Server with wire management assembly

By designing cable management components in the server, the problem of insufficient mechanical strength and flexibility of the existing structure in complex interconnected environments is solved, achieving high efficiency in cable management and stable installation of fan modules, thereby improving the server's operation and maintenance efficiency and overall stability.

CN121614008BActive Publication Date: 2026-06-02INSPUR SUZHOU INTELLIGENT TECH CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
INSPUR SUZHOU INTELLIGENT TECH CO LTD
Filing Date
2026-02-02
Publication Date
2026-06-02

AI Technical Summary

Technical Problem

Existing cable management structures lack sufficient mechanical strength and flexibility in servers, making it difficult to adapt to complex internal interconnection requirements, leading to maintenance difficulties and cable damage.

Method used

Design a server that includes a chassis base and cable management components. The cable management components are located on both sides of the fan module and have mating areas and cable threading areas. Through the combination of support structures, cable guide springs and cable clips, the orderly management of cables and the stable installation of the fan module can be achieved.

Benefits of technology

It improves the utilization of internal server space, simplifies cabling and fan maintenance, reduces the risk of cable damage, and enhances system reliability and maintainability.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses a server with a wire arrangement assembly, comprising a cabinet base and a wire arrangement assembly, wherein a fan module is arranged in the cabinet base; the wire arrangement assembly is two groups, and the two groups of wire arrangement assemblies are respectively arranged on the two sides of the fan module and are respectively connected with the two inner side walls of the cabinet base; wherein, in the direction from top to bottom of the cabinet base, the wire arrangement assembly has a matching area and a threading area, the two sides of the fan module are respectively slidably matched with the two matching areas to provide a guiding effect for the installation of the fan module, and the threading area is used for cable threading. The application at least solves the problem that the existing wire arrangement structure in the prior art does not have sufficient mechanical strength and flexibility, is difficult to adapt to the increasing internal interconnection complexity and cable management requirements of the server, and is prone to causing operation and maintenance difficulties and cable damage.
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Description

Technical Field

[0001] This application relates to the field of computer technology, and more particularly to a server with cable management components. Background Technology

[0002] With the development of internet technology, servers need to adapt to more complex data environments and more diverse hardware requirements. This means that the internal interconnection of services will become more complex, and the difficulty of internal cable management will increase. For maintenance reasons, existing cable management structures mostly use fixed local bundles or simple plastic parts. Although they can manage cables to a certain extent, they lack sufficient mechanical strength and flexibility, making it difficult to adapt to the increasing complexity of internal server interconnections and cable management needs. Moreover, they are prone to causing maintenance difficulties and cable damage. Summary of the Invention

[0003] This application provides a server with cable management components to at least solve the problems in the existing cable management structures in the related art, which lack sufficient mechanical strength and flexibility, making it difficult to adapt to the increasing internal interconnection complexity and cable management needs of servers, and easily causing maintenance difficulties and cable damage.

[0004] This application provides a server with cable management components, including a chassis base and cable management components. The chassis base houses a fan module. There are two sets of cable management components, located on both sides of the fan module and connected to two inner sidewalls of the chassis base. The cable management components have mating areas and cable passage areas in the top-to-bottom direction of the chassis base. The two sides of the fan module slide with the two mating areas to provide guidance for the installation of the fan module, and the cable passage areas are used for cables to pass through.

[0005] In one exemplary embodiment, the cable management assembly is detachably connected to the chassis base.

[0006] In an exemplary embodiment, the cable management assembly includes a support structure, a cable guide spring, and a cable clip. The support structure is connected to the inner wall of the chassis base and has a mating area to allow the fan module to slide against the support structure. The cable guide spring is connected to the inner wall of the chassis base and is located below the support structure. The cable clip has a fixing part and a cable management part. The fixing part is connected to the inner wall of the chassis base and is located below the cable guide spring. A first end of the cable management part is pivotally connected to the fixing part, and a second end of the cable management part has a first locking structure. The cable management part has a locked state in which it rotates in a first direction to engage the first locking structure with a second locking structure on the support structure, and an open state in which it rotates in a second direction opposite to the first direction to release the engagement between the first and second locking structures. When the cable management part is in the locked state, a cable threading area is formed between the cable management part and the cable guide spring.

[0007] In one exemplary embodiment, the support structure is made of a metal structural member; and / or, the wire guide spring is made of a metal structural member; and / or, the fixing part is made of a metal structural member; and / or, the wire management part is made of a plastic structural member.

[0008] In an exemplary embodiment, the support structure includes a support plate and a limiting plate, wherein the support plate is connected to the inner wall of the chassis base and extends vertically; the limiting plate is connected to the support plate and extends horizontally, and the second snap-fit ​​structure is a cable clamp handle movably disposed on the limiting plate; the cable management section includes a cable clamp structure and a limiting structure, wherein the first end of the cable clamp structure is pivotally connected to the fixing part; the limiting structure is connected to the second end of the cable clamp structure and extends horizontally, so that the limiting structure and the cable clamp structure form an L-shaped cable management section; the limiting structure... The top end face has a handle inclined surface and a handle stop pin hole. The handle inclined surface is inclined upward along the side facing the wire clamp structure and is located on the side of the handle stop pin hole opposite to the wire clamp structure. The handle stop pin hole forms a first locking structure. The handle inclined surface is used to gradually push the wire clamp handle upward and float during the rotation of the wire management part in the first direction, and squeeze the spring inside the wire clamp handle to compress it until the wire management part rotates to the preset position. Under the action of the internal spring, the wire clamp handle extends into the handle stop pin hole to lock the wire management clamp and the support structure.

