Modularized MTP optical fiber patch cord anti-winding structure

The modular MTP fiber optic patch cord anti-tangle structure solves the problems of time-consuming, labor-intensive, and messy fiber optic patch cord wiring in existing technologies, achieving convenient wiring and cost reduction.

CN224067051UActive Publication Date: 2026-03-31HUANGGANG YUANGUO TECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-17
Publication Date
2026-03-31

AI Technical Summary

Technical Problem

The existing MTP fiber optic patch cord cabling method is time-consuming, labor-intensive, costly, and prone to confusion, making it difficult to quickly locate specific fiber optic patch cords.

Method used

A modular MTP fiber optic patch cord anti-tangle structure is designed, including a fixed body, a fixed component, and a connecting component. The structure prevents fiber optic patch cords from tangling through limiting and splicing methods, thereby reducing cabling costs and improving maintenance convenience.

Benefits of technology

It enables convenient wiring and maintenance of fiber optic patch cords, reduces wiring costs, and improves space utilization and ease of use.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to a modular MTP optical fiber patch cord anti-winding structure, which belongs to the field of optical fiber patch cords and comprises a fixed main body. The fixing assembly is arranged on the right side of the fixing main body and comprises two connecting blocks which are symmetrically arranged on the right side of the fixing main body; the connecting plate is arranged between the outer sides of the two connecting blocks; the spherical seat is arranged on the right side of the connecting plate; and the connecting assembly is arranged on the left side of the fixed main body. According to the utility model, through the arrangement of the fixing main body, the optical fiber patch cords can be limited, and under the action of the connecting assembly and the fixing assembly, a plurality of anti-winding structures can be mutually spliced, thereby realizing wiring of the plurality of optical fiber patch cords, effectively preventing winding among the optical fiber patch cords, improving the convenience of subsequent maintenance of wiring, and meanwhile, improving the wiring efficiency. The number of the used anti-winding structures can be determined according to the number of the optical fiber jumpers, so that the wiring cost of the optical fiber jumpers is reduced.
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Description

Technical Field

[0001] This utility model relates to the field of fiber optic patch cord technology, specifically to a modular MTP fiber optic patch cord anti-tangle structure. Background Technology

[0002] MTP fiber optic patch cords are fiber optic patch cords that use MTP connectors. MTP connectors are high-density, high-reliability fiber optic connectors, primarily used in fiber optic cabling in data centers, enterprise networks, and telecommunications systems.

[0003] The existing method of wiring MTP fiber optic patch cords involves fixing them along the path of the MTP fiber optic patch cord using cable bundlers and clamps. Fixing each individual MTP fiber optic patch cord individually is time-consuming, labor-intensive, and costly. Concentrating the MTP fiber optic patch cords together can easily lead to confusion between them and make it difficult to quickly locate a particular MTP fiber optic patch cord. Therefore, this application proposes a modular anti-tangle structure for MTP fiber optic patch cords to solve the above-mentioned technical problems. Utility Model Content

[0004] In view of one or more of the above-mentioned defects or improvement needs of the prior art, this utility model provides a modular MTP fiber optic patch cord anti-tangle structure, which has the advantages of reducing the cabling cost of MTP fiber optic patch cords and making MTP fiber optic patch cords easier to maintain.

[0005] To achieve the above objectives, this utility model provides the following technical solution: a modular MTP fiber optic patch cord anti-tangle structure, comprising a fixing body;

[0006] A fixing component located on the right side of the fixing body includes two connecting blocks symmetrically arranged on the right side of the fixing body; a connecting plate located between the outer sides of the two connecting blocks; and a spherical seat located on the right side of the connecting plate.

[0007] The connecting component is located on the left side of the fixed body.

[0008] As a further improvement of this utility model, the fixing body includes a base plate;

[0009] Two buckles are symmetrically arranged on the upper surface of the base plate;

[0010] Two clearance grooves are symmetrically provided on the right side of the base plate.

[0011] As a further improvement of this utility model, the buckle is compatible with the fiber optic patch cord;

[0012] The two connecting blocks are symmetrically arranged on the right side of the base plate.

[0013] As a further improvement of this utility model, the fixing component further includes two boss shafts, which are respectively disposed on the side of the two connecting blocks away from the connecting plate;

[0014] Two hinge blocks are rotatably disposed on the outside of the two boss shafts, and the two hinge blocks are respectively located on the inside of the two relief grooves.

