Wire arranging device capable of being installed without tool
By designing an adjustable wire management device that is installed without tool, the problem of fixing the wire management pile position in the existing optical cable cabinet is difficult to adapt to complex wiring, and flexible adjustment of wire management piles and optimization of optical cable layout are achieved.
Patent Information
- Application Number
- CN202422218237.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-10
- Publication Date
- 2025-06-13
- Estimated Expiration
- 2034-09-10
AI Technical Summary
The position of wire-manufacturing piles in existing optical cable cabinets is fixed, which is difficult to meet the complex optical cable routing needs, especially when there are many optical cables and complex routing.
A tool-free installation wire management device is designed, including a back plate and an adjustable wire management pile. The wire management pile is composed of a winding post and a plurality of expansion rivets. The expansion rivet is cooperated with the first locking hole of the back plate to realize the removable connection and position adjustment of the wire management pile.
It realizes flexible adjustment of wire management piles, adapts to different optical cable routing needs, reduces bending of optical cables, improves the flexibility and adjustability of optical cable layout, and simplifies the installation and maintenance process.
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Figure CN222979850U_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of optical cable cabinets, and in particular to a tool-free installation cable organizer. Background Art
[0002] The cabinet of communication equipment provides fixation and protection for the optical cable, ensuring the stability and safety of the optical cable. Space is reserved inside the cabinet for routing the optical cable.
[0003] The inner wall of the cabinet is equipped with multiple cable piles, which are fixed to the inner wall of the cabinet by welding or bolting. When the cable piles are fixed by bolting, it is necessary to open bolt holes at the corresponding positions of the inner wall of the cabinet in advance, and then fix the cable piles by the matching relationship between the bolts and the bolt holes. The cable piles can make the optical cable routing inside the cabinet clear.
[0004] However, the position of the bolt hole is generally fixed, resulting in a fixed position of the cable pile. In the actual installation process, the optical cables are numerous and complex, and are limited by the bending radius of the optical cables. The bending angle of the optical cables is limited, making it difficult to wind the optical cables around the cable piles. Utility Model Content
[0005] In order to enable the cable management pile to meet the needs of complex optical cable routing, the present application provides a tool-free installation cable organizer.
[0006] The present application provides a tool-free installation cable organizer, which adopts the following technical solutions:
[0007] A tool-free installation cable organizer, comprising:
[0008] A back plate having a plurality of first locking holes, the back plate being used for detachably connecting with the cabinet;
[0009] A plurality of wire management piles include a wire winding post and a plurality of expansion rivets. The wire winding post is detachably connected to the back plate through the matching relationship between the expansion rivet and the first locking hole.
[0010] By adopting the above technical solution, the cable management pile is composed of a winding post and a plurality of expansion rivets. The winding post is the part actually used to support the optical cable, while the expansion rivet is used to fix the winding post to the back panel. This design allows the position of the cable management pile on the back panel to be adjusted to meet different optical cable routing requirements. Since the position of the cable management pile can be adjusted, it can better adapt to the complexity of optical cable routing, especially when there are a large number of optical cables and the routing is complex. This flexibility helps to optimize the layout of the optical cable and reduce the bending of the optical cable, thereby meeting the limitation of the bending radius of the optical cable. The use of expansion rivets allows users to install or remove the winding post without using tools, which improves the convenience of installation.
[0011] Optionally, the first locking holes are arranged in a rectangular array.
[0012] By adopting the above technical solution, through the rectangular array arrangement, it can meet the requirements of cable routing with different quantities and layouts. Users can choose to install cable management posts at different positions in the array according to the actual routing situation, so as to achieve a more reasonable cable layout.
[0013] Optionally, the backplane is provided with a plurality of positioning holes, and the winding post is provided with a hook, and the hook is used to cooperate with the positioning holes to position the cable management post.
[0014] By adopting the above technical solution, the cooperation of the hook and the positioning holes improves the stability of the cable management post. And the operator can first fix all the cable management posts to the backplane through the hooks, then wind the cables and adjust the positions of the cable management posts, and finally fix the cable management posts to the backplane through expansion rivets, which simplifies the maintenance process and improves the flexibility of the internal management of the cabinet.
[0015] Optionally, the positioning holes are arranged in a rectangular array.