[0009] In an exemplary embodiment, the fixing part includes a housing and a flange structure, wherein the housing has a groove on the side facing the chassis base, a pivot shaft is disposed in the groove, and the first end of the clamp structure has a pivot hole for engaging with the pivot shaft; the flange structure is connected to the housing at the groove opening, and the flange structure is folded outward so that the fixing part is connected to the inner wall of the chassis base through the flange structure.

[0010] In an exemplary embodiment, multiple bent springs extend from the wire guide spring towards the wire threading area; when the wire clip is in the locked state, the wire guiding part squeezes the multiple bent springs and causes the multiple bent springs to deform; when the wire clip handle is lifted, the wire guiding part automatically pops out to the open state under the elastic action of the multiple bent springs.

[0011] In an exemplary embodiment, the fan module includes a fan bracket and a handle assembly, wherein the fan bracket is used to accommodate multiple fans; there are two handle assemblies, each located on one side of the fan bracket; the handle assembly includes a guide bracket and an assist handle, wherein the guide bracket is connected to the fan bracket and slides with a cable management assembly, the guide bracket has a receiving groove having an opening at least facing away from the chassis base; the assist handle is rotatably disposed at the receiving groove, the assist handle having a locked state in which it rotates in a third direction to cover the opening of the receiving groove and engages with the cable management assembly, and an unlocked state in which it rotates in a fourth direction opposite to the third direction and releases the engagement with the cable management assembly.

[0012] In an exemplary embodiment, the guide bracket includes a first guide structure and a second guide structure. The first guide structure extends vertically and has a guide slide. The cable management portion has a mating area, and the mating area is provided with a first guide groove for mating with the guide slide. The second guide structure is connected to the first guide structure and located above the first guide structure. The second guide structure is connected to the fan bracket and has a receiving groove. The second guide structure has two second guide grooves, both of which extend vertically and are spaced apart. The mating area of ​​the support structure has guide protrusions, and there are multiple guide protrusions. At least two of the multiple guide protrusions are used to mat with one of the two second guide grooves, and at least one of the remaining guide protrusions is used to mat with the other of the two second guide grooves.

[0013] In an exemplary embodiment, the power handle has an arc-shaped guide groove on the side facing the support structure; the mating area of ​​the support structure also has a limiting protrusion for mating with the arc-shaped guide groove, the height of the limiting protrusion on the support structure being higher than the height of the guide protrusion; wherein, the arc-shaped guide groove slides and engages with the limiting protrusion as the power handle rotates, so that the power handle rotates from the unlocked state to the locked state.

[0014] This application provides a server with cable management components, including a chassis base and cable management components. The chassis base houses a fan module. Two sets of cable management components are located on either side of the fan module and are connected to two inner sidewalls of the chassis base. The cable management components have mating areas and cable-passing areas along the top-to-bottom direction of the chassis base. The fan module's sides slide against the two mating areas to guide the installation of the fan module, and the cable-passing areas are for cables to pass through.

[0015] By applying the technical solution of this embodiment, the server achieves effective cable management and rapid installation and removal of the fan module within a limited space by installing a fan module inside the chassis base and configuring cable management components on both sides of the fan module. The cable management components are designed to serve both as cable routing areas, allowing cables to pass smoothly, and as mating areas on the chassis base from top to bottom, sliding with the sides of the fan module to provide guidance and ensure accurate alignment and stable installation of the fan module. This structure avoids interference between cables and the fan module, reduces the risk of cable damage, and simplifies internal server cabling and fan maintenance. The synergistic effect of the fan module and cable management components not only improves the server's heat dissipation efficiency but also optimizes cable layout, enhancing system reliability and maintainability.

[0016] The cable management component provided in this application significantly improves the utilization of internal server space and solves the problem of complex cable management, especially for cables on both sides of the centrally located fan module, achieving the goal of effective cable management without affecting the normal operation of the fan. At the same time, it facilitates the installation and removal of the fan module, reduces maintenance costs, and improves the overall ease of operation and stability of the server. Through the application of the above technical solutions, this application effectively improves the internal cable management and fan module maintenance process of the server, providing technical support for efficient server operation and maintenance. Attached Figure Description

[0017] To more clearly illustrate the embodiments of this application, the accompanying drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0018] Figure 1 This is a partial structural diagram of a server provided in an embodiment of this application;

[0019] Figure 2 for Figure 1 A schematic diagram showing the cable management components on the left side of the server in an assembled state with the chassis base;

[0020] Figure 3 for Figure 1 A schematic diagram showing the cable management components on the right side of the server in an assembled state with the chassis base;

[0021] Figure 4 for Figure 3 A schematic diagram of the support structure for the cable management components;

[0022] Figure 5 for Figure 3 A schematic diagram of the cable management component's cable guide springs and chassis base in an assembled state;

[0023] Figure 6 for Figure 3 The diagram shows the cable management section of the cable management component in two states: locked and open.