[0015] As a further improvement of this utility model, the two T-shaped grooves are respectively opened on the side of the two hinge blocks near the connecting plate, and the hinge blocks are slidably disposed on the outside of the boss shaft through the T-shaped grooves.

[0016] As a further improvement of this utility model, the connecting component includes a fixing block disposed on the left side of the base plate;

[0017] A fixed shaft is located on the left side of the fixed block;

[0018] Two fixing slots are respectively opened at both ends of the fixing shaft;

[0019] A spherical bracket is located on the side of the fixed axis away from the fixed block;

[0020] Two hinge members are symmetrically arranged on the inner sides of the two fixing slots.

[0021] As a further improvement of this utility model, the hinge includes a compression spring disposed inside the fixing groove.

[0022] A limiting shaft is located at the end of the compression spring away from the spherical bracket;

[0023] The spherical bracket and the spherical seat are adapted to each other, and both the spherical bracket and the spherical seat are made of plastic.

[0024] As a further improvement of this utility model, the outer side of the limiting shaft is adapted to the inner side of the T-shaped groove.

[0025] The dimension between the ends of the two limiting shafts away from the spherical bracket is greater than the dimension between the two hinge blocks on the side closer to the spherical seat.

[0026] In summary, the beneficial effects of the above-described technical solutions conceived by this utility model compared with the prior art include:

[0027] 1. The modular MTP fiber optic patch cord anti-tangle structure in the preferred embodiment of this utility model can limit the fiber optic patch cord through the fixed body. Under the action of the connecting component and the fixed component, multiple anti-tangle structures can be spliced ​​together to realize the wiring of multiple fiber optic patch cords, effectively preventing the fiber optic patch cords from getting tangled, improving the convenience of subsequent maintenance of the wiring. At the same time, the number of anti-tangle structures used can be determined according to the number of fiber optic patch cords, thereby reducing the cost of wiring the fiber optic patch cords. After multiple anti-tangle structures are spliced ​​and assembled together, the hinge block can be pulled out, and the multiple anti-tangle structures can be divided into several groups and folded around the hinge block as the axis, reducing the space occupied when using a large number of devices, improving space utilization and ease of use.

[0028] 2. The modular MTP fiber optic patch cord anti-tangle structure in the preferred embodiment of this utility model has a simple overall structure and is easy to operate. It can not only splice multiple anti-tangle structures together to realize the wiring of multiple fiber optic patch cords, but also divide multiple anti-tangle structures into several groups for folding, which improves the convenience of subsequent maintenance of the wiring. It can also improve space utilization and ease of use, and has good use value and application prospects. Attached Figure Description

[0029] Figure 1 This is a schematic diagram of the overall three-dimensional structure in a preferred embodiment of the present invention;

[0030] Figure 2 This is a schematic diagram of the overall three-dimensional structure of the fixed body in a preferred embodiment of the present invention;

[0031] Figure 3 This is a three-dimensional exploded view of the fixing component in a preferred embodiment of the present invention.

[0032] Figure 4 This is an exploded three-dimensional structural diagram of the connecting component in a preferred embodiment of the present invention;

[0033] Figure 5 This is a schematic diagram of the first usage method in a preferred embodiment of the present utility model;

[0034] Figure 6 This is a schematic diagram of the second usage method in a preferred embodiment of the present invention.

[0035] In all the accompanying drawings, the same reference numerals denote the same technical features, specifically: 1. Fixed body; 11. Base plate; 12. Buckle; 13. Relief groove; 2. Fixed assembly; 21. Connecting block; 22. Boss shaft; 23. Connecting plate; 24. Spherical seat; 25. Hinge block; 26. T-shaped slide; 3. Connecting assembly; 31. Fixed block; 32. Fixed shaft; 33. Fixed groove; 34. Spherical bracket; 35. Hinge; 351. Compression spring; 352. Limiting shaft. Detailed Implementation

[0036] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0037] In the embodiments, by Figure 1-6 Provided is a modular MTP fiber optic patch cord anti-tangle structure, which may optionally include, but is not limited to, a fixing body 1;

[0038] The fixing component 2, located on the right side of the fixing body 1, includes two connecting blocks 21, which are symmetrically arranged on the right side of the fixing body 1; a connecting plate 23, which is located between the outer sides of the two connecting blocks 21; and a spherical seat 24, which is located on the right side of the connecting plate 23.