[0016] By adopting the above technical solution, the positioning holes are arranged in a rectangular array, that is, the positioning holes are distributed on the backplane in the form of a rectangular grid at a certain spacing and regularity. This arrangement provides multiple installation position options for the cable management post.
[0017] Optionally, the backplane is provided with a plurality of wire passing holes.
[0018] By adopting the above technical solution, a plurality of wire passing holes are provided on the backplane, and these holes are provided to allow the cables to pass through the backplane to achieve a more flexible routing layout.
[0019] Optionally, the cable management post includes a limiting plate, the limiting plate is arranged around the winding post, the limiting plate is detachably connected to the winding post, and a wire passing interval is formed between the limiting plate and the winding post.
[0020] By adopting the above technical solution, the design of the limiting plate helps to more stably fix the cables, prevent the cables from sliding or shifting during use, thus ensuring the stability and reliability of the routing and reducing the risk of damage caused by accidental pulling or impact.
[0021] Optionally, a baffle is arranged on one side of the limiting plate, and when the limiting plate is connected to the winding post, the baffle abuts against the winding post.
[0022] By adopting the above technical solution, the presence of the baffle helps to more firmly fix the cables, ensuring that the cables remain fixed within the limiting plate and are not affected by external forces.
[0023] Optionally, a second locking hole is formed in the winding post, and the limiting plate is detachably connected to the winding post through the cooperation relationship between the expansion rivet and the second locking hole.
[0024] By adopting the above technical solution, using expansion rivets means that users can install or disassemble the limiting plate without using any tools, improving the convenience of installation.
[0025] Optionally, the number of the second locking holes is multiple, and the multiple second locking holes are arranged around the winding post.
[0026] By adopting the above technical solution, the multiple second locking holes are arranged around the winding post to form an annular layout, so that the limiting plate can be installed at different positions of the winding post to adapt to the optical cable routing requirements in different directions and angles.
[0027] In summary, the present application includes at least one of the following beneficial effects:
[0028] 1. The cable management post is composed of a winding post and multiple expansion rivets. The winding post is the part actually used to support the optical cable, and the expansion rivets are used to fix the winding post on the backplane. This design allows the position of the cable management post on the backplane to be adjusted to adapt to different optical cable routing requirements. Since the position of the cable management post can be adjusted, it can better adapt to the complexity of optical cable routing, especially in the case of a large number of optical cables and complex routing;
[0029] 2. Using expansion rivets enables users to install or disassemble the winding post without using tools, improving the convenience of installation;
[0030] 3. The cooperation between the hook and the positioning hole improves the stability of the cable management post, and the operator can first fix all the cable management posts on the backplane through the hooks, then wind the optical cable, adjust the position of the cable management post, and then fix the cable management post on the backplane through the expansion rivets, simplifying the maintenance process and improving the flexibility of the internal management of the cabinet;
[0031] 4. A plurality of wire passing holes are formed in the backplane, and these holes are provided to allow the optical cable to pass through the backplane to achieve a more flexible routing layout. BRIEF DESCRIPTION OF THE DRAWINGS
[0032] Figure 1 is the overall structural schematic diagram of Embodiment 1 of the present application;
[0033] Figure 2 is the cross-sectional structural schematic diagram of Embodiment 1 of the present application;
[0034] Figure 3 is Figure 2 the partial enlarged structural schematic diagram at A in
[0035] Figure 4 It is a schematic diagram of the overall structure of the second embodiment of the present application.
[0036] Explanation of reference numerals: 1, backplane; 2, first locking hole; 3, positioning hole; 4, wire threading hole; 5, wire management post; 51, winding column; 52, second locking hole; 53, expansion rivet; 54, hook; 55, limiting plate; 56, wire threading interval; 57, baffle; 6, cabinet. Detailed implementation manners
[0037] The outer diameter of the optical cable can range from a few millimeters to dozens of millimeters. The optical fibers inside the optical cable are very thin, with the diameter of a single optical fiber being between 9 micrometers and 125 micrometers, and the diameter of common indoor optical cables being between 3 millimeters and 10 millimeters. The bending radius of the optical cable refers to the minimum radius that the optical cable can withstand when bent without adversely affecting the performance of the optical cable. The bending radius of the optical cable is related to both the size and type of the optical cable. The bending radius of the optical cable is crucial for ensuring the signal transmission quality. If the bending degree of the optical cable exceeds the bending radius of the optical cable, it may cause signal attenuation or damage to the optical cable. Therefore, when laying out the wiring, the bending radius of the optical cable is one of the important parameters.