[0024] Figure 7 for Figure 6 A schematic diagram of the cable clip structure;

[0025] Figure 8 for Figure 7 A schematic diagram of the cable management section of the cable clip in the open state;

[0026] Figure 9 for Figure 7 A schematic diagram of the cable management section of the cable clip;

[0027] Figure 10 for Figure 7 A schematic diagram of the fixing part of the cable clip;

[0028] Figure 11 for Figure 1 A schematic diagram of the fan module structure of the server in the diagram;

[0029] Figure 12 for Figure 11 A schematic diagram of the handle assembly of the fan module in the middle;

[0030] Figure 13 for Figure 12 A side view structural diagram of the handle assembly;

[0031] Figure 14 for Figure 13 A structural schematic diagram of the handle assembly from another side view;

[0032] Figure 15 for Figure 13 An exploded view of the handle assembly;

[0033] Figure 16 for Figure 11A schematic diagram of the fan module's handle assembly in a locked state;

[0034] Figure 17 for Figure 16 A schematic diagram of the handle assembly in the unlocked state;

[0035] Figure 18 for Figure 17 A structural diagram showing the handle component in the unlocked state from the other side.

[0036] The above figures include the following reference numerals:

[0037] 10. Chassis base; 11. First-step stud; 12. Second-step stud;

[0038] 20. Fan module; 21. Fan bracket; 22. Handle assembly; 221. Guide bracket; 2211. Receiving groove; 2212. First guide structure; 2213. Guide slide; 2214. Second guide structure; 2215. Second guide groove; 2216. Clearance notch; 2217. Assembly hole; 222. Power handle; 2221. Arc-shaped guide groove;

[0039] 30. Cable management assembly; 31. Support structure; 311. Support plate; 3111. Guide protrusion; 3112. Limiting protrusion; 3113. First fastener; 312. Limiting plate; 3121. Cable clip handle; 32. Cable guide spring; 321. Bending spring; 33. Cable clip; 331. Fixing part; 3311. Housing; 3312. Groove; 3313. Pivot shaft; 3314. Flanged structure; 332. Cable management part; 3321. Cable clip structure; 3322. Limiting structure; 3323. Handle inclined surface; 3324. Handle stop pin hole; 3325. Pivot hole; 3326. First guide groove;

[0040] 100. Threading area. Detailed Implementation

[0041] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments. Based on the embodiments of this application, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of this application.

[0042] It should be noted that the terms "center," "longitudinal," "lateral," "length," "width," "thickness," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," "outer," "clockwise," "counterclockwise," "axial," "radial," and "circumferential," etc., indicating orientation or positional relationships based on the orientation or positional relationships shown in the accompanying drawings, are only for the convenience of describing this application and simplifying the description, and do 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 application. The terms "installed," "connected," and "linked" should be interpreted broadly, for example, they can be fixed connections, detachable connections, or integral connections; they can be mechanical connections or electrical connections; they can be direct connections or indirect connections through an intermediate medium; they can be internal connections between two elements. The terms "parallel," "perpendicular," and "equal" include the described situation and situations similar to the described situation, the range of which is within an acceptable deviation range, wherein the acceptable deviation range is determined by those skilled in the art taking into account the measurement under discussion and the error associated with the measurement of a particular quantity (i.e., the limitations of the measurement system). For example, "parallel" includes absolute parallelism and approximate parallelism, where an acceptable deviation range for approximate parallelism can be, for example, within 5°; "perpendicular" includes absolute perpendicularity and approximate perpendicularity, where an acceptable deviation range for approximate perpendicularity can also be, for example, within 5°. "Equal" includes absolute equality and approximate equality, where an acceptable deviation range for approximate equality can be, for example, a difference between the two equal items being less than or equal to 5% of either one. Those skilled in the art will understand the specific meaning of the above terms in this application based on the specific circumstances.

[0043] To enable those skilled in the art to better understand the present application, the present application will be further described in detail below with reference to the accompanying drawings and specific embodiments.

[0044] The embodiments of this application provide a server with cable management components. The device is described in detail in conjunction with the structure and working principle of the server with cable management components (the technical terms involved must be explained).

[0045] like Figures 1 to 18As shown, the server with cable management components includes a chassis base 10 and cable management components 30. The chassis base 10 houses a fan module 20. There are two sets of cable management components 30, located on both sides of the fan module 20 and connected to the two inner sidewalls of the chassis base 10. The cable management components 30 have a mating area and a cable passage area 100 in the direction from top to bottom of the chassis base 10. The two sides of the fan module 20 slide with the two mating areas to provide guidance for the installation of the fan module 20. The cable passage area 100 is used for cables to pass through.

[0046] By applying the technical solution of this embodiment, the server achieves effective cable management and rapid installation and removal of the fan module within a limited space by installing a fan module inside the chassis base and configuring cable management components on both sides of the fan module. The cable management components are designed to serve both as cable routing areas, allowing cables to pass smoothly, and as mating areas on the chassis base from top to bottom, sliding with the sides of the fan module to provide guidance and ensure accurate alignment and stable installation of the fan module. This structure avoids interference between cables and the fan module, reduces the risk of cable damage, and simplifies internal server cabling and fan maintenance. The synergistic effect of the fan module and cable management components not only improves the server's heat dissipation efficiency but also optimizes cable layout, enhancing system reliability and maintainability.

[0047] The cable management component provided in this application significantly improves the utilization of internal server space and solves the problem of complex cable management, especially for cables on both sides of the centrally located fan module, achieving the goal of effective cable management without affecting the normal operation of the fan. At the same time, it facilitates the installation and removal of the fan module, reduces maintenance costs, and improves the overall ease of operation and stability of the server. Through the application of the above technical solutions, this application effectively improves the internal cable management and fan module maintenance process of the server, providing technical support for efficient server operation and maintenance.

[0048] It should be noted that in this application, the cable management component 30 is detachably connected to the chassis base 10. This ensures the ease of installation and removal of the cable management component 30, effectively solving the problems of internal cable management and fan module 20 installation, and improving server operation and maintenance efficiency and internal space utilization.