[0039] The connecting component 3 is located on the left side of the fixed body 1.

[0040] In this embodiment, a modular MTP fiber optic patch cord anti-tangle structure of the present invention is provided. The fixed body 1 can limit the fiber optic patch cord, thereby setting the connecting component 3 of another anti-tangle structure in the fixed component 2. In this way, the fixed bodies 1 of the two anti-tangle structures can be connected together. Through the above operation, multiple anti-tangle structures can be connected together, thereby enabling multiple fiber optic patch cords to be routed to prevent tangling between the fiber optic patch cords.

[0041] Furthermore, such as Figure 2 As shown, the fixing body 1 in the preferred embodiment of this utility model includes a base plate 11; two buckles 12 are symmetrically arranged on the upper surface of the base plate 11; and two clearance grooves 13 are symmetrically opened on the right side of the base plate 11.

[0042] Furthermore, the clip 12 is compatible with the fiber optic patch cord; the two connecting blocks 21 are symmetrically arranged on the right side of the base plate 11.

[0043] In this embodiment, several preferred embodiments of the fixing body 1 are given. By snapping the fiber optic patch cord between the inner sides of the two buckles 12, the fiber optic patch cord can be limited. Under the action of multiple interlocking anti-tangle structures, multiple fiber optic patch cords can be routed to prevent tangling between the fiber optic patch cords.

[0044] Furthermore, such as Figure 3 As shown, the fixing component 2 in the preferred embodiment of this utility model further includes two boss shafts 22, which are respectively disposed on the side of the two connecting blocks 21 away from the connecting plate 23; and two hinge blocks 25, which are respectively rotatably disposed on the outside of the two boss shafts 22, and the two hinge blocks 25 are respectively located on the inside of the two relief grooves 13.

[0045] Furthermore, two T-shaped grooves 26 are respectively opened on the side of the two hinge blocks 25 near the connecting plate 23, and the hinge blocks 25 are slidably disposed on the outside of the boss shaft 22 through the T-shaped grooves 26, so that the two hinge blocks 25 can slide on the outside of the boss shaft 22 and can also rotate.

[0046] In this embodiment, several preferred embodiments of the fixing component 2 are given. The connecting component 3 can be limited by the ball seat 24 on the connecting plate 23 and the two hinge blocks 25, thereby connecting the two anti-tangle structures together and laying the fiber optic patch cord. At the same time, the connecting component 3 can also be limited by only the two hinge blocks 25, so that although the two anti-tangle structures are connected together, they can still undergo a certain deformation displacement to ensure different requirements.

[0047] Furthermore, such as Figure 4-5 As shown, the connecting component 3 in the preferred embodiment of this utility model includes a fixing block 31 located on the left side of the base plate 11; a fixing shaft 32 located on the left side of the fixing block 31; two fixing grooves 33 respectively located at both ends of the fixing shaft 32; a spherical bracket 34 located on the side of the fixing shaft 32 away from the fixing block 31; and two hinge members 35 respectively symmetrically located on the inner side of the two fixing grooves 33.

[0048] Furthermore, the hinge 35 includes a compression spring 351 located inside the fixing groove 33; and a limiting shaft 352 located on the end of the compression spring 351 away from the spherical bracket 34.

[0049] Furthermore, the spherical bracket 34 and the spherical seat 24 are compatible with each other, and both the spherical bracket 34 and the spherical seat 24 are made of plastic. In this way, under the action of a certain force, the spherical bracket 34 can be placed into the spherical seat 24, and conversely, the spherical bracket 34 can be removed from the spherical seat 24.

[0050] More specifically, the outer side of the limiting shaft 352 is adapted to the inner side of the T-shaped slide 26; the dimension between the ends of the two limiting shafts 352 away from the spherical bracket 34 is greater than the dimension between the two hinge blocks 25 on the side closer to the spherical seat 24.

