A cable installation device and a computing device

By designing a switchable cable installation device, the classified installation and convenient maintenance of cables in high-performance computing equipment are achieved, solving the problems of cable confusion and incorrect installation, and improving installation accuracy and maintenance efficiency.

CN119315458BActive Publication Date: 2025-10-24HENAN KUNLUN TECH CO LTD
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Patent Information

Application Number
CN202411187185.1
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-08-27
Publication Date
2025-10-24
Estimated Expiration
2044-08-27

AI Technical Summary

Technical Problem

In high-performance, high-density computing equipment, the installation and maintenance of connecting cables become difficult, especially when different types of cables are easily confused and installed incorrectly.

Method used

A cable installation device is provided, comprising a partition element capable of switching between a first state and a second state. In the first state, a plurality of stacked cable management channels are formed to isolate cables of different categories. In the second state, the cables are exposed for easy inspection and maintenance.

Benefits of technology

Through classified installation and convenient inspection and maintenance, cable confusion and installation errors are reduced, installation accuracy is improved, and cable management is simplified.

✦ Generated by Eureka AI based on patent content.

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Abstract

Embodiments of the present application disclose a cable mounting device and a computing device, wherein the cable mounting device comprises a separation element, the separation element comprises a first separation part, and the separation element is configured to be capable of displacement to switch between a first position and a second position; the cable mounting device has a first state and a second state; in the first state, the separation element is in the first position, and the cable mounting device forms a plurality of wire arranging channels arranged in layers, and the first separation part of one separation element is arranged between two adjacent wire arranging channels to shield the corresponding wire arranging channel; in the second state, at least one separation element is in the second position, and at least one wire arranging channel shielded by the first separation part is in an exposed state. The cable mounting device can realize separate mounting of different types of connection cables, can reduce the confusion and misplacement of the connection cables, and can also consider the convenience of inspection and maintenance of the connection cables.
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Description

TECHNICAL FIELD

[0001] Embodiments of the present application relate to the technical field of computing devices, and particularly relate to a cable installation device and a computing device. BACKGROUND

[0002] With the wide application of cloud computing, big data and virtualization, computing devices such as servers develop towards high performance and high density, and the number of connection cables used by the computing devices is increasing, which makes the installation and maintenance of the connection cables difficult.

[0003] Therefore, how to provide a solution to overcome or alleviate the above defects is still a technical problem to be solved by those skilled in the art. SUMMARY

[0004] Embodiments of the present application provide a cable installation device and a computing device, wherein the cable installation device can realize the installation of different types of connection cables respectively, can reduce the confusion and misplacement of the connection cables, and can also consider the convenience of inspection and maintenance of the connection cables.

[0005] In a first aspect, embodiments of the present application provide a cable installation device, comprising a separation element, the separation element comprising a first separation part, the separation element being configured to be capable of displacement to switch between a first position and a second position; the cable installation device having a first state and a second state; in the first state, the separation element is in the first position, the cable installation device forms a plurality of layer-stacked cable management channels, and the first separation part of the separation element is between two adjacent cable management channels to shield the corresponding cable management channel; in the second state, at least one separation element is in the second position, and at least one cable management channel shielded by the first separation part is in an exposed state.

[0006] By adopting the above scheme, the separation element of the cable installation device in the embodiments of the present application can be adjusted in position, so that the cable installation device can switch between the first state and the second state.

[0007] In the first state, each separation element is in the first position. The cable installation device forms a plurality of layer-stacked cable management channels, and the first separation part of the separation element is between two adjacent cable management channels to shield the corresponding cable management channel. Meanwhile, the first separation part can also realize the isolation between the adjacent cable management channels. In specific practice, the connection cables can be classified according to their characteristics, so that the same type of connection cables can be placed in the same cable management channel, thereby facilitating the installation of different types of connection cables, reducing the confusion and misplacement of the connection cables, and improving the installation accuracy of the connection cables.

[0008] In the second state, at least one of the partition elements is in the second position. At this time, at least one of the cable routing channels originally shielded by the first partition is in an exposed state, and the connection cables in the cable routing channel can be exposed, thereby facilitating inspection and maintenance of the connection cables.

[0009] Here, the embodiments of the present application do not limit the specific application scenarios of the above-mentioned cable mounting device. In fact, the cable mounting device provided by the embodiments of the present application can be applied to any scenario in which cables need to be classified and arranged in actual applications. For example, in the field of computing devices such as servers, the computing device includes a control module and a connection module, the connection module can have multiple connection cables, the connection cables can form multiple categories according to different classification methods, and connection cables of the same category can be arranged in the same cable routing channel, which can reduce the confusion and mistakes of the connection cables, and also facilitates inspection and maintenance.

[0010] In some optional implementations, the partition element is configured to be capable of rotational displacement, and an extension direction of a rotation axis of the partition element and a direction in which the cable routing channels are stacked are arranged at an included angle. The included angle can be ninety degrees, or can also be other angle values, which are not limited here. Taking the included angle of ninety degrees as an example, when the stacking direction is basically a vertical direction, the rotation axis basically extends in a horizontal direction, and the partition element can rotate in a vertical plane. This rotation mode can effectively utilize the space in the vertical plane, and is of positive significance for reducing interference with other components in the use environment.

[0011] In addition, the rotation axis of the partition element can also extend along the stacking direction. Taking the stacking direction as a vertical direction as an example, the partition element can basically rotate in a horizontal plane to effectively utilize the space in the horizontal plane. In fact, the embodiments of the present application do not limit the extension direction of the rotation axis of the partition element when the partition element is in rotational displacement, that is, the rotation direction of the partition element, as long as it can be switched between the first position and the second position through rotational displacement.

[0012] In some optional implementations, the partition element further includes two connection portions, the two connection portions are arranged at intervals in the extension direction of the rotation axis, and the two connection portions are connected with the first partition portion. At least one of the two connection portions is connected with the rotation axis; the second accommodation space is formed between the first partition portion and the two connection portions, and at least part of the second accommodation space is used to form the cable routing channel.

[0013] In this implementation, the two connecting portions and the first partition portion cooperatively form a second accommodating space, which itself can at least partially serve as a cable management channel, i.e., there can be at least partial cable management channel formed by the partition element itself, and the forming manner is simpler. Meanwhile, the connecting portions can also serve as limiting and protecting functions, and can effectively reduce damage and interference of external environment to components in the second accommodating space.

[0014] It should be understood that, in specific practice, the connecting portions can also not be provided, in which case the partition element can only include the aforementioned first partition portion, and the rotating shaft can be directly mounted to the first partition portion, so that the structure of the partition element can be simpler.