[0049] Of course, in other embodiments not shown in the figure, the connection method between the cable management component 30 and the chassis base 10 can be adjusted according to the specific usage scenario and needs, such as using snap-fit ​​connection, magnetic connection, etc., to adapt to different server architectures and maintenance needs.

[0050] like Figure 2 and Figure 3As shown, the cable management assembly 30 includes a support structure 31, a cable guide spring 32, and a cable clip 33. The support structure 31 is connected to the inner wall of the chassis base 10 and has a mating area to allow the fan module 20 to slide against it. The cable guide spring 32 is connected to the inner wall of the chassis base 10 and is located below the support structure 31. The cable clip 33 has a fixing part 331 and a cable management part 332. The fixing part 331 is connected to the inner wall of the chassis base 10 and is located below the cable guide spring 32. The first end of cable management part 332 is pivotally connected to the fixing part 331, and the second end of cable management part 332 has a first snap-fit ​​structure. The cable management part 332 has a locked state where it rotates in a first direction to engage the first snap-fit ​​structure with a second snap-fit ​​structure on the support structure 31, and an open state where it rotates in a second direction opposite to the first direction to release the engagement of the first and second snap-fit ​​structures. When the cable management part 332 is in the locked state, a cable threading area 100 is formed between the cable management part 332 and the cable guide spring 32. Thus, the cable management assembly 30 is integrated into the inner wall of the chassis base 10, and mainly includes the support structure 31, the cable guide spring 32, and the cable clip 33. The support structure 31 has a mating area designed to guide the smooth installation of the fan module 20, and is adjacent to the fixing part 331 of the cable clip 33. The cable guide spring 32 is located below the support structure 31 and connected to the chassis base 10. It is designed with four bends to increase elasticity and deformation capacity. The cable management part 332 of the cable clip 33 is pivotally connected to the fixing part 331. It can rotate in the first direction to the locked state, at which time the first locking structure cooperates with the second locking structure on the support structure 31 to stabilize the position of the cable management part 332; or it can rotate in the opposite second direction to the open state, releasing the locking engagement for easy maintenance. In the locked state, the cable management part 332 and the cable guide spring 32 together form the cable threading area 100, providing an orderly path for the cables. When the maintenance personnel lift the cable clip handle 3121, the cable management part 332 is disengaged from the locking state and automatically springs open under the elastic recovery of the cable guide spring 32. This mechanism significantly improves the disassembly and assembly efficiency of the cable clip 33 and simplifies the cable maintenance process. Furthermore, the cooperation between the support structure 31 and the first guide structure 2212 not only ensures the correct positioning of the fan module 20, but also optimizes its installation process, making connector mating more precise. The entire solution cleverly utilizes the space on the side wall of the chassis, achieving the dual functions of cable management and fan module installation, and improving the flexibility and operability of the server's internal layout.

[0051] It should be noted that in this application, the support structure 31 is made of metal structural components; and / or, the cable guide spring 32 is made of metal structural components; and / or, the fixing part 331 is made of metal structural components; and / or, the cable management part 332 is made of plastic structural components. Thus, the support structure 31, the cable guide spring 32, and the fixing part 331 are preferably made of metal structural components, while the cable management part 332 is made of plastic structural components. This design combines the high strength of metal materials with the flexibility of plastic materials. The metal structural components provide the necessary support and fixing strength to ensure the stability of the cable management clips in the complex environment inside the server, while the plastic cable management part 332 can better adapt to cable management needs, achieving flexible cable management and protection. As an elastic component, the choice of metal material for the cable guide spring 32 ensures sufficient elasticity and durability, providing necessary elastic feedback during cable management and fan module installation, ensuring the automatic pop-out function of the cable clip handle, allowing maintenance personnel to quickly and easily install and remove the cable management clips when organizing cables. Meanwhile, the metal fixing part 331 ensures a stable connection between the cable clamp handle and the plastic part of the cable clamp, while the use of the plastic cable management part 332 ensures the flexibility and low wear of the cable clamp during use, reducing potential damage to the cable. This combination of metal and plastic not only enhances the reliability and functionality of the overall structure but also improves the utilization efficiency of the server's internal space and the convenience of cable management. Of course, in other embodiments not shown, the material selection of each component can also be adjusted according to specific needs to meet the strength, wear resistance, and cost requirements of different application scenarios.

