Optical fiber assembly and wiring seat structure thereof

By providing self-installing fiber optic assemblies, including cabling base structures and fiber optic cables, the problem of requiring professional personnel for fiber optic cable wiring is solved, achieving simplicity and flexibility in self-wiring, reducing costs and improving aesthetics.

CN223597956UActive Publication Date: 2025-11-25FITEK PHOTONICS CORPORATION
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202422834036.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Priority Date
2024-08-09
Filing Date
2024-11-20
Publication Date
2025-11-25
Estimated Expiration
2034-11-20

AI Technical Summary

Technical Problem

Existing fiber optic cable wiring requires professional personnel, which is time-consuming and labor-intensive, and changing the wiring location is difficult, making it impossible to complete the work freely and efficiently.

Method used

An optical fiber assembly is provided, comprising a cabling base structure and an optical fiber cable. The cabling base structure has a bottom surface, peripheral side surface, top surface, cutout, and groove, allowing users to fix and connect the optical fiber cable into the cabling base structure themselves, simplifying the operation process.

Benefits of technology

Users can complete the fiber optic cable wiring themselves, reducing costs, increasing convenience and flexibility, adapting to different environmental needs, and enhancing aesthetics.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223597956U_ABST
    Figure CN223597956U_ABST
Patent Text Reader

Abstract

The utility model provides an optical fiber assembly and a wiring seat structure thereof, the optical fiber assembly comprises the wiring seat structure and an optical fiber cable, and the wiring seat structure and the optical fiber cable can be made of transparent materials to improve the aesthetic degree of indoor wiring. The wiring seat structure is provided with a bottom surface, a peripheral side surface, a top surface, a notch and a containing groove, the peripheral side surface is connected between the bottom surface and the top surface, the containing groove extends to the whole peripheral side surface, and the notch extends to the containing groove from the top surface. The optical fiber cable comprises an outer coating layer, an optical transmission unit and an optical fiber connector, the outer coating layer wraps the optical transmission unit, the optical transmission unit is connected with the optical fiber connector, and the optical fiber cable is contained in the containing groove.
Need to check novelty before this filing date? Find Prior Art

Description

TECHNICAL FIELD

[0001] The present application relates to an optical fiber assembly and a wiring seat structure thereof. BACKGROUND

[0002] Optical fiber cables have the advantages of not being interfered by electromagnetic noise and having a large transmission bandwidth compared to other communication cables. Therefore, optical fiber cables are gradually widely used in communication transmission. When signals are transmitted to equipment ends through optical fiber cables, the optical fiber cables need to be arranged in buildings and then arranged to indoor equipment ends in the buildings.

[0003] However, in order to arrange the optical fiber cables, professional arrangement personnel are usually required. Therefore, in addition to the arrangement cost, the working time of the professional arrangement personnel is also required, which is time-consuming and laborious. After the arrangement is completed, if the arrangement position needs to be changed, the money and time need to be spent again to complete the arrangement. In addition to the consumption of money, the arrangement cannot be freely and efficiently completed, and thus there is room for improvement to break through the technical solution of consumer self-installation arrangement. CONTENT OF THE INVENTION

[0004] The present application provides an optical fiber assembly, comprising a wiring seat structure and an optical fiber cable. The wiring seat structure has a bottom surface, a peripheral side surface, a top surface, a cutout, and a container groove. The peripheral side surface is connected between the bottom surface and the top surface. The container groove extends through the entire peripheral side surface. The cutout extends from the top surface to the container groove. The optical fiber cable comprises an outer covering layer, an optical transmission unit, and an optical fiber connector. The outer covering layer covers the optical transmission unit. The optical fiber connector is connected to the optical transmission unit. The optical fiber cable is accommodated in the container groove.

[0005] The present application also provides a wiring seat structure, comprising a bottom surface, a peripheral side surface, a top surface, a cutout, and a container groove. The peripheral side surface is connected between the bottom surface and the top surface. The container groove extends through the entire peripheral side surface. The cutout extends from the top surface to the container groove.