[0015] In some optional implementations, the number of partition elements is multiple; in the first state, the partition elements are sequentially nested, among the two adjacent partition elements, the partition element located at the inner side is the first partition element, the partition element located at the outer side is the second partition element, the second accommodating space of the second partition element includes a second accommodating chamber I and a second accommodating chamber II, the second accommodating chamber I and the second accommodating chamber II are arranged along the direction close to the first partition portion of the second partition element, the second accommodating chamber I is used for accommodating the first partition element, and the second accommodating chamber II forms a cable management channel of the second partition element; in the extension direction of the rotating shaft, the connecting portions located at the same side of the partition elements are connected to one rotating shaft.

[0016] When there are multiple partition elements, for the two adjacent partition elements, the second accommodating space of the second partition element located at the outer side can be divided into two parts, i.e., the second accommodating chamber I and the second accommodating chamber II, wherein the second accommodating chamber I can be used for accommodating the first partition element, and the second accommodating chamber II can be used for forming a cable management channel of the second partition element; that is, the second accommodating space of the second partition element can only be partially used for forming the cable management channel. As for the first partition element, if there is a partition element nested at the inner side of the first partition element, the second accommodating space in the first partition element is also only partially used for forming the cable management channel; and if there is no partition element nested at the inner side of the first partition element, the second accommodating space in the first partition element can be entirely used for forming the cable management channel.

[0017] For each partition element, in the extension direction of the rotating shaft, the connecting portions located at the same side of the partition element are connected to one rotating shaft. In this way, the rotating shafts of the partition elements can be collinear, and the number of rotating shafts can be reduced, which is conducive to simplifying the structure of the cable mounting device provided by the embodiments of the present application. In fact, not only the connecting portions located at the same side, but also all the connecting portions can be connected to one rotating shaft, in which case each partition element only needs to be configured with one rotating shaft, and the structure can be simpler.

[0018] It should be understood that for each partition element, the connecting part on the same side can also be provided with a rotating shaft. At this time, the rotating shaft of each partition element can be independent of each other, the rotating axis of each partition element can be collinear or non-collinear, and the specific determination can be made according to the use requirement.

[0019] In some optional implementations, the partition element is provided with a second inlet and a second outlet, the second inlet and the second outlet are both in communication with the cable management channel of the partition element, and the second outlet is arranged close to the rotating axis relative to the second inlet.

[0020] Taking the cable installation device provided by the embodiment of the application applied to a computing device in the form of a server as an example, the connection cable can be specifically led out from the connection module, introduced into the cable management channel of the partition element from the second inlet, and then led out from the second outlet to be connected with the control module. Arranging the second outlet close to the rotating axis relative to the second inlet can reduce the pulling of the connection cable led out from the second outlet during the rotation of the partition element, and is beneficial to ensuring the connection reliability between the connection cable and the control module.

[0021] In some optional implementations, the partition element is configured to be capable of linear displacement, and the linear displacement direction of the partition element is arranged at an angle to the direction of the layering arrangement of each cable management channel. In this way, by controlling the linear displacement of the partition element, the partition element can also be driven to switch between the first position and the second position, so as to realize the change of the cable installation device between the first state and the second state. Different from the aforementioned rotational displacement, the implementation of linear displacement requires a relatively small overall space, so that the possibility of interference between the partition element and other components in the use environment during displacement can be relatively low.

[0022] In the implementation, sliding components in the form of sliding grooves, sliding blocks, pulleys, etc. can also be arranged to improve the smoothness of the linear displacement of the partition element.

[0023] In some optional implementations, the cable installation device provided by the embodiment of the application further includes a base element for mounting and fixing the cable installation device, the base element includes a bottom and two side portions arranged at intervals, the two side portions are connected with the bottom, the direction of the interval arrangement of the two side portions is arranged at an angle to the direction of the layering arrangement, a first accommodation space is formed between the bottom and the two side portions, the first accommodation space includes a first accommodation chamber I and a first accommodation chamber II, and the first accommodation chamber I and the first accommodation chamber II are arranged along the direction close to the bottom; the partition element is mounted on the base element and can displace relative to the base element; in the first state, the partition element is located in the first accommodation chamber I, and the first accommodation chamber II forms the cable management channel of the base element.

[0024] In the present implementation, the partition element can be installed on the inner side of the base element, which can constitute the structural basis of the cable installation device for achieving the installation and fixation of the cable installation device in the use environment. The two side portions of the base element can play a protective role, and can limit and protect the components located in the first accommodating space, thereby reducing the damage and interference of the outside to the components in the first accommodating space. The first accommodating space can be divided into a first accommodating chamber and a first accommodating chamber, wherein the first accommodating chamber is used to accommodate the partition element, and the first accommodating chamber is used to form the cable management channel of the base element.

[0025] In some optional implementations, the cable installation device further comprises a fixing element for fixing the connection cable to be installed and the partition element; and / or the cable installation device is further provided with a second partition portion arranged in at least one cable management channel for partitioning the cable management channel into a plurality of sub-channels arranged side by side.

[0026] The fixing element can be a wire clamp, a cable tie or the like, which can fix the connection cable in the cable management channel, so as to ensure the relative position of the connection cable and the partition element, thereby reducing the scattering of the connection cable on the partition element during the position switching process.

[0027] The second partition portion can be arranged in the cable management channel for partitioning the cable management channel into a plurality of sub-channels arranged side by side, and the types and models of the connection cables arranged in each sub-channel can also be different, so that the classified installation of the connection cables can be better achieved. The second partition portion and the partition element can be an integrated structure formed integrally, or they can be formed separately and then assembled, which is also feasible.

[0028] In some optional implementations, the partition element can be further connected with a handle portion. The handle portion can be used as a limiting component for stably limiting each partition element at the first position. Meanwhile, the handle portion can also be used as an operating component, and the user can apply a driving force to the corresponding partition element through the handle portion to conveniently drive the partition element to rotate and switch between the first position and the second position.

[0029] In addition, the handle portion can also be used as an identification component, and an identification mark such as a numerical mark, a color mark, a symbol mark or the like can be arranged on the handle portion, which is used to add identity information to the handle portion and the partition element provided with the handle portion. In specific practice, the user can accurately select the partition element to be operated and rotated or translated through the identification mark, so as to improve the convenience and accuracy of the operation, so as to quickly and accurately check and maintain the connection cable in the specified cable management channel.

[0030] In a second aspect, the embodiments of the present application also provide a computing device, comprising a control module and a connection module, a plurality of connection cables are arranged between the connection module and the control module, the connection cables are installed by a cable installation device, and the cable installation device is arranged in at least a partial region of the outer periphery of the control module.