[0038] The following will Figures 1-4 further elaborate on the present application in conjunction with the attached drawings.
[0039] Embodiment 1:
[0040] A tool-free installation wire management device disclosed in an embodiment of the present application, referring to Figure 1 and Figure 2 , the tool-free installation wire management device includes a backplane 1. The backplane 1 is a rectangular plate and is arranged vertically. The backplane 1 is detachably connected to the cabinet 6 by bolts. A plurality of first locking holes 2, a plurality of positioning holes 3 and a plurality of wire threading holes 4 are formed on the backplane 1. The cross-section of the first locking hole 2 is circular, the cross-section of the positioning hole 3 is rectangular, and the cross-section of the wire threading hole 4 is rectangular and the cross-sectional dimension is larger than that of the positioning hole 3. The first locking holes 2, the positioning holes 3 and the wire threading holes 4 are all arranged in a rectangular array, so that a row of wire threading holes 4 is located between the first locking holes 2 in adjacent rows and the positioning holes 3 in adjacent rows, and the number of the first locking holes 2 and the positioning holes 3 is the same and they correspond one by one.
[0041] Referring to Figure 2 and Figure 3 , the tool-free installation wire management device includes a plurality of wire management posts 5. The wire management post 5 includes a winding column 51, a plurality of expansion rivets 53 and a plurality of hooks 54. The expansion rivets 53 and the hooks 54 are both fixedly connected to the winding column 51. The hook 54 is arranged above the expansion rivet 53. The expansion rivet 53 is arranged corresponding to the first locking hole 2, and the hook 54 is arranged corresponding to the positioning hole 3.
[0042] Before leaving the factory, the processing personnel install the backplane 1 on the cabinet 6 through bolts, so that the backplane 1 is arranged vertically. During use, the optical cable is passed through the backplane 1 through the wire threading hole 4, and then a plurality of cable management posts 5 are temporarily fixed at different positions on the backplane 1 according to the cooperation relationship between the hanging hook 54 and the positioning hole 3 according to the preset wire routing. Then, the positions of the corresponding cable management posts 5 are replaced according to the actual situation. When the positions of all the cable management posts 5 are determined, a plurality of expansion rivets 53 are passed through the corresponding first locking holes 2, and the expansion rivets 53 are pressed, so that the cable management posts 5 are fixed on the backplane 1 through the cooperation relationship between the expansion rivets 53 and the first locking holes 2, thereby completing the installation of the cable management posts 5 and the wire routing of the optical cable. When the cable management post 5 needs to be pulled out, the expansion rivet 53 is pulled to release the cooperation relationship between the expansion rivet 53 and the first locking hole 2, and the cable management post 5 can be removed from the backplane 1.
[0043] The cable management post 5 can be installed or disassembled without tools, which simplifies the installation process, reduces the installation time and cost, and improves the installation efficiency. The hanging hook 54 can facilitate the adjustment of the position of the cable management post 5, and improves the stability of the cable management post 5, reducing the maintenance problems caused by loosening.
[0044] The first locking holes 2, the positioning holes 3 and the wire threading holes 4 are all arranged in a rectangular array. It is convenient to optimize the layout of the optical cable, reduce the bending of the optical cable, so as to meet the limitation of the bending radius of the optical cable, and improve the flexibility and adjustability of the wire routing of the optical cable.
[0045] The wire threading hole 4 can simplify the wiring process. The optical cable directly passes through the wire threading hole 4 without having to bypass the backplane 1, reducing the wiring workload and time. The wire threading hole 4 allows the optical cable to be arranged on the other side of the backplane 1, which helps to reduce the line congestion on the front of the backplane 1 and optimize the overall space layout. The existence of the wire threading hole 4 enables the optical cable to enter and exit at different positions of the backplane 1, allowing users to design more complex wire routing paths according to actual needs and meeting the wire routing requirements in different directions and angles.
[0046] Embodiment 2:
[0047] The difference between the embodiment of the present application and other embodiments lies in that, referring to Figure 4 , a plurality of second locking holes 52 are opened at one end of the winding post 51 away from the hanging hook 54, and the second locking holes 52 are arranged around the winding post 51.