[0052] like Figures 2 to 10As shown, the support structure 31 includes a support plate 311 and a limiting plate 312. The support plate 311 is connected to the inner wall of the chassis base 10 and extends vertically. The limiting plate 312 is connected to the support plate 311 and extends horizontally. The second snap-fit ​​structure is a cable clamp handle 3121 movably mounted on the limiting plate 312. The cable management section 332 includes a cable clamp structure 3321 and a limiting structure 3322. The first end of the cable clamp structure 3321 is pivotally connected to the fixing part 331. The limiting structure 3322 is connected to the second end of the cable clamp structure 3321 and extends horizontally, so that the limiting structure 3322 and the cable clamp structure 3321 form an L-shaped cable management section 332. The limiting structure 3322... The top end face has a handle inclined surface 3323 and a handle stop pin hole 3324. The handle inclined surface 3323 is inclined upward along the side facing the wire clamp structure 3321 and is located on the side of the handle stop pin hole 3324 opposite to the wire clamp structure 3321. The handle stop pin hole 3324 forms a first snap-fit ​​structure. The handle inclined surface 3323 is used to gradually push the wire clamp handle 3121 upward to float during the rotation of the wire management part 332 in the first direction, and squeeze the spring inside the wire clamp handle 3121 to put it in a compressed state until the wire management part 332 rotates to the preset position. Under the action of the internal spring, the wire clamp handle 3121 extends into the handle stop pin hole 3324 to lock the wire management clamp 33 and the support structure 31. Thus, the support structure 31 integrates a support plate 311 and a limiting plate 312. The support plate 311 is perpendicular to the inner wall of the chassis base 10, while the limiting plate 312 extends horizontally and is connected to the support plate 311. The cable clamp handle 3121 is movably mounted on the limiting plate 312 as a second locking structure. The cable management section 332 is composed of a cable clamp structure 3321 and a limiting structure 3322. One end of the cable clamp structure 3321 is pivotally connected to the fixing part 331, and the limiting structure 3322 extends horizontally and is connected to the other end of the cable clamp structure 3321. The two together form an L-shaped cable management section 332. The top of the limiting structure 3322 is provided with a handle inclined surface 3323 and a handle stop pin hole 3324. The handle inclined surface 3323 is inclined towards the side of the cable clamp structure 3321 and is located on the other side of the handle stop pin hole 3324 opposite to the cable clamp structure 3321. When the cable management unit 332 rotates to a predetermined position in the first direction, the inclined surface 3323 of the handle gradually pushes the cable clamp handle 3121 upward during rotation, compressing the built-in spring into a compressed state. Once the cable management unit 332 reaches the preset position, the cable clamp handle 3121 quickly extends into the handle stop pin hole 3324 under the action of the spring's restoring force, thereby locking the cable clamp 33 to the support structure 31. This mechanism not only simplifies the installation and removal process of the cable clamp but also ensures stable cable restraint during operation, reduces cable damage caused by frequent operation, and improves the efficiency and safety of internal server cabling.

[0053] Furthermore, the L-shaped cable management section 332 formed by the limiting structure 3322 and the cable clamp structure 3321, along with the cable clamp handle 3121 on the limiting plate 312, jointly provide guidance and positioning functions during fan module installation, ensuring smooth insertion and secure fixation of the fan module. The elasticity of the spring, combined with the design of the inclined surface 3323 of the handle, makes the installation and removal of the cable clamp 33 smoother, requiring no additional tools and greatly improving the convenience of server maintenance and upgrades. This design effectively integrates the functions of cable management and fan module installation, optimizes the internal space layout of the server, enhances the flexibility of cable management, and reduces the complexity of hardware maintenance, reflecting an efficient and practical design philosophy.

[0054] like Figure 4 and Figure 5 As shown, the chassis base 10 includes a first stepped stud 11 and a second stepped stud 12. The support plate 311 is connected to the chassis base 10 by the cooperation of the first fastener 3113 with the first stepped stud 11. The fixing part 331 is connected to the chassis base 10 by the cooperation of the second fastener with the second stepped stud 12.

[0055] like Figure 10 As shown, the fixing part 331 includes a housing 3311 and a flange structure 3314. The housing 3311 has a groove 3312 on the side facing the chassis base 10, and a pivot shaft 3313 is disposed within the groove 3312. The first end of the wire clamp structure 3321 has a pivot hole 3325 for engaging with the pivot shaft 3313. The flange structure 3314 connects to the housing 3311 at the opening of the groove 3312, and the flange structure 3314 is folded outwards so that the fixing part 331 is connected to the inner wall of the chassis base 10 through the flange structure 3314. Thus, the fixing part 331 is designed to include a housing 3311 and a flange structure 3314. The housing 3311 has a groove 3312 on the side facing the chassis base 10, into which a pivot shaft 3313 is embedded. The first end of the wire clamp structure 3321 has a pivot hole 3325, which cooperates with the pivot shaft 3313, allowing the wire clamp structure 3321 to pivot on the fixing part 331. The flange structure 3314 is connected to the housing 3311 at the opening of the groove 3312, and it is folded outward. Through this structure, the fixing part 331 can be stably connected to the inner wall of the chassis base 10. This design not only ensures the reliable connection and flexibility of the wire clamp structure 3321, but also enhances the stability of the entire device through the connection between the flange structure 3314 and the chassis base 10, providing a stable and adjustable solution for cable management. In other embodiments not shown, by changing the shape of the flange structure 3314 or adjusting the connection method between the housing 3311 and the chassis base 10, the installation and user experience of the fixing part 331 can be further optimized, ensuring its adaptability and stability in different application scenarios.

[0056] like Figure 5 As shown, multiple bent springs 321 extend from the cable guide spring 32 toward the cable threading area 100. When the cable management clamp 33 is in the locked state, the cable management part 332 compresses the multiple bent springs 321 and deforms them. When the cable clamp handle 3121 is lifted, the cable management part 332 automatically pops out to the open state under the elastic action of the multiple bent springs 321. This design allows the cable management clamp 33 to quickly respond and release cables during server maintenance, reducing the operational burden on maintenance personnel. The elastic restoring force of the cable guide springs 32 ensures that the cable management clips 33 maintain a stable locked state when no external force is applied, thereby effectively restraining and managing the cables inside the server and avoiding problems such as poor heat dissipation or connector wear caused by messy cables. Furthermore, the deformation and recovery mechanism of the multiple bent springs 321 not only improves the flexibility of the cable management clips 33 but also enhances their durability. Even under frequent disassembly and assembly operations, they maintain good elasticity and positioning, extending their service life and optimizing the internal layout and management efficiency of the server. Of course, in other embodiments not shown in the figures, the cable guide springs 32 can also be designed with different numbers or angles of bends to adapt to the management needs of different specifications or types of cables, further improving the application range and adaptability of this structure.