[0031] With this scheme, when the computing device is in normal operation, the cable installation device can be in the first state, and different types of connection cables can be arranged in different cable arrangement channels respectively, so that the installation and arrangement of the connection cables can be facilitated, and the situation that the types of the connection cables are confused or incorrectly installed can be avoided to a large extent. When inspection and maintenance of the connection cables are needed, the displacement of the partition element can be controlled to switch the cable installation device to the second state, so that the inspection and maintenance of the connection cables in the cable arrangement channels can be conveniently implemented.

[0032] In some optional implementations, the connection module comprises a plurality of computing nodes, the number of the computing nodes is consistent with the number of the cable arrangement channels, and the connection cables connected to the computing nodes are arranged in the cable arrangement channels in a one-to-one correspondence. In this way, the computing nodes can be classified according to different computing nodes, and the connection cables from different computing nodes can be arranged in different cable arrangement channels respectively, so as to facilitate the arrangement of the connection cables of the computing nodes respectively. In addition, it is also feasible to classify the connection cables based on different signals transmitted by the connection cables, and then arrange the connection cables of different signal types in different cable arrangement channels.

[0033] In addition, in the present implementation, the layout of the computing nodes and the arrangement between the computing nodes and the control module are not limited, and in actual applications, a person skilled in the art can select according to specific needs. For example, the computing nodes can be arranged in layers, and the control module can be located on one side of the computing nodes in the direction in which the computing nodes are arranged in layers. For another example, the computing nodes can be arranged in layers, and the control module and the computing nodes can be arranged in sequence in a direction that forms an angle with the direction in which the computing nodes are arranged in layers.

[0034] In some optional implementations, the connection module comprises a conversion board, the conversion board is provided with a plurality of wire harness conversion portions, each wire harness conversion portion is provided with at least one connection cable, the number of the wire harness conversion portions is consistent with the number of the cable arrangement channels, and the connection cables of the wire harness conversion portions are arranged in the cable arrangement channels in a one-to-one correspondence.

[0035] The present implementation is mainly applied to the scene of a hard disk server, at this time, the connection module can include a hard disk and a conversion board. The conversion board can also be called a hard disk backplane, and each hard disk can be connected to the wire harness conversion part on the conversion board. Each wire harness conversion part can be provided with a connection cable, and the connection cables of each wire harness conversion part can be arranged one by one in each wire arrangement channel to realize the classified arrangement of each connection cable, and at the same time, the inspection and maintenance of each connection cable can also be conveniently realized. BRIEF DESCRIPTION OF DRAWINGS

[0036] Figure 1 Structure diagram of a computing device provided by the embodiments of the present application;

[0037] Figure 2 Structure diagram of a computing device provided by the embodiments of the present application;

[0038] Figure 3 Structure diagram of another computing device provided by the embodiments of the present application;

[0039] Figure 4 Structure diagram of a cable mounting device in a first state provided by the embodiments of the present application;

[0040] Figure 5 View of the cable mounting device in a second direction; Figure 4

[0041] View of the cable mounting device in a second state; Figure 6 Figure 4 Structure diagram of a base element in a second state;

[0042] Figure 7 Figure 4 Structure diagram of a base element in a second state;

[0043] Figure 8 Structure diagram of a base element in a second state; Figure 3

[0044] Structure diagram of a base element in a second state; Figure 9

[0045] Structure diagram of another cable mounting device in a second state provided by the embodiments of the present application; Figure 10

[0046] Structure diagram of another cable mounting device in a second state provided by the embodiments of the present application; Figure 11

[0047] Structure diagram of another cable mounting device in a second state provided by the embodiments of the present application; Figure 12

[0048] Structure diagram of another cable mounting device in a second state provided by the embodiments of the present application;​​Figure 13 A structure schematic view of a first partition component provided in a partition element;

[0049] Figure 14 A structure schematic view of a computing device provided by an embodiment of the present application, wherein the cable mounting device is in a first state;

[0050] Figure 15 A structure schematic view of a computing device provided by an embodiment of the present application, wherein the cable mounting device is in a second state.

[0051] Reference signs:

[0052] 1000 - computing device;

[0053] 100 - cable mounting device; 110 - base element; 111 - bottom; 112 - side; 113 - first accommodating space; 113A - first accommodating chamber I; 113B - first accommodating chamber II; 114 - opening; 115 - first wire inlet; 116 - first wire outlet; 120 - partition element; 121 - first partition; 122 - connecting portion; 123 - second wire inlet; 124 - second wire outlet; 125 - second accommodating space; 125A - second accommodating chamber I; 125B - second accommodating chamber II; 120A - first partition element; 120B - second partition element; 130 - wire management channel; 130A - first wire management channel; 130B - second wire management channel; 130C - second wire management channel; 130' - sub-channel; 140 - rotating shaft; 150 - handle portion; 151 - identification mark; 160 - second partition; 100A - first segment; 100B - second segment; 100C - third segment;

[0054] 200 - connecting cable;

[0055] 300 - control module;

[0056] 400 - computing node;

[0057] 500 - hard disk;

[0058] 600 - adapter plate; 610 - wire harness adapter portion;

[0059] 700 - connection module. DETAILED DESCRIPTION

[0060] In order to make the skilled in the art better understand the technical solutions of the present application, the present application will be further described in detail below in combination with the drawings and specific embodiments.

[0061] In the description of the embodiments of the present application, the terms "first", "second", "third" are used only for the purpose of description, and should not be understood as indicating or implying relative importance or implying the number of the technical features indicated. Therefore, the features defined as "first", "second", "third" can be explicitly or implicitly included one or more of the features.

[0062] In the description of the embodiments of the present application, it should be noted that, unless otherwise explicitly specified and limited, the terms "mounting", "connecting", "connecting" should be understood in a broad sense, for example, "connecting" can be detachable connection, or can be non-detachable connection, can be direct connection, or can be indirect connection through intermediate medium. Among them, "fixed connection" means that the relative position relationship after connection is unchanged. "Rotary connection" means that the relative rotation after connection is connected. "Sliding connection" means that the relative sliding after connection is connected.

[0063] In the description of the embodiments of the present application, the term "a plurality of" means two or more. And when "a plurality of" is used to express the number of different components, it does not mean the mutual relationship of the number of components.

[0064] In the description of the embodiments of the present application, the terms "including", "containing" or any other variant thereof are intended to cover non-exclusive inclusion, so that the process, method, article or device including a series of elements not only includes those elements, but also includes other elements not explicitly listed, or includes elements inherent to such process, method, article or device. Without more limitations, the element defined by the sentence "including a…" does not exclude the presence of other identical elements in the process, method, article or device including the element.

