 3, characterized in that, The heat sink is located between the main cloud platform component and the top plate (311).

5. The server structure according to claim 3, characterized in that, The top plate (311) includes a first plate segment (311a) and a second plate segment (311b) that are interconnected along a third direction. The first plate segment (311a) and the second plate segment (311b) are distributed in a stepped manner, and the second plate segment (311b) is located below the first plate segment (311a) along the second direction. The air vent (410) is located on the second plate segment (311b), and the second plate segment (311b) and the first module (210) define a first air guide duct (420).

6. The server structure according to claim 5, characterized in that, The second plate segment (311b) is also provided with a second air guide duct (430), the first port of the second air guide duct (430) is connected to the first air guide duct (420), and the second port of the second air guide duct (430) is arranged towards the second module (220).

7. The server structure according to claim 1, characterized in that, The housing (100) includes a base (110) and an outer shell (120). The first module (210) and the second module (220) are disposed abutting against the outer casing (120). The first module (210) and the base (110) are arranged at intervals, and the second module (220) is disposed abutting against the base (110).

8. The server structure according to claim 7, characterized in that, The outer casing (120) has a fixing notch (100b) for fixing the first module (210).

9. The server structure according to claim 8, characterized in that, The inner wall of the outer shell (120) is provided with a fixing plate (500) arranged along the first direction, and the fixing plate (500) is located at the bottom end of the fixing notch (100b).

10. The server architecture according to any one of claims 1-9, characterized in that, It also includes a second support member (600), and the second module (220) and the housing (100) are respectively provided with mounting interfaces (700) for mounting the second support member (600).