[0048] Referring to Figure 4, the cable management post 5 includes a limiting plate 55. The limiting plate 55 is in the shape of an arc plate. One end of the limiting plate 55 is fixedly connected with a baffle 57 along the radial direction of the limiting plate 55. The baffle 57 is fan-shaped. The other end is provided with two expansion rivets 53. The expansion rivets 53 can cooperate with the second locking hole 52 to fix the limiting plate 55 to the winding post 51. When the limiting plate 55 is fixed to the winding post 51, the baffle 57 abuts against the winding post 51, and a threading interval 56 with a fan-shaped cross-section is formed between the limiting plate 55 and the winding post 51.
[0049] When the user is routing the cable, the optical cable can be wound around a winding post 51, and then the limiting plate 55 is fixed to the winding post 51 through the cooperation of the expansion rivet 53 and the second locking hole 52, so that the optical cable passes through the threading interval 56, thereby restricting the movement of the optical cable wound around the winding post 51 and facilitating the subsequent routing of the optical cable.
[0050] A threading interval 56 is formed between the limiting plate 55 and the winding post 51. This interval allows the optical cable to pass through and be limited by the limiting plate 55, which helps to fix the optical cable more stably, prevent the optical cable from sliding or shifting during use, and thus ensure the stability and reliability of the cable routing.
[0051] The detachable connection between the limiting plate 55 and the winding post 51 allows the user to easily adjust the position or quantity of the limiting plate 55 according to the actual cable routing requirements, simplifying the maintenance and adjustment process.
[0052] When the limiting plate 55 is connected to the winding post 51, the baffle 57 abuts against the winding post 51. This design provides additional support, enhances the stability of the limiting plate 55, and prevents the optical cable from sliding or shifting on the limiting plate 55.
[0053] Multiple second locking holes 52 are arranged around the winding post 51 to form an annular layout, so that the limiting plate 55 can be installed at different positions of the winding post 51 to adapt to the optical cable routing requirements in different directions and angles.
[0054] The above are all the preferred embodiments of this application. The protection scope of this application is not limited by this. Therefore, all equivalent changes made according to the structure, shape, and principle of this application should be covered within the protection scope of this application.
Claims
1. A tool-free installation cable organizer, characterized in that: include: A back panel (1) is provided with a plurality of first locking holes (2), and the back panel (1) is used for being detachably connected to the cabinet (6); A plurality of wire management posts (5) comprise a wire winding post (51) and a plurality of expansion rivets (53); the wire winding post (51) is detachably connected to the back plate (1) through the matching relationship between the expansion rivet (53) and the first locking hole (2).
2. The tool-free installation cable organizer according to claim 1, characterized in that: The first locking holes (2) are arranged in a rectangular array.
3. The tool-free installation cable organizer according to claim 1, characterized in that: The back plate (1) is provided with a plurality of positioning holes (3), and the wire winding post (51) is provided with a hook (54), and the hook (54) is used to cooperate with the positioning holes (3) to position the wire management post (5).
4. The tool-free installation cable organizer according to claim 3, characterized in that: The positioning holes (3) are arranged in a rectangular array.
5. The tool-free installation cable organizer according to claim 1, characterized in that: The back plate (1) is provided with a plurality of threading holes (4).
6. The tool-free installation cable organizer according to claim 1, characterized in that: The wire management pile (5) comprises a limit plate (55), the limit plate (55) is arranged around the wire winding post (51), the limit plate (55) and the wire winding post (51) are detachably connected, and a wire threading space (56) is formed between the limit plate (55) and the wire winding post (51).
7. The tool-free installation cable organizer according to claim 6, characterized in that: A baffle (57) is provided on one side of the limiting plate (55); when the limiting plate (55) is connected to the winding post (51), the baffle (57) abuts against the winding post (51).
8. The tool-free installation cable organizer according to claim 7, characterized in that: The winding post (51) is provided with a second locking hole (52), and the limiting plate (55) is detachably connected to the winding post (51) through the matching relationship between the expansion rivet (53) and the second locking hole (52).
9. The tool-free installation cable organizer according to claim 8, characterized in that: There are a plurality of the second locking holes (52), and the plurality of the second locking holes (52) are arranged around the winding post (51).