[0065] Please refer to Figure 1 , Figure 1 The structural diagram of the computing device provided by the embodiments of the present application is shown.

[0066] As Figure 1 shown, the embodiments of the present application provide a computing device 1000, which can be a server or the like, comprising a connection module 700 and a control module 300. The connection module 700 can lead to a plurality of connection cables 200, which can be used to connect with the control module 300, so as to realize the signal transmission relationship between the connection module 700 and the control module 300.

[0067] Please refer to Figure 2 , Figure 2 The structural diagram of a computing device in the embodiments of the present application is shown.

[0068] As Figure 2As shown, in some implementations, the computing device 1000 may be, for example, a multi-node server. In this case, the connection module 700 may include multiple computing nodes 400 .

[0069] Reference Figure 2 The computing nodes 400 may be stacked in a vertical direction. The control module 300 may be located above each computing node 400. Each computing node 400 may be configured with at least one connection cable 200. After extending from the computing node 400, the connection cable 200 may be connected to the control module 300 to achieve a communication connection between each computing node 400 and the control module 300.

[0070] It should be understood that the computing nodes 400 may not be stacked in the vertical direction, and accordingly, the control module 300 may not necessarily be located above the computing nodes 400. In other words, the embodiments of the present application do not actually limit the arrangement positions of the control module 300 and the computing nodes 400. In actual applications, those skilled in the art may determine the arrangement positions based on specific circumstances.

[0071] Please refer to Figure 3 , Figure 3 This is a simplified structural diagram of a computing device in an embodiment of the present application.

[0072] like Figure 3 As shown, in other implementations, the computing device may be, for example, a hard disk server. In this case, the connection module 700 may include a plurality of hard disks 500 and adapter plates 600 .

[0073] Reference Figure 3 The orientation and position relationship in the , each hard disk 500 can be stacked in the up and down direction. The adapter plate 600 can be located on one side of each hard disk 500 in the left and right direction, and each adapter plate 600 can be provided with a harness adapter 610, and each hard disk 500 is correspondingly connected to each harness adapter 610 for communication, and the specific communication connection method can be, for example, a plug connection, a harness connection, etc. The control module 300 is located on the side of the adapter plate 600 away from each hard disk 500, and each harness adapter 610 of the adapter plate 600 is connected to at least one connecting cable 200, and the connecting cable 200 can be connected to the control module 300 for realizing the communication connection relationship between each hard disk 500 and the control module 300.

[0074] It should be understood that the positional relationship between the hard disks 500, the adapter board 600 and the control module 300 is not limited to Figure 3As shown, other positional relationships may be used as long as they do not affect the communication connection relationship between the components. For example, the hard disks 500 may not be stacked in the vertical direction. For another example, the control module 300 and the hard disks 500 may be located on the same side of the adapter plate 600.

[0075] Please refer to Figures 4-9 , Figure 4 This is a schematic structural diagram of a cable installation device in a first state according to an embodiment of the present application. Figure 5 for Figure 4 A view of the cable installation device in a second direction, Figure 6 for Figure 4 Schematic diagram of the structure of the cable installation device in the second state, Figure 7 for Figure 4 Schematic diagram of the structure of the substrate component, Figure 8 for Figure 4 Schematic diagram of the structure of a separation element, Figure 9 Schematic diagram of multiple different second positions of the partition element.

[0076] The present application also provides a cable installation device 100 for installing and arranging a connection cable 200 between the control module 300 and the connection module 700 in the aforementioned computing device 1000. For ease of explanation, the following description uses the computing device 1000 as a multi-node server and the connection module 700 as a computing node 400 as an example.

[0077] In some implementations, such as Figures 4-8 As shown, the cable installation device 100 may include a base member 110 and a separation member 120 .

[0078] The substrate element 110 is the structural basis of the above-mentioned cable installation device 100, and can be used for the fixed connection of the cable installation device 100 provided in the embodiment of the present application within the computing device 1000. The specific fixed connection method includes but is not limited to bonding, welding, snap-on connection, riveting, screw connection, etc., as long as the reliability requirements of the connection can be guaranteed. It should be noted that, corresponding to different connection methods, the substrate element 110 can be configured with different connection structures to adapt to the corresponding connection methods. For example, when a snap-on connection method is used for connection, the substrate element 110 can be provided with a snap-on structure such as a hook or a hole. For another example, when a screw connection method is used for connection, the substrate element 110 can also be provided with a through hole for the screw to pass through.

[0079] Combine Figure 5 and Figure 7The cross section of the base element 110 can be substantially U-shaped, including a bottom 111 and two sides 112. The two sides 112 can be connected to the bottom 111. The two sides 112 can be oppositely arranged. The two sides 112 and the bottom 111 can enclose a first accommodating space 113, which forms an opening 114 on a side away from the bottom 111. The partition element 120 can be arranged in the first accommodating space 113. The two sides 112 can limit and protect the components in the first accommodating space 113, thereby reducing damage and interference of the components in the first accommodating space 113 caused by the outside.

[0080] The bottom 111 and the side 112 can be an integrated structure formed integrally. Alternatively, the bottom 111 and the side 112 can be manufactured separately and then assembled, and the specific assembly process can be, for example, welding, clamping, etc., which is not limited herein.

[0081] For ease of description, a first direction, a second direction, and a third direction can be defined. Any two of the first direction, the second direction, and the third direction can be arranged at an angle, for example, 90 degrees, etc. Figures 4-8 In the implementation manner, the cable mounting device 100 can be substantially linear, which can specifically extend in the first direction, i.e., the base element 110 extends in the first direction. The two sides 112 can be oppositely arranged in the second direction. The opening 114 and the bottom 111 can be oppositely arranged in the third direction.

[0082] One end of the base element 110 in the first direction can be a first wire inlet 115. The side 112 can be provided with a first wire outlet 116. The connecting cable 200 can be connected to the computing node 400 and introduced into the base element 110 through the first wire inlet 115, and then can be introduced out of the base element 110 from the first wire outlet 116 and connected to the control module 300.

[0083] It should be understood that the above description of the positions of the first wire inlet 115 and the first wire outlet 116 is only an exemplary description of the embodiments of the present application. In other implementation manners of the embodiments of the present application, the first wire inlet 115 and the first wire outlet 116 can also be arranged at other positions, which can be determined in combination with the actual wire inlet and outlet positions, etc. For example, the first wire inlet 115 can also be arranged at the side 112 or the bottom 111. For another example, the first wire outlet 116 can also be arranged at the end of the base element 110 in the first direction or the bottom 111, etc.