[0051] In this embodiment, several preferred embodiments of the connecting component 3 are provided. By pulling the two hinge blocks 25 away from the base plate 11 on the outside of the boss shaft 22, and then pressing the two limiting shafts 352 of the other anti-winding structure into the fixing groove 33, the limiting shafts 352 will compress the compression spring 351. Subsequently, the two limiting shafts 352 are aligned with the two T-shaped slide grooves 26, and the fixing shaft 32 is located between the outside of the two connecting blocks 21. Then, the limiting shafts 352 are released, and the limiting shafts 352 will automatically enter the T-shaped slide groove 26 under the action of the compression spring 351, thereby connecting the two anti-winding structures. The winding structure is initially positioned, and then the two hinge blocks 25 are moved into the relief groove 13. This causes the hinge blocks 25 to move the spherical bracket 34 through the limiting shaft 352 in the T-shaped slide groove 26, thereby engaging the spherical bracket 34 into the spherical seat 24 and limiting the two anti-winding structures together. In this way, multiple anti-winding structures can be spliced ​​and assembled together to run multiple fiber optic patch cords, preventing tangling between the fiber optic patch cords. Furthermore, the number of anti-winding structures used can be determined according to the number of fiber optic patch cords, thereby reducing the cost of running fiber optic patch cords.

[0052] Furthermore, such as Figure 6 As shown, after multiple anti-winding structures are spliced ​​and assembled together, the spherical brackets 34 of the two middle anti-winding structures can be removed from the spherical seat 24, and then the hinge block 25 can be completely pulled out from the relief groove 13. Since the boss shaft 22 and the limiting shaft 352 can both slide and rotate in the T-shaped slide groove 26, the multiple anti-winding structures can be divided into two groups for folding with the hinge block 25 as the axis, thereby reducing the space occupied by the anti-winding structures when used in large quantities.

[0053] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitations, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes said element.

[0054] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A modular MTP fiber optic jumper anti-tangle structure, characterized in that, It includes fixed body (1); Fixed assembly (2) provided on the right side of the fixed body (1), comprising two connecting blocks (21), symmetrically provided on the right side of the fixed body (1); connecting plate (23) provided between the outer side of two connecting blocks (21); spherical seat (24) provided on the right side of the connecting plate (23); Connecting assembly (3) provided on the left side of the fixed body (1).

2. The modular MTP fiber optic jumper anti-tangle structure of claim 1, wherein, The fixed body (1) comprises a bottom plate (11); Two buckles (12) are symmetrically provided on the upper surface of the bottom plate (11); Two let go of the slot (13) is symmetrically provided on the right side of the bottom plate (11).

3. The modular MTP fiber optic jumper anti-tangle structure of claim 2, wherein, The buckle (12) and the fiber jumper wire are matched with each other; Two connecting blocks (21) are symmetrically provided on the right side of the bottom plate (11).

4. The modular MTP fiber optic jumper anti-tangle structure of claim 3, wherein, The fixed assembly (2) further comprises two two boss shafts (22), which are respectively provided on one side of two connecting blocks (21) away from the connecting plate (23); Two hinge blocks (25) are respectively rotatably provided on the outer side of two boss shafts (22), and two hinge blocks (25) are respectively located on the inner side of two let go of the slot (13).

5. The modular MTP fiber optic jumper anti-tangle structure of claim 4, wherein, Two T-shaped sliding grooves (26) are respectively provided on one side of two hinge blocks (25) close to the connecting plate (23), and the hinge block (25) is slidably provided on the outer side of the boss shaft (22) through the T-shaped sliding groove (26).

6. The modular MTP fiber optic jumper anti-tangle structure of claim 5, wherein, The connecting assembly (3) comprises a fixed block (31) provided on the left side of the bottom plate (11); Fixed shaft (32) provided on the left side of the fixed block (31); Two fixed slots (33) are respectively provided on both ends of the fixed shaft (32); Spherical support (34) provided on one side of the fixed shaft (32) away from the fixed block (31); Two hinge pieces (35) are respectively symmetrically provided on the inner side of two fixed slots (33).

7. The modular MTP fiber optic jumper anti-tangle structure of claim 6, wherein, The hinge piece (35) comprises a compression spring (351) provided on the inner side of the fixed slot (33); Limiting shaft (352) provided on one end of the compression spring (351) away from the spherical support (34); The spherical support (34) and the spherical seat (24) are matched with each other, and the spherical support (34) and the spherical seat (24) are made of plastic.

8. The modular MTP fiber optic jumper anti-tangle structure of claim 7, wherein, The outer side of the limiting shaft (352) and the inner side of the T-shaped sliding groove (26) are matched with each other; The size between two ends of the limiting shaft (352) away from the spherical support (34) is greater than the size between two hinge blocks (25) close to the spherical seat (24).