Multi-channel identification on-line fiber alignment instrument equipment

By designing an online fiber optic pairing device with multi-channel identification, and adopting a connector, detection mechanism, and limit cover locking structure, the limitations of existing fiber optic pairing devices in multi-channel detection splitting operation are solved, realizing the convenience and practicality of flexible splitting and multi-channel detection.

CN224151986UActive Publication Date: 2026-04-21安徽网谱智能科技有限公司
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
安徽网谱智能科技有限公司
Filing Date
2025-04-29
Publication Date
2026-04-21

AI Technical Summary

Technical Problem

Existing fiber pairing instruments have limitations in multi-channel detection and are not convenient for splitting operations.

Method used

A multi-channel identification online fiber pairing device was designed, comprising a connector, a detection mechanism, a photoelectric sensor, and an electrical socket. Flexible disassembly and multi-channel detection are achieved through bolt connection and limit cover locking.

Benefits of technology

It enables flexible splitting and multi-channel detection operations, improving the convenience and practicality of detection and ensuring the effectiveness and accuracy of detection.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a multi-channel identification on-line fiber alignment instrument device, relates to the technical field of optical fiber detection, and aims to solve the problems that a detection structure of an existing fiber alignment instrument is inconvenient to split, and limitation exists in multi-channel detection, and adopts the technical scheme that the multi-channel identification on-line fiber alignment instrument device comprises a connecting seat, a plurality of groups of mounting holes are formed in the outer surface of the connecting seat, a detection mechanism is mounted in each group of mounting holes, each detection mechanism comprises a shell, an optical sensor is mounted in each shell, and an electric socket is arranged at the corresponding position of the side surface of each shell and the connecting seat; two through holes are formed in the outer surface of the shell, connecting rods are installed in the through holes, and one ends of the connecting rods are fixedly connected with limiting covers. And the effects that the detection structure can be flexibly disassembled, multi-channel detection operation can be carried out, and the practicability is high are achieved.
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Description

Technical Field

[0001] This utility model relates to the field of optical fiber detection technology, and in particular to an online fiber pairing device with multi-channel identification. Background Technology

[0002] During the fiber optic testing process, different testing equipment is selected according to different needs, including fiber optic testing instruments. These instruments use optical sensors to detect signals in the fiber optic line in order to locate fault points in the fiber optic cable.

[0003] Existing fiber optic testing instruments are not convenient for disassembling the detection structure, and have limitations in multi-channel detection. Utility