[0084] In some implementations, the bottom 111 and the side portions 112 can be one-piece plate members. When it is required to provide the first wire inlet 115 or the first wire outlet 116 on the bottom 111 or the side portions 112, a through hole can be processed at a designated position of the bottom 111 or the side portions 112 by punching, cutting or other processes, to serve as the first wire inlet 115 or the first wire outlet 116. As for the regions of the plate members where no through hole is provided, they can serve the protection function.

[0085] In some other implementations of the embodiments, the bottom 111 or the side portions 112 can also be provided in a split structure. Taking the side portions 112 as an example, they can include a plurality of side portions that are provided in a spaced manner in the first direction; at this time, a gap can be naturally formed between two adjacent side portions in the first direction, which can serve as the first wire inlet 115 or the first wire outlet 116 without the need for secondary processing.

[0086] It should be understood that the above description of the substrate element 110 including the bottom 111 and the two side portions 112 is only an exemplary illustration of the embodiments, and in other implementations of the embodiments, the substrate element 110 can also adopt other structural forms. For example, the substrate element 110 can also not include the bottom 111, i.e., the substrate element 110 can only include the two side portions 112; at this time, the above-mentioned first accommodating space 113 can be formed between the two side portions 112, and the structural form of the substrate element 110 can be relatively simple. For another example, the substrate element 110 can also only include one side portion 112, which is also feasible.

[0087] The partition element 120 can include a first partition portion 121. The partition element 120 can be mounted to the above-mentioned substrate element 110 and can be rotationally displaced relative to the substrate element 110, i.e., the partition element 120 can be rotationally connected to be switched between the first position and the second position in a rotational manner. In Figures 4-8 In the implementations, the extension direction of the rotation axis P is the second direction.

[0088] The cable mounting device 100 has a first state and a second state.

[0089] In the first state, as shown in Figure 4 and Figure 5 , each partition element 120 is in the first position. The cable mounting device 100 is formed with a plurality of wire management channels 130 that are provided in a stacked manner in the third direction, and between two adjacent wire management channels 130, the first partition portion 121 of one partition element 120 is arranged. The first partition portion 121 is used to shield the corresponding wire management channel 130, and the details are described in Figure 5The first partition 121 can specifically shield the cable management channel 130 below it based on its orientation and positional relationship. At the same time, the first partition 121 can also isolate adjacent cable management channels 130. In practice, the connecting cables 200 can be classified according to their characteristics so that connecting cables 200 of the same category can be placed in the same cable management channel 130. This allows for convenient installation of different types of connecting cables 200, reduces confusion among types of connecting cables 200, and reduces the possibility of incorrect installation, thereby improving the installation accuracy of the connecting cables 200.

[0090] The embodiments of the present application do not limit the classification method of the connection cables 200. In actual applications, those skilled in the art may select a method based on specific needs, as long as it meets the requirements of use. For example, when there are multiple computing nodes 400, the connection cables 200 can be classified according to the number of computing nodes 400. When arranging the connection cables 200, the connection cables 200 for the same computing node 400 can be placed in the same cable management channel 130. For another example, the connection cables 200 can also be classified according to the type of signal they transmit.

[0091] In the second state, at least one partition element 120 is in the second position. At this time, at least one cable management channel 130 that was originally shielded by the first partition 121 is exposed, thereby exposing the connection cables 200 in the cable management channel 130, making it easy to inspect and maintain the connection cables 200 therein.

[0092] It should be understood that in the embodiment of the present application, the first position of each partition element 120 is determined to facilitate the formation of each wire management channel 130; while the second position of each partition element 120 is uncertain. Figure 9 As shown, the partition element 120 in the second position may be at position A, or at position B, position C, or other positions, as long as the corresponding function can be achieved.

[0093] In some implementations, such as Figure 5 and Figure 8As shown, the partition element 120 can further include a connecting portion 122. The number of the connecting portion 122 can be two, both of which can be connected with the first partition portion 121 and oppositely arranged in the second direction. At this time, the cross section of the partition element 120 perpendicular to the first direction can also be U-shaped as a whole, and the second accommodating space 125 can be enclosed between the two connecting portions 122 and the first partition portion 121. The two connecting portions 122 can limit and protect the components located in the second accommodating space 125, thereby reducing damage and interference to the components in the second accommodating space 125 from the outside.

[0094] A rotating shaft 140 can be arranged between the partition element 120 and the base element 110, and the central axis of the rotating shaft 140 is the rotating axis P described above. The rotating shaft 140 can specifically be connected with the side portion 112 and the connecting portion 122, so that the rotating shaft 140 can be conveniently connected with the partition element 120 and the base element 110. In addition, the rotating shaft 140 can be arranged between the two connecting portions 122 of the partition element 120 and the two side portions 112 of the base element 110, so that the partition element 120 can be supported by the rotating shaft 140 on both sides in the second direction, and the reliability of installation and the stability of rotation are both high.

[0095] For one partition element 120 and one base element 110, two independent rotating shafts 140 can be arranged, and the two rotating shafts 140 can be connected with the two connecting portions 122 and the two side portions 112 respectively, so that the axial dimension of the rotating shaft 140 can be relatively short. It should be noted that in this implementation manner, the central axes of the two rotating shafts 140 need to be collinear in order to ensure that the partition element 120 can be smoothly rotated. Alternatively, as shown in the figure, only one rotating shaft 140 can be arranged, which can be integrally inserted into the two connecting portions 122 of the partition element 120 and the two side portions 112 of the base element 110. In this way, the number of rotating shafts 140 is relatively small, the installation process of the partition element 120 and the base element 110 can be relatively less, and the installation operation can be relatively simple. Figure 5

[0096] The number of the partition element 120 can be one. At this time, the cable installation device 100 provided by the embodiment of the present application can form two wire management channels 130 arranged in the first direction in the first state.