[0006] In this way, the user can fix the wiring seat structure on the routing path of the optical fiber cable, and then combine the optical fiber cable into the wiring seat structure to complete the arrangement of the optical fiber cable by himself. The operation is simple, and the user can arrange and install the optical fiber cable to connect the communication equipment according to his own needs, thereby improving the convenience and freedom in use. The transparent material can be used to increase the aesthetics of indoor arrangement.

[0007] In some embodiments, the optical fiber assembly further comprises a double-sided adhesive layer attached to the bottom surface of the wiring seat structure.

[0008] In some embodiments, the optical fiber assembly further comprises a double-sided adhesive layer attached to the peripheral side surface of the wiring seat structure.

[0009] In some embodiments, the container groove of the aforementioned wiring seat structure has an inner surface, and the inner surface is circular.

[0010] In some embodiments, the cavity of the wiring seat structure has an inner surface, and the inner surface is rectangular.

[0011] In some embodiments, the wiring seat structure further comprises a first tensile body, and the first tensile body is located around the cavity.

[0012] In some embodiments, the fiber cable further comprises a second tensile body, and the second tensile body is located around the optical transmission unit, and the outer coating layer covers the second tensile body.

[0013] In some embodiments, the wiring seat structure further comprises a first tensile body, and the first tensile body is located around the cavity, and the fiber cable further comprises a second tensile body, and the second tensile body is located around the optical transmission unit, and the outer coating layer covers the second tensile body.

[0014] In some embodiments, the cutout of the wiring seat structure extends perpendicularly to the top surface.

[0015] In some embodiments, the cutout of the wiring seat structure comprises a first segment and a second segment connected to each other, the first segment extends from the cavity in a direction perpendicular to the top surface, and the second segment is not coplanar with the first segment.

[0016] In some embodiments, the second segment comprises a first surface and a second surface, one end of the first surface and the second surface is connected to the first segment, and the other end of the first surface and the second surface extends reversely inclined away from the bottom surface.

[0017] In some embodiments, the second segment comprises a first surface and a second surface, one end of the first surface and the second surface is connected to the first segment, and the first surface and the second surface are respectively arc-shaped surfaces. BRIEF DESCRIPTION OF DRAWINGS

[0018] Figure 1 FIG. 1 is a perspective view of a fiber assembly according to an embodiment of the present application;

[0019] Figure 2 FIG. 2 is a perspective view of a wiring seat structure of the fiber assembly according to an embodiment of the present application;

[0020] Figure 3 FIG. 3 is a combined sectional view of the fiber assembly according to an embodiment of the present application;

[0021] Figure 4 FIG. 4 is a combined sectional view of the fiber assembly according to another embodiment of the present application;

[0022] Figure 5 FIG. 5 is a combined sectional view of the fiber assembly according to another embodiment of the present application;

[0023] Figure 6 FIG. 6 is a combined sectional view of the fiber assembly according to another embodiment of the present application; and

[0024] Figure 7 Combined sectional view of a fifth embodiment of the optical fiber assembly of the present application;

[0025] Figure 8 Combined sectional view of a sixth embodiment of the optical fiber assembly of the present application;

[0026] Figure 9 Combined sectional view of a seventh embodiment of the optical fiber assembly of the present application;

[0027] Figure 10 Combined sectional view of an eighth embodiment of the optical fiber assembly of the present application;

[0028] Figure 11 Combined sectional view of a ninth embodiment of the optical fiber assembly of the present application;

[0029] Figure 12 Combined sectional view of a tenth embodiment of the optical fiber assembly of the present application.

[0030]

Symbol explanation

[0031] 10: wiring seat structure

[0032] 11: bottom surface

[0033] 12: peripheral surface

[0034] 13: top surface

[0035] 14: cutout

[0036] 141: first section

[0037] 142: second section

[0038] 1421: first surface

[0039] 1422: second surface

[0040] 15: housing groove

[0041] 151: inner surface

[0042] 1511: side edge

[0043] 16: first tensile body

[0044] 20: optical fiber cable

[0045] 21: outer covering layer

[0046] 22: optical transmission unit

[0047] 221: optical fiber core wire

[0048] 23: optical fiber connector

[0049] 24: second tensile body

[0050] 30: double-sided adhesive layer DETAILED DESCRIPTION

[0051] Before the optical fiber assembly of the present application is described in detail, it is to be understood that the application is not limited in its application to the details of the construction and the arrangement of the components set forth in the following description or illustrated in the drawings. The optical fiber assembly is capable of other embodiments and of being practiced or being carried out in various ways.