[0057] like Figures 11 to 18As shown, the fan module 20 includes a fan bracket 21 and a handle assembly 22. The fan bracket 21 is used to accommodate multiple fans. There are two handle assemblies 22, which are located on both sides of the fan bracket 21. The handle assembly 22 includes a guide bracket 221 and an assist handle 222. The guide bracket 221 is connected to the fan bracket 21 and slides with the cable management assembly 30. The guide bracket 221 has a receiving groove 2211 with an opening at least facing away from the chassis base 10. The assist handle 222 is rotatably disposed at the receiving groove 2211. The assist handle 222 has a locked state where it rotates in a third direction to cover the opening of the receiving groove 2211 and engages with the cable management assembly 30, and an unlocked state where it rotates in a fourth direction opposite to the third direction and releases the engagement with the cable management assembly 30. Thus, the fan module 20 includes a fan bracket 21 and two handle assemblies 22, located on either side of the fan bracket 21. Each handle assembly 22 consists of a guide bracket 221 and an assist handle 222. The guide bracket 221 is connected to the fan bracket 21 and has the characteristic of slidingly engaging with the cable management assembly 30. Its receiving slot 2211 is designed with a groove facing away from the chassis base 10 at least. The assist handle 222 is rotatably disposed within the receiving slot 2211. It has a locking state where it rotates in a third direction to cover the groove and engage with the cable management assembly 30, and an unlocking state where it rotates in a fourth direction to release the engagement with the cable management assembly 30. This design allows the fan module 20 to be quickly locked and unlocked with the chassis during installation and removal by rotating the assist handle 222. Simultaneously, the sliding engagement between the guide bracket 221 and the cable management assembly 30 ensures the stability and positioning accuracy of the fan module 20 during installation, ensuring the fan connector is properly inserted, effectively improving maintenance efficiency and the tidiness of the server's interior.

[0058] like Figures 12 to 15As shown, the guide bracket 221 includes a first guide structure 2212 and a second guide structure 2214. The first guide structure 2212 extends vertically and has a guide slide 2213. The cable management portion 332 has a mating area, and a first guide groove 3326 for mating with the guide slide 2213 is provided in the mating area. The second guide structure 2214 is connected to the first guide structure 2212 and is located above the first guide structure 2212. The second guide structure 2214 is connected to the fan bracket 21 and has a receiving groove 2. 211; wherein, the second guide structure 2214 has two second guide grooves 2215, both of which extend vertically and are spaced apart; the mating area of ​​the support structure 31 has guide protrusions 3111, there are multiple guide protrusions 3111, at least two of the multiple guide protrusions 3111 are used to mate with one of the two second guide grooves 2215, and at least one of the remaining guide protrusions 3111 is used to mate with the other of the two second guide grooves 2215. Thus, the structural design of the guide bracket 221 includes a first guide structure 2212 and a second guide structure 2214. The first guide structure 2212 is provided with a guide slide 2213 in the vertical direction, which mates with the first guide groove 3326 provided in the mating area of ​​the cable management part 332, so as to realize the precise positioning and smooth sliding of the fan module 20 and the support structure 31 during the installation process. The second guide structure 2214 is located above and connected to the first guide structure 2212, and is also connected to the fan bracket 21. It has a receiving groove 2211 and two second guide grooves 2215 that extend vertically and are spaced apart. The mating area of ​​the support structure 31 is provided with a plurality of guide protrusions 3111. At least two guide protrusions 3111 respectively mate with one of the two second guide grooves 2215 to ensure the stability and guidance of the fan module 20 during installation. At least one of the remaining guide protrusions 3111 mates with the other second guide groove 2215, further enhancing the accuracy and reliability of the overall structure.

[0059] This design, during the installation of the fan module 20, achieves rapid alignment and stable connection between the fan module 20 and the support structure 31 through the cooperation of the first guide groove 3326 and the guide slide 2213, and the cooperation of the second guide groove 2215 and the guide protrusion 3111. This effectively improves the efficiency and accuracy of the installation of internal server components, while reducing the risk of damage caused by misalignment or forced installation. Furthermore, the cooperation between the guide bracket 221 and the support structure 31 also facilitates the disassembly and maintenance of the fan module 20, ensuring efficiency and safety during server operation and maintenance. Through this series of cooperative structures, the technical solution of this embodiment not only optimizes the installation process of the fan module 20 but also promotes the rational utilization of internal server cable management space, providing efficient and stable technical support for the layout and maintenance of internal server components.