[0097] Alternatively, the number of the partition element 120 can be multiple. For the convenience of description, the number of the partition element 120 can be defined as M, and M>1. At this time, the cable installation device 100 provided by the embodiment of the present application can form (M+1) wire management channels 130 arranged in the first direction in the first state.​

[0098] by Figures 4-6 The two partition elements 120 shown are taken as an example, and the two partition elements 120 can be nested in sequence. Figure 5 The two partition elements 120 in the substrate are respectively referred to as the first partition element 120A and the second partition element 120B; wherein, the first partition portion 121 of the second partition element 120B is closer to the bottom 111. In this implementation, the first partition element 120A can be nested in the second accommodating space 125 of the second partition element 120B, and the second partition element 120B can be nested in the first accommodating space 113 of the substrate element 110. The first accommodating space 113 can include a first accommodating chamber 113A and a first accommodating chamber 2 113B. The first accommodating chamber 2 113B is closer to the bottom 111 than the first accommodating chamber 113A. The first accommodating chamber 113A can be used to accommodate the second partition element 120B, and the first accommodating chamber 2 113B can form a first cable management channel 130A. The second accommodating space 125 of the second partition element 120B may include a second accommodating chamber 125A and a second accommodating chamber 2 125B. The second accommodating chamber 2 125B is closer to the first partition portion 121 of the second partition element 120B relative to the second accommodating chamber 125A. The aforementioned first partition element 120A may be arranged in the second accommodating chamber 125A, and the second accommodating chamber 2 125B may form a second wire management channel 130B. The second accommodating space 125 within the first partition element 120A may form a third wire management channel 130C. When performing normal inspection and maintenance of the connecting cables 200, the connecting cables 200 within the third wire management channel 130C may be inspected and maintained first. At this time, the cable installation device 100 provided in the embodiment of the present application may still be in Figure 4 and Figure 5 In the first state shown, when it is necessary to inspect and maintain the connecting cables 200 in the second cable management channel 130B, the first partition element 120A can be driven to rotate to switch the first partition element 120A to the second position, thereby exposing the second cable management channel 130B; when it is necessary to inspect and maintain the connecting cables 200 in the first cable management channel 130A, the second partition element 120B can be driven to rotate to switch the second partition element 120B to the second position, thereby exposing the first cable management channel 130A. In this way, the inspection and maintenance of the connecting cables 200 in the third cable management channel 130C, the second cable management channel 130B, and the first cable management channel 130A can be completed successively, which is convenient and quick to operate.

[0099] In multiple partitioning elements 120, the connecting portions 122 located on the same side in the second direction can be connected to the same rotation axis 140. This reduces the number of rotation axes 140 used, making assembly of the partitioning elements 120 and the substrate element 110 relatively simple. Furthermore, in this implementation, the rotation axes P of the partitioning elements 120 can be collinear.

[0100] Alternatively, at least two rotation axes 140 may be configured on the connection portions 122 located on the same side in the second direction in a plurality of partitioning elements 120. This is also feasible. It should be noted that in this implementation, the rotation axes P of the partitioning elements 120 may be collinear, or the rotation axes P of at least two partitioning elements 120 may not be collinear. This may be determined based on actual usage requirements.

[0101] The structural form of the connecting portion 122 may be consistent with the aforementioned side portion 112 , and the structural form of the first partition portion 121 may be consistent with the aforementioned bottom portion 111 , and a repeated description thereof will not be given here.

[0102] like Figure 8 As shown, a port of the partition element 120 in the first direction can serve as a second line inlet 123. The connecting portion 122 can be provided with a second line outlet 124. The connecting cable 200 can be connected to the computing node 400 and can be introduced into the interior of the partition element 120 through the second line inlet 123, and then led out of the partition element 120 from the second line outlet 124 to connect to the control module 300. Of course, in some other implementations of the embodiments of the present application, the second line inlet 123 and the second line outlet 124 can also be set at other positions, which can be determined in combination with the actual line inlet and outlet position requirements; for example, the second line inlet 123 can also be set at the connecting portion 122 or the bottom 111, and for another example, the second line outlet 124 can also be set at the port of the partition element 120 in the first direction or the bottom 111, etc.

[0103] It should be understood that in some other implementations of the embodiments of the present application, the partition elements 120 can also adopt other structural forms. For example, the partition elements 120 can also not include the connecting portions 122, i.e., the partition elements 120 can only include the first partition portions 121, in which case the structural form of the partition elements 120 can be relatively simple; in this implementation, the rotating shafts 140 can be directly connected to the first partition portions 121; when the number of the partition elements 120 is multiple, since the first partition portions 121 of the partition elements 120 are arranged to be spaced apart along the third direction when in the first position, the rotating shafts 140 arranged at the first partition portions 121 are also arranged to be spaced apart along the third direction, and the rotating shaft axes P of the partition elements 120 are not collinear. For another example, the partition elements 120 can also only include one connecting portion 122, which is also feasible.

[0104] Please continue to refer to Figure 4 , and combine Figure 5 For the first wire routing channel 130A, the first wire outlet 116 of the substrate element 110 can form the wire outlet of the first wire routing channel 130A, and the first wire inlet 115 of the substrate element 110 can form the wire inlet of the first wire routing channel 130A. For the second wire routing channel 130B, the second wire outlet 124 of the second partition element 120B can be in communication with the first wire outlet 116 to jointly form the wire outlet of the second wire routing channel 130B, and the second wire inlet 123 of the second partition element 120B can form the wire inlet of the second wire routing channel 130B. For the third wire routing channel 130C, the second wire outlet 124 of the first partition element 120A, the second wire outlet 124 of the second partition element 120B, and the first wire outlet 116 can be in communication to jointly form the wire outlet of the third wire routing channel 130C, and the second wire inlet 123 of the first partition element 120A can form the wire inlet of the third wire routing channel 130C.

[0105] It should be understood that the above description of the formation of the wire inlets and wire outlets of the wire routing channels 130 is mainly based on the structure of the substrate element 110 and the partition elements 120 shown in Figures 4-6 , and in some other implementations of the embodiments of the present application, if the structure of the substrate element 110 and the partition elements 120 changes, the formation of the wire inlets and wire outlets of the wire routing channels can also change. For example, for the above-mentioned implementation in which the partition elements 120 only include the first partition portions 121, the wire outlets of the wire routing channels are all formed by the first wire outlet 116.

[0106] In some implementations, the rotation axis P of the partition element 120 can be closer to the outlet of the wire arrangement channel 130 than the inlet of the wire arrangement channel 130. In this way, during the rotation of the partition element 120 around the rotation axis P to switch between the first position and the second position, the connection cable 200 drawn out of the outlet is not easily pulled, which is conducive to ensuring the connection reliability between the connection cable 200 and the control module 300.

[0107] In some implementations, the partition element 120 can also be connected with a handle 150. When the partition element 120 is in the first position, the handle 150 can abut against the side portion 112 in the third direction to define the first position of the partition element 120; that is, the handle 150 can serve as a limiting component. In addition, the handle 150 can also serve as an operating component, and a user can apply a driving force to the corresponding partition element 120 through the handle 150 to conveniently drive the partition element 120 to rotate and switch between the first position and the second position.

[0108] In Figures 4-8 some implementations, the handle 150 is connected to the connecting portion 122. In some other implementations of the embodiments of the present application, the handle 150 can also be connected to the first partition portion 121. The handle 150 and the partition element 120 can be an integrated structure formed integrally. Alternatively, the handle 150 and the partition element 120 can also be manufactured separately and then assembled, and the specific assembly methods include but are not limited to welding, clamping, riveting, screw connection, etc., as long as the reliability requirements of the connection can be met.

[0109] The handle 150 can also be provided with an identification mark 151. The identification mark 151 can be, for example, a numerical mark (such as shown in Figures 4-8 ), a color mark, a symbol mark, etc., for adding identity information to the handle 150 and the partition element 120 provided with the handle 150. In specific practice, a user can accurately select the partition element 120 to be operated and rotated through the identification mark 151, which can improve the convenience and accuracy of the operation, so as to quickly and accurately check and maintain the connection cable 200 in the designated wire arrangement channel 130.

[0110] In combination Figure 7 with the base material element 110, the handle 150 can also be provided. For the base material element 110, it does not need to be rotated in actual application. Therefore, the handle 150 of the base material element 110 is mainly identified through the identification mark 151 provided thereon. In addition, the handle 150 can also serve as a force applying component to facilitate the operation of the base material element 110 during the transportation, handling, installation, etc. of the base material element 110.

[0111] In Figures 4-8 some implementations of the present application, the handle portion 150 is connected to the side portion 112. In some other implementations of the present application, the handle portion 150 can also be connected to the bottom portion 111. The handle portion 150 and the base material element 110 can be integrally formed as an integral structure. Alternatively, the handle portion 150 and the base material element 110 can also be manufactured separately and then assembled together, and the assembly methods include but are not limited to welding, clamping, riveting, screwing, etc., as long as the reliability requirements of the connection can be met.

[0112] Please refer to Figure 10 , Figure 10 the structure schematic view of another cable installation device provided by the present application in the second state.

[0113] As Figure 10 shown, in some implementations of the present application, the rotation axis P of the partition element 120 can also extend along the third direction. In this way, the switching of the partition element 120 between the first position and the second position can be realized, and the switching of the cable installation device 100 between the first state and the second state can also be realized.

[0114] It should be noted that in the present implementation, the partition element 120 can be provided with at least one connecting portion 122, which can drive the connecting cable 200 inside the partition element 120 to move synchronously during the switching of the partition element 120 to the second position, so as to completely open the cable management channel 130 shielded by the partition element 120. Of course, other fixing structures can also be provided, as long as the partition element 120 can drive the connecting cable 200 inside it to move synchronously.

[0115] In fact, in the present application, the extension direction of the rotation axis P of the partition element 120 is not limited to the second direction and the first direction described above, and it can also be rotated in other directions, as long as the corresponding effects can be realized.

[0116] Please refer to Figure 11 , Figure 11 the structure schematic view of another cable installation device provided by the present application in the second state.

[0117] As Figure 11As shown, in some implementations of the present invention, the partition element 120 can also be configured to be linearly displaceable, that is, the partition element 120 can be slidably connected. The linear displacement direction of the partition element 120 can be set at an angle to the first direction, for example, the partition element 120 can be displaced along the second direction. This can also achieve the switching of the partition element 120 between the first position and the second position, thereby achieving the switching of the cable installation device 100 provided in the present invention between the first state and the second state.

[0118] It should be noted that in this embodiment, the partition element 120 can be configured with at least one connecting portion 122, and the connecting portion 122 can drive the connecting cables 200 located within the partition element 120 to move synchronously when the partition element 120 switches to the second position, so as to fully open the cable management channel 130 shielded by the partition element 120. Of course, other fixing structures can also be provided, as long as they ensure that the partition element 120 can drive the connecting cables 200 therein to move synchronously.

[0119] In addition, in this implementation, sliding components in the form of sliding grooves, sliders, pulleys, etc. can also be provided to improve the smoothness of the linear displacement of the partition element 120.

[0120] Please refer to Figure 12 , Figure 12 This is a structural schematic diagram of another cable installation device provided in an embodiment of the present application in a second state.

[0121] like Figure 12 As shown, in some implementations of the present application, the cable installation device 100 may also be U-shaped as a whole, including a first section 100A, a second section 100B, and a third section 100C. The first section 100A may extend in the first direction, the second section 100B may extend in the second direction, and the third section 100C may also extend in the first direction. The rotation axis P may extend in the second direction.

[0122] In this implementation, the cable entry of the cable management channel 130 can be located in the second section 100B, while the cable exit can be located in the first section 100A and the third section 100C. Thus, after being introduced into the second section 100B, the connecting cable 200 can be divided into two parts. These two parts can then be arranged in different directions along the second direction within the second section 100B and introduced into the first section 100A and the third section 100C, respectively, to exit through the cable exits provided in the first section 100A and the third section 100C, respectively, thereby increasing the number of cable exit locations.

[0123] In fact, the shape of the cable installation device 100 provided in the embodiment of the present application in its extension direction is not limited to the aforementionedFigures 4-11 the straight line type and Figure 12 the U type shown, in specific implementation, those skilled in the art can make adjustment according to specific needs. For example, the cable installation device 100 can also present as an arc type, an S type or other curve type in its extending direction, etc.

[0124] For the above-mentioned implementation manners, the cable installation device 100 provided by the embodiment of the present application can also include a fixing element (not shown in the figure). The fixing element can be a wire clamp, a cable tie or the like, which is configured to be able to fix the connection cable 200, so as to facilitate to ensure the relative position of the partition element 120 and the connection cable 200, and to reduce the situation that the connection cable 200 on the partition element 120 is scattered during the position switching process.

[0125] For the above-mentioned implementation manners, the cable installation device 100 provided by the embodiment of the present application can also not include the base element 110, i.e. the cable installation device 100 can also only include the partition element 120. In specific application, the partition element 120 can be installed by using the existing components in the installation environment, so that the structure form of the cable installation device 100 provided by the embodiment of the present application can be simpler.

[0126] Please refer to Figure 13 , Figure 13 for the structure schematic view of the partition element provided with the first partition component.

[0127] For the above-mentioned implementation manners, the cable installation device 100 provided by the embodiment of the present application can also include a second partition 160, which can be specifically provided in the cable management channel 130, and is used to divide the cable management channel 130 into multiple sub-channels 130' arranged side by side. The types and models of the connection cables 200 arranged in each sub-channel 130' can also be different, so that the classified installation of the connection cables 200 can be better achieved.

[0128] in combination with Figure 13For example, the second partition part 160 can be mounted on the first partition part 121 and arranged in the wire arrangement channel 130 to partition the wire arrangement channel 130. The second partition part 160 and the partition element 120 can be integrally formed. Alternatively, the second partition part 160 and the partition element 120 can be manufactured separately and then assembled. The assembly process includes, but is not limited to, welding, clamping, riveting, bonding, etc., which are not limited herein as long as the reliability requirement of connection can be met. The second partition part 160 can be an integral plate-shaped part which can extend in the same direction as the connecting part 122. Alternatively, the second partition part 160 can be arranged to include a plurality of partition parts arranged at intervals in the extension direction of the connecting part 122, so as to achieve the purpose of partitioning the wire arrangement channel 130.

[0129] Please refer to Figure 14 and Figure 15 , Figure 14 The structural schematic diagram of a computing device provided by an embodiment of the present application is shown in FIG. 1, in which the cable mounting device is in a first state. Figure 15 The structural schematic diagram of a computing device provided by an embodiment of the present application is shown in FIG. 2, in which the cable mounting device is in a second state.

[0130] As shown in Figure 14 and Figure 15 and in combination with the foregoing Figure 2 In the scenario of a server such as a multi-node server, the control module 300 and the computing node 400 can be configured with a connection cable 200, and the connection cable 200 can be mounted and arranged by the cable mounting device 100. Here, the cable mounting device 100 is the cable mounting device 100 involved in the foregoing implementation manners.

[0131] With this scheme, when the computing device 1000 is normally working, the cable mounting device 100 can be in the first state, and different types of connection cables 200 can be arranged in different wire arrangement channels 130, so as to facilitate the mounting and arrangement of the connection cables 200 and avoid the confusion and misplacement of the connection cables 200 to a great extent. When the connection cables 200 need to be checked and maintained, the partition element 120 can be controlled to displace, so as to switch the cable mounting device 100 to the second state, thereby facilitating the checking and maintenance of the connection cables 200 in the wire arrangement channels 130.

[0132] In Figure 14 and Figure 15In the embodiment, the computing nodes 400 can be arranged on both sides of the control module 300 in the first direction, and the part of the control module 300 for connecting the connecting cable 200 is located in the middle region of the control module 300 in the first direction. At this time, the cable mounting device 100 can adopt the aforementioned Figure 12 In the embodiment, the cable mounting device 100 has a U-shaped structure. There can be two cable mounting devices 100, and the two cable mounting devices 100 can be connected in the first direction to arrange the installation of the connecting cable 200 on both sides of the control module 300 in the first direction and on both sides of the control module 300 in the second direction.

[0133] It should be understood that when the control module 300 and the computing node 400 adopt other layout manners, the cable mounting device 100 can also adopt other structural forms. For example, when the computing node 400 is only located on one side of the control module 300 in the first direction, only one cable mounting device 100 can be used. For another example, the cable mounting device 100 can also adopt a straight line structure as shown in the figure. Figures 4-11

[0134] The above is only the preferred embodiment of the present application, and it should be pointed out that for those skilled in the art, without departing from the principles of the present application, a number of improvements and refinements can be made, and these improvements and refinements should also be considered as the protection scope of the present application.​

Claims

1. A cable installation device, characterized in that, The cable installation device comprises a plurality of separation elements, each of the separation elements comprises a first separation part, and each of the separation elements is configured to be capable of displacement to switch between a first position and a second position; The cable installation device has a first state and a second state; In the first state, each of the separation elements is in the first position, and the cable installation device forms a plurality of cable routing channels arranged in layers, each of the cable routing channels is shielded by the first separation part of one of the separation elements, and at least one of the cable routing channels is exposed in the second state; the number of the separation elements is plural, and in the first state, each of the separation elements is arranged in layers in sequence; the extension direction of the rotation axis of each of the separation elements and the direction in which the cable routing channels are arranged in layers are arranged at an angle; each of the separation elements is configured to be capable of rotational displacement, and each of the separation elements comprises two connection parts, and the two connection parts are arranged at intervals in the extension direction of the rotation axis of the separation element; In the extension direction of the rotation axis, each of the connection parts on the same side of each of the separation elements is connected to a rotation axis.

2. The cable installation device of claim 1, wherein, Both of the connection parts are connected to the first separation part, and at least one of the two connection parts is connected to a rotation axis; A second accommodation space is formed between the first separation part and the two connection parts, and at least part of the second accommodation space is used to form the cable routing channel.

3. The cable installation device of claim 2, wherein, The number of the separation elements is plural; In adjacent two of the separation elements, the separation element on the inner side is a first separation element, and the separation element on the outer side is a second separation element; the second accommodation space of the second separation element comprises a second accommodation chamber I and a second accommodation chamber II, the second accommodation chamber I and the second accommodation chamber II are arranged in a direction close to the first separation part of the second separation element, the second accommodation chamber I is used to accommodate the first separation element, and the second accommodation chamber II forms the cable routing channel of the second separation element.

4. The cable installation device of claim 2, wherein, The separation element is provided with a second wire inlet and a second wire outlet, the second wire inlet and the second wire outlet are connected to the cable routing channel of the separation element, and the second wire outlet is arranged close to the rotation axis relative to the second wire inlet.

5. The cable installation device according to any one of claims 1-4, wherein, A base element is further included, the base element is used for mounting and fixing the cable installation device, the base element comprises a bottom and two side parts arranged at intervals, the two side parts are connected to the bottom, the direction in which the two side parts are arranged at intervals and the direction in which the layers are arranged are arranged at an angle, a first accommodation space is formed between the bottom and the two side parts, the first accommodation space comprises a first accommodation chamber I and a first accommodation chamber II, and the first accommodation chamber I and the first accommodation chamber II are arranged in a direction close to the bottom; The separation element is mounted on the base element, and the separation element is capable of displacement relative to the base element. In the first state, the partition element is located in the first accommodating chamber, and the first accommodating chamber forms the cable management channel of the substrate element.

6. The cable installation device of any one of claims 1-4, wherein, The cable mounting device further comprises a fixing element for fixing the connection cable to be mounted and the partition element; and / or, The cable mounting device is further provided with a second partition portion arranged in at least one of the cable management channels for partitioning the cable management channel into multiple sub-channels arranged side by side.

7. A computing device, comprising: A control module and a connection module are included, a plurality of connection cables are arranged between the connection module and the control module, the connection cables are mounted by the cable mounting device according to any one of claims 1-6, and the cable mounting device is arranged in at least a partial region of the outer periphery side of the control module.

8. The computing device of claim 7, wherein, The connection module includes a plurality of computing nodes, the number of computing nodes is consistent with the number of cable management channels, and the connection cables connected to each computing node are arranged in each cable management channel one by one. The connection module includes a plurality of computing nodes, the number of computing nodes is consistent with the number of cable management channels, and the connection cables connected to each computing node are arranged in each cable management channel one by one.

Citation Information

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