[0052] Reference will now be made to Figure 1 , Figure 1 Fig. 1 is a perspective view of an embodiment of the optical fiber assembly of the present application. The optical fiber assembly comprises a routing structure 10 and an optical fiber cable 20. The routing structure 10 is used to fix the routing path of the optical fiber cable 20, and the optical fiber cable 20 is detachably accommodated in or combined with the routing structure 10. In this way, the user can complete the routing work of the optical fiber cable 20 by himself.

[0053] Reference will now be made to Figure 2 and Figure 3 , Figure 2 Fig. 2 is a perspective view of an embodiment of the routing structure of the optical fiber assembly of the present application; Figure 3 Fig. 3 is a combined sectional view of the first embodiment of the optical fiber assembly of the present application. The routing structure 10 has a bottom surface 11, a peripheral side surface 12, a top surface 13, a cutout 14, and a receiving groove 15. The peripheral side surface 12 connects between the bottom surface 11 and the top surface 13, the receiving groove 15 extends through the entire peripheral side surface 12, and the cutout 14 extends from the top surface 13 to the receiving groove 15. The optical fiber cable 20 comprises a sheath layer 21, an optical transmission unit 22, and an optical fiber connector 23. The sheath layer 21 covers the optical transmission unit 22, the optical fiber connector 23 connects the optical transmission unit 22, and the optical fiber cable 20 is accommodated in the receiving groove 15.

[0054] In this way, the user can combine the optical fiber cable 20 to the routing structure 10 by himself, and by fixing the routing structure 10 to the routing path of the optical fiber cable 20, the user can complete the routing of the optical fiber cable 20 according to the use requirements and environmental requirements, providing more diversified use for the user, and the operation is simple and convenient, easy for the user to operate and complete, without the need to hire professional routing personnel, reducing the use cost, and improving the freedom and installation willingness of the user.

[0055] It is worth noting that, for the sake of clear illustration, the cutout 14 in each drawing of the routing structure 10 of the present application is drawn in an exaggerated proportion. In the actual product, the cutout 14 can be extremely small and cannot be seen with the naked eye. That is, the proportion of the cutout 14 is not limited to the drawings.

[0056] The cabling base structure 10 is used to carry the fiber optic cable 20 and arrange the fiber optic cable 20 in the cabling path. In some embodiments, the cabling base structure 10 is a single structure made of a flexible material and can be formed into a long strip structure to facilitate winding and storage (e.g., Figure 1 As shown), and allows users to cut it to the required length (e.g. Figure 2 (As shown). In some embodiments, the wiring seat structure 10 may be, but is not limited to, made of engineering plastic materials, polymer materials, or polymer composite materials. In some embodiments where the wiring seat structure 10 is made of polymer materials, the wiring seat structure 10 may be, but is not limited to, made of plastic, rubber, or fiber. In some embodiments where the wiring seat structure 10 is made of polymer composite materials, the wiring seat structure 10 may be, but is not limited to, made of polymer composite materials that also contain additives with properties of high temperature resistance, corrosion resistance, or insulation.

[0057] See Figure 2 and Figure 3 In some embodiments, the end faces of the wiring base structure 10 are generally rectangular, and the connection direction of the two opposite end faces of the wiring base structure 10 is the length direction of the wiring base structure 10. In these embodiments, the bottom surface 11 of the wiring base structure 10 is rectangular, one end of the peripheral side surface 12 is connected to the bottom surface 11 along the outline of the bottom surface 11, and the top surface 13 is connected to the other end of the peripheral side surface 12. Here, the receiving groove 15 extends along the length direction across the entire peripheral side surface 12, and the form of the cutout 14 extending from the top surface 13 to the receiving groove 15 allows the optical fiber cable 20 to enter the receiving groove 15 through the cutout 14. It is worth noting that the appearance shape of the wiring base structure 10 is not limited to the rectangular shape shown in the figures. In some other embodiments, the appearance shape of the wiring base structure 10 can be determined according to the applicable environment, space, or different needs, for example, but not limited to, a circular, semi-circular, polygonal, various geometric shapes, or combinations of various shapes.

[0058] See Figure 1 In some embodiments, the fiber optic cable 20 has a long strip shape to facilitate winding and storage, and allows the user to cut it to the required length.

[0059] See Figure 3 The outer sheath 21 of the fiber optic cable 20 may, but is not limited to, be made of plastic, rubber, or other polymer materials. In one embodiment, the outer sheath 21 is generally circular when viewed from the end face, but this is not the case. In other embodiments, such as Figure 4 As shown, the end face of the outer coating 21 can also be rectangular, elliptical, near-circular polygonal or other various shapes.

[0060] See Figure 4The optical transmission unit 22 of the optical fiber cable 20 comprises optical fiber cores 221, which can be a tight-pack optical fiber, a loose-pack optical fiber, a half-tight-pack optical fiber, a dyed optical fiber, a ribbon optical fiber, a micro-cluster optical fiber bundle, or any combination thereof; and the optical fiber cores 221 can be presented in singular or plural. Here, the optical fiber cores 221 can utilize optical transmission technology for signal transmission.

[0061] In some embodiments, the wiring seat structure 10 and the optical fiber cable 20 can be made of transparent material, thereby improving the aesthetics of indoor wiring.

[0062] Based on the foregoing, when the user wants to perform wiring of the optical fiber cable 20, the optical fiber assembly of the present application can be operated by the user to complete it. The operation mode is described as follows: the optical fiber assembly comprises the wiring seat structure 10 and the optical fiber cable 20, the user can first fix the wiring seat structure 10 to the arranged wiring path of the optical fiber cable 20, and then place the optical fiber cable 20 into the container groove 15 from the cutout 14 of the wiring seat structure 10, thereby completing the wiring.

[0063] It is worth noting that the use of the optical fiber assembly can also be that the optical fiber cable 20 is placed into the container groove 15 from the cutout 14 of the wiring seat structure 10, and then the wiring seat structure 10 together with the optical fiber cable 20 is fixed to the arranged wiring path of the optical fiber cable 20, thereby completing the wiring.

[0064] Referring to Figure 5 In some embodiments, in order to facilitate the fixation of the wiring seat structure 10 to the wiring position of the optical fiber cable 20, the optical fiber assembly further comprises a double-sided adhesive layer 30, one side of the double-sided adhesive layer 30 is attached to the bottom surface 11 of the wiring seat structure 10, in this way, the other side of the double-sided adhesive layer 30 can be attached to the predetermined wiring path of the optical fiber cable 20 by the user, thereby facilitating the operation of the user.

[0065] Referring to Figure 6 In some embodiments, in order to facilitate the fixation of the wiring seat structure 10 to different environments, one side of the double-sided adhesive layer 30 is attached to the peripheral side surface 12 of the wiring seat structure 10, in this way, the wiring seat structure 10 can be attached to the predetermined wiring path of the optical fiber cable 20 by the peripheral side surface 12, thereby facilitating the arrangement of the wiring seat structure 10 in different environments.

[0066] It is worth noting that in some embodiments, the wiring seat structure 10 is not limited to setting the double-sided adhesive layer 30 on only one of the bottom surface 11 or the peripheral side surface 12, in other embodiments, referring to Figure 7, the wiring seat structure 10 can also be provided with double-sided adhesive layers 30 on both the bottom surface 11 and the peripheral surface 12, so that the user can choose to use the double-sided adhesive layers 30 as needed or use all the double-sided adhesive layers 30 on the wiring seat structure 10 for pasting, thereby improving the convenience of use and the degree of freedom of the applicable environment.

[0067] Referring to Figure 3 In some embodiments, in order to be applicable to fiber cable 20 of circular appearance, the container groove 15 of the wiring seat structure 10 has an inner surface 151 which is circular, but the present application is not limited thereto. In other embodiments, in order to be applicable to fiber cable 20 of other appearance shapes, the inner surface 151 of the container groove 15 of the wiring seat structure 10 can also be rectangular (as shown in Figure 4 , polygonal, oval, or other various shapes.

[0068] Referring to Figure 8 In some embodiments, in order to ensure that the fiber cable 20 of the fiber assembly is not damaged by non-human creatures (rodents, insects) in the arrangement environment, the wiring seat structure 10 further comprises a first tensile body 16 located around the container groove 15. In some of these embodiments, the first tensile body 16 is glass fiber or aromatic polyamide fiber or fiber reinforced plastic (FRP). In some embodiments where the first tensile body 16 is glass fiber, in addition to enhancing the tensile strength of the wiring seat structure 10, in terms of preventing creatures from biting, when the creatures bite the first tensile body 16, the glass fiber breaks and pierces into the mouth of the biting creature, causing the biting creature to feel uncomfortable and naturally stopping the biting creature from continuing to bite the fiber cable 20, thereby achieving the effect of protecting the fiber cable 20.

[0069] Referring to Figure 7 In some embodiments, also in order to ensure that the fiber cable 20 of the fiber assembly is not damaged by non-human creatures (rodents, insects) in the arrangement environment, the fiber cable 20 further comprises a second tensile body 24 located around the outer periphery of the optical transmission unit 22, and the outer sheath layer 21 is wrapped around the second tensile body 24. In this way, even if the wiring seat structure 10 does not have the first tensile body 16, the effect of protecting the fiber cable 20 can still be achieved.

[0070] Based on the foregoing, in some embodiments where the wiring seat structure 10 is provided with the first tensile body 16, even if the fiber cable 20 is not provided with the second tensile body 24, the effect of protecting the fiber cable 20 can still be achieved; and in some embodiments where the fiber cable 20 is provided with the second tensile body 24, even if the wiring seat structure 10 is not provided with the first tensile body 16, the effect of protecting the fiber cable 20 can still be achieved, so the above-mentioned various embodiments can be selected according to the actual use state.

[0071] Referring toFigure 9 It is worth mentioning that the optical fiber assembly is not limited to only providing the first tensile body 16 in the wiring seat structure 10 or only providing the second tensile body 24 in the optical fiber cable 20. In some embodiments, the optical fiber assembly includes both the first tensile body 16 and the second tensile body 24, so that the wiring seat structure 10 is protected by the first tensile body 16, and the optical fiber cable 20 accommodated in the wiring seat structure 10 is simultaneously protected by both the first tensile body 16 and the second tensile body 24, achieving a double protection effect.

[0072] It is worth mentioning that when the optical fiber core wire 221 transmits signals, the optical fiber core wire 221 has the highest transmission loss value, which refers to the lowest standard of transmission efficiency of the optical fiber core wire 221, that is, if the optical transmission efficiency of the optical fiber core wire 221 is greater than the highest transmission loss, then this optical fiber cable 20 can be normally used. On the contrary, if the optical transmission efficiency of the optical fiber core wire 221 is less than the highest transmission efficiency, then the optical fiber cable 20 will be judged as unusable and invalid. Therefore, based on the foregoing, the wiring seat structure 10, the first tensile body 16, the outer covering layer 21, and the second tensile body 24 respectively protect the optical fiber core wire 221 from being damaged by excessive side pressure, excessive bending, or excessive pulling. In other words, the wiring seat structure 10, the first tensile body 16, the outer covering layer 21, and the second tensile body 24 can make the optical fiber core wire 221 have the effects of side pressure resistance, bending resistance, and tensile resistance, so as to further make the optical transmission efficiency of the optical fiber core wire 221 always maintain greater than the minimum transmission efficiency. In addition, the wiring seat structure 10, the first tensile body 16, the outer covering layer 21, and the second tensile body 24 also form multiple layers of protection to prevent mice or insects from biting, so that the optical fiber assembly can be more widely used in more severe environments.

[0073] Referring to Figure 2 to Figure 9 In some embodiments, the wiring seat structure 10 is made of a flexible material, and the extension direction of the cutout 14 is perpendicular to the top surface 13. That is, the cutout 14 of the wiring seat structure 10 extends between the top surface 13 and the accommodating groove 15 in a direction perpendicular to the top surface 13. In these embodiments, the operator can apply force to both sides of the cutout 14 of the wiring seat structure 10, so that the cutout 14 is opened and then the optical fiber cable 20 is placed. At this time, since the cross-sectional area of the cutout 14 is small, it can ensure that the optical fiber cable 20 is not easily pulled out of the cutout 14, ensuring the stability of the optical fiber assembly.

[0074] Referring to Figure 10In some embodiments, the cutout 14 of the cabling connector structure 10 includes a first segment 141 and a second segment 142 connected to each other. The first segment 141 extends from the self-contained groove 15 in a direction perpendicular to the top surface 13, and the second segment 142 is not coplanar with the first segment 141. This expands the open range of the cutout 14 at the top surface 13, improving the convenience of inserting the fiber optic cable 20 into the groove 15 through the cutout 14.

[0075] It is worth noting that since the cut 14 extends from the top surface 13 to the groove 15, the wiring seat structure 10 is separated on both sides by the cut 14. (See also...) Figure 10 , Figure 11 In some embodiments where the second segment 142 of the cut 14 is not coplanar with the first segment 141, the second segment 142 of the cut 14 includes a first surface 1421 and a second surface 1422, with one end of the first surface 1421 connected to the first segment 141 of the cut 14. In these embodiments, the first surface 1421 and the second surface 1422 are not parallel to each other. That is, in some embodiments where the second segment 142 of the cut 14 is not coplanar with the first segment 141, it can be as follows: Figure 10 In the embodiment shown, the first surface 1421 extends in a direction perpendicular to the top surface 13, and the extension direction of the second surface 1422 is inclined to the extension direction of the first surface 1421, but this embodiment is not limited thereto. In some embodiments where the second segment 142 of the cut 14 is not coplanar with the first segment 141, it is also possible to... Figure 11 In the embodiment shown, the extension directions of the first surface 1421 and the second surface 1422 are inclined to the top surface 13, and the other ends of the first surface 1421 and the second surface 1422 extend in the opposite direction away from the bottom surface 11. In this way, the second segment 142 of the cut 14 becomes a tapered opening that gradually widens compared to the first segment 141, thereby facilitating the installation of the fiber optic cable 20.

[0076] In some embodiments where the second segment 142 of the cut 14 is not coplanar with the first segment 141, the first surface 1421 and the second surface 1422 are not limited to being planes. See also Figure 12 In some embodiments, the first surface 1421 and the second surface 1422 are both arc-shaped surfaces. In this way, when the optical fiber cable 20 enters the cavity 15 through the cut 14, the wear that may occur to the outer coating layer 21 when the optical fiber cable 20 contacts the first surface 1421 and the second surface 1422 can be reduced, thus ensuring the life of the optical fiber cable 20.

[0077] See Figure 4In some embodiments, the inner surface 151 of the receiving groove 15 of the wire holder structure 10 is rectangular, so as to accommodate the optical fiber cable 20 with a rectangular outer coating layer 21. In these embodiments, the first surface 1421 and the second surface 1422 of the second section 142 of the cutout 14 are oppositely inclined, and the inner surface 151 has four side edges 1511, each of which is not parallel to the bottom surface 11, the peripheral side surface 12 or the top surface 13, and the inner surface 151 is connected to the cutout 14 at the junction angle of two adjacent side edges 1511. In this way, when the optical fiber cable 20 with a rectangular outer coating layer 21 enters the receiving groove 15 through the cutout 14, the corner of the optical fiber cable 20 is directed towards the cutout 14, and the optical fiber cable 20 is guided by the cutout 14 to enter the receiving groove 15, thereby allowing a user to place the optical fiber cable 20 into the wire holder structure 10 with one hand, improving the convenience of use.

Claims

1. An optical fiber assembly, comprising: The wiring seat structure comprises a bottom surface, a peripheral surface, a top surface, a cutout and a receiving groove, the peripheral surface is connected between the bottom surface and the top surface, the receiving groove extends to the peripheral surface, and the cutout extends from the top surface to the receiving groove. The optical fiber cable comprises an outer coating layer, an optical transmission unit and an optical fiber connector, the outer coating layer covers the optical transmission unit, the optical fiber cable is accommodated in the receiving groove, and the optical fiber connector is connected to the optical transmission unit. A double-sided adhesive layer is further attached to the bottom surface of the wiring seat structure. A double-sided adhesive layer is further attached to the peripheral surface of the wiring seat structure.

2. The fiber optic assembly of claim 1, wherein, The receiving groove of the wiring seat structure has an inner surface, which is circular.

3. The fiber optic assembly of claim 1, wherein, The receiving groove of the wiring seat structure has an inner surface, which is rectangular.

4. The fiber optic assembly of claim 1, wherein, The wiring seat structure further comprises a first tensile body located around the receiving groove.

5. The fiber optic assembly of claim 1, wherein, The optical fiber cable further comprises a second tensile body located around the optical transmission unit, and the outer coating layer covers the second tensile body.

6. The fiber optic assembly of claim 1, wherein, The wiring seat structure further comprises a first tensile body located around the receiving groove, and the optical fiber cable further comprises a second tensile body located around the optical transmission unit, and the outer coating layer covers the second tensile body.

7. The fiber optic assembly of claim 1, wherein, The extension direction of the cutout of the wiring seat structure is perpendicular to the top surface.

8. The fiber optic assembly of claim 1, wherein, The cutout of the wiring seat structure comprises a first segment and a second segment connected to each other, the first segment extends from the receiving groove in a direction perpendicular to the top surface, and the second segment is not coplanar with the first segment.

9. The fiber optic assembly of claim 1, wherein, The second segment comprises a first surface and a second surface, one end of the first surface and the second surface is connected to the first segment, and the other end of the first surface and the second surface extends reversely inclined in a direction away from the bottom surface.

10. The fiber optic assembly of claim 1, wherein, The second segment comprises a first surface and a second surface, one end of the first surface and the second surface is connected to the first segment, and the first surface and the second surface are respectively arc-shaped surfaces.

11. The fiber optic assembly of claim 10, wherein, The wiring seat structure comprises a bottom surface, a peripheral surface, a top surface, a cutout and a receiving groove, the peripheral surface is connected between the bottom surface and the top surface, the receiving groove extends to the peripheral surface, and the cutout extends from the top surface to the receiving groove.

12. The fiber optic assembly of claim 10, wherein, A double-sided adhesive layer is further attached to the bottom surface.

13. A wiring base structure, characterized by comprising: A double-sided adhesive layer is further attached to the peripheral surface.

14. The wiring block structure of claim 13, wherein The receiving groove has an inner surface, which is circular.

15. The wiring block structure of claim 13, wherein The receiving groove has an inner surface, which is rectangular.

16. The wiring block structure of claim 13, wherein The wiring seat structure further comprises a first tensile body located around the receiving groove.

17. The wiring block structure of claim 13, wherein The extension direction of the cutout is perpendicular to the top surface.

18. The wiring block structure of claim 13, wherein, The cutout comprises a first segment and a second segment connected to each other, the first segment extends from the receiving groove in a direction perpendicular to the top surface, and the second segment is not coplanar with the first segment.

19. The wiring block structure of claim 13, wherein The second segment of the cutout comprises a first surface and a second surface, one end of the first surface and the second surface is connected to the first segment, and the other end of the first surface and the second surface extends reversely inclined in a direction away from the bottom surface.

20. The wiring block structure of claim 13, wherein, The second segment of the cutout comprises a first surface and a second surface, one end of the first surface and the second surface is connected to the first segment, and the first surface and the second surface are respectively arc-shaped surfaces.

21. The wiring block structure of claim 20, wherein, ​ 22. The wiring block structure of claim 20, wherein, ​