[0060] like Figures 15 to 18 As shown, the power assist handle 222 has an arc-shaped guide groove 2221 on the side facing the support structure 31; the mating area of ​​the support structure 31 also has a limiting protrusion 3112 for engaging with the arc-shaped guide groove 2221, the height of the limiting protrusion 3112 on the support structure 31 being higher than the height of the guide protrusion 3111; wherein, the arc-shaped guide groove 2221 slides and engages with the limiting protrusion 3112 as the power assist handle 222 rotates, so that the power assist handle 222 rotates from the unlocked state to the locked state. Thus, the power assist handle 222 has an arc-shaped guide groove 2221 on the side facing the support structure 31; the mating area of ​​the support structure 31 is equipped with a limiting protrusion 3112, the height of which is higher than that of the guide protrusion 3111. As the power assist handle 222 rotates, the arc-shaped guide groove 2221 and the limiting protrusion 3112 slide and engage, guiding the power assist handle 222 smoothly from the unlocked state to the locked state. This design not only ensures precise control of the power assist handle 222's movement trajectory but also provides additional limiting functions, preventing structural damage or misoperation due to excessive rotation. Simultaneously, the dynamic cooperation between the limiting protrusion 3112 and the arc-shaped guide groove 2221 optimizes the tactile feedback during fan module installation and removal, enhancing operational intuitiveness and safety. In other embodiments not shown in the figures, the shapes of the arc-shaped guide groove and the limiting protrusion can be further adjusted to accommodate different operating forces or angles, improving design compatibility and user experience. In other embodiments not shown in the figures, this structure can also adjust the locking force and rotation stroke of the power assist handle by fine-tuning the position and size of the limiting protrusion to adapt to more diverse design requirements. Furthermore, this design reduces impact during locking, making installation and removal operations smoother and more stable. In summary, through the precise cooperation of the limiting protrusion and guide groove, this embodiment achieves high efficiency and reliability in power assist handle state transitions, facilitating rapid equipment maintenance.

[0061] like Figure 14 As shown, the guide bracket 221 has an assembly hole 2217 and a clearance notch 2216. The guide bracket 221 is connected to the fan bracket 21 through the assembly hole 2217, and the clearance notch 2216 is used to avoid the limiting protrusion 3112.

[0062] During server maintenance or assembly, the installation of cable clips is synchronized with the positioning of the fan module. First, the fixing part 331 of the cable management assembly 30 is securely connected to the inner wall of the chassis base 10 via its flanged structure 3314. The first end of the cable management part 332 engages with the pivot shaft 3313 within the housing 3311 via a pivot hole 3325, allowing the cable clip structure 3321 to pivot on the fixing part 331. When cables need to be secured, maintenance personnel press down on the cable clip handle 3121, forcing the cable management part 332 to rotate in the first direction until the handle stop pin hole 3324 aligns with the handle tilt surface 3323 on the cable clip handle 3121. At this point, the force of the internal spring causes the cable clip handle 3121 to extend into the handle stop pin hole 3324, completing the locking state transition and stably securing the cables within the cable management part 332.

[0063] Subsequently, during the installation of the fan module, the maintenance personnel align the mating area of ​​the fan module 20 with that of the support structure 31, ensuring that both sides of the fan bracket 21 slide into contact with the mating area of ​​the support structure 31. During this process, the guide slide 2213 on the guide bracket 221 engages with the first guide groove 3326 at the mating area of ​​the cable management assembly 30, ensuring that the fan module 20 is smoothly inserted along the correct path. Simultaneously, the second guide groove 2215 engages with the guide protrusion 3111 on the support structure 31, further optimizing the positioning accuracy. The assist handle 222 of the fan module 20 is rotatably positioned at the receiving groove 2211. By rotating it in a third direction to cover the groove opening, it engages with the limiting protrusion 3112 and the guide protrusion 3111 on the support structure 31, locking the fan module in place. Once the fan module 20 is fully inserted, the irregular stop structure on the power handle 222 and the limiting protrusion 3112 form a positioning, ensuring accurate mating of the connector and completing the installation of the fan module 20.

[0064] When it is necessary to disassemble the fan module 20 or reorganize the cables, the maintenance personnel pull the cable clamp handle 3121, causing the cable management section 332 to rotate in the second direction to the open state. At this time, the cable management section 332 squeezes the cable guide spring 32, causing it to deform. When the cable clamp handle 3121 is fully lifted, the cable management section 332 automatically pops out under the elastic restoring force of the cable guide spring 32, and the cables are released. At the same time, the maintenance personnel rotate the assist handle 222 in the fourth direction to release its engagement with the limiting protrusion 3112 on the support structure 31, thereby unlocking the fan module 20. Subsequently, the fan module 20 can be easily pulled out along the guide path between the guide protrusion 3111 and the second guide groove 2215, completing the disassembly process. Throughout the operation, the strength provided by the metal support structure 31, the cable guide spring 32, and the metal fixing part 331 ensures the stability of the structure, while the plastic cable management part 332 of the cable management part 332 provides the flexibility of cable management, ensuring the efficient maintenance and upgrade of the server.

[0065] The foregoing has provided a detailed description of a server with a cable management component provided in this application. Specific examples have been used to illustrate the principles and implementation methods of this application. The descriptions of the embodiments above are merely for the purpose of helping to understand the method and core ideas of this application. It should be noted that those skilled in the art can make various improvements and modifications to this application without departing from its principles, and these improvements and modifications also fall within the protection scope of the claims of this application.

Claims

1. A server with cable management components, characterized in that, include: A chassis base (10) is provided with a fan module (20) inside the chassis base (10); Cable management assembly (30), the cable management assembly (30) consists of two sets, the two sets of cable management assembly (30) are located on both sides of the fan module (20), and are respectively connected to the two inner side walls of the chassis base (10); In the chassis base (10) from top to bottom, the cable management assembly (30) has a mating area and a cable threading area (100). The two sides of the fan module (20) are respectively slidably mated with the two mating areas to provide guidance for the installation of the fan module (20). The cable threading area (100) is used for cables to pass through. The cable management component (30) includes: A support structure (31) is connected to the inner wall of the chassis base (10), and the support structure (31) has the mating area so that the fan module (20) slides with the support structure (31); A wire guide spring (32) is connected to the inner wall of the chassis base (10) and is located below the support structure (31); Cable clip (33), the cable clip (33) has a fixing part (331) and a cable management part (332), the fixing part (331) is connected to the inner wall of the chassis base (10) and is located below the cable guide spring (32), the first end of the cable management part (332) is pivotally connected to the fixing part (331), and the second end of the cable management part (332) has a first snap-fit ​​structure; The cable management part (332) has a locked state in which it rotates in a first direction to engage the first snap-fit ​​structure with the second snap-fit ​​structure on the support structure (31), and an open state in which it rotates in a second direction opposite to the first direction to release the engagement between the first snap-fit ​​structure and the second snap-fit ​​structure. When the thread guiding part (332) is in the locked state, the thread guiding part (332) and the thread passing spring (32) form the thread passing area (100).

2. The server according to claim 1, characterized in that, The cable management assembly (30) is detachably connected to the chassis base (10).

3. The server according to claim 1, characterized in that, The supporting structure (31) is made of metal structural components; and / or, The wire guide spring (32) is made of a metal structural component; and / or, The fixing part (331) is made of a metal structural component; and / or, The cable management section (332) is made of plastic structural parts.

4. The server according to claim 1, characterized in that, The support structure (31) includes: A support plate (311) is connected to the inner wall of the chassis base (10) and extends in the vertical direction; A limiting plate (312) is connected to the support plate (311) and extends in the horizontal direction. The second snap-fit ​​structure is a wire clamp handle (3121) movably disposed on the limiting plate (312). The thread management section (332) includes: A wire clamp structure (3321) is provided, the first end of which is pivotally connected to the fixing part (331); A limiting structure (3322) is connected to the second end of the wire clamp structure (3321) and extends in the horizontal direction so that the limiting structure (3322) and the wire clamp structure (3321) form an L-shaped wire management part (332). The top end face of the limiting structure (3322) has a handle inclined surface (3323) and a handle stop pin hole (3324). The handle inclined surface (3323) is inclined upward along the side facing the wire clamp structure (3321) and is located on the side of the handle stop pin hole (3324) away from the wire clamp structure (3321). The handle stop pin hole (3324) forms the first snap-fit ​​structure. The inclined surface of the handle (3323) is used to gradually push the wire clamp handle (3121) upward during the rotation of the wire management part (332) in the first direction, and squeeze the spring inside the wire clamp handle (3121) to compress it until the wire management part (332) rotates to the preset position. Then, the wire clamp handle (3121) extends into the handle stop pin hole (3324) under the action of its internal spring to lock the wire management clamp (33) and the support structure (31).

5. The server according to claim 4, characterized in that, The fixing part (331) includes: The housing (3311) has a groove (3312) on the side facing the chassis base (10), and a pivot shaft (3313) is provided in the groove (3312). The first end of the wire clamp structure (3321) has a pivot hole (3325) for cooperating with the pivot shaft (3313). A flange structure (3314) is connected to the housing (3311) at the opening of the groove (3312). The flange structure (3314) is folded outward so that the fixing part (331) is connected to the inner wall of the chassis base (10) through the flange structure (3314).

6. The server according to claim 4, characterized in that, The thread guide spring (32) extends a plurality of bent springs (321) toward the threading area (100). When the cable clip (33) is in the locked state, the cable management part (332) squeezes the multiple bending springs (321) and causes the multiple bending springs (321) to deform. When the cable clip handle (3121) is lifted, the cable management section (332) automatically pops out to the open state under the elastic action of the multiple bending springs (321).

7. The server according to claim 1, characterized in that, The fan module (20) includes: Fan bracket (21) for accommodating multiple fans; Handle assembly (22), there are two handle assemblies (22), and the two handle assemblies (22) are respectively located on both sides of the fan bracket (21); The handle assembly (22) includes: A guide bracket (221) is connected to the fan bracket (21) and the guide bracket (221) is slidably engaged with the cable management assembly (30). The guide bracket (221) has a receiving groove (2211) with an opening facing away from the chassis base (10). The power handle (222) is rotatably disposed at the receiving groove (2211). The power handle (222) has a locked state in which it rotates along a third direction to cover the opening of the receiving groove (2211) and engages with the cable management assembly (30), and an unlocked state in which it rotates along a fourth direction opposite to the third direction and releases the engagement with the cable management assembly (30).

8. The server according to claim 7, characterized in that, The guide bracket (221) includes: The first guide structure (2212) extends vertically and has a guide slide (2213). The cable management part (332) has the mating area and a first guide groove (3326) for mating with the guide slide (2213) is provided in the mating area. The second guide structure (2214) is connected to the first guide structure (2212) and located above the first guide structure (2212). The second guide structure (2214) is connected to the fan bracket (21) and has the receiving groove (2211). The second guide structure (2214) has two second guide grooves (2215), both of which extend vertically and are spaced apart. The mating area of ​​the support structure (31) has guide protrusions (3111), and there are multiple guide protrusions (3111). At least two of the multiple guide protrusions (3111) are used to mate with one of the two second guide grooves (2215), and at least one of the remaining guide protrusions (3111) is used to mate with the other of the two second guide grooves (2215).

9. The server according to claim 8, characterized in that, The power handle (222) has an arc-shaped guide groove (2221) on the side facing the support structure (31). The mating area of ​​the support structure (31) also has a limiting protrusion (3112) for mating with the arc-shaped guide groove (2221), and the height of the limiting protrusion (3112) on the support structure (31) is higher than the height of the guide protrusion (3111). The arc-shaped guide groove (2221) slides in conjunction with the limiting protrusion (3112) as the power handle (222) rotates, so that the power handle (222) rotates from the unlocked state to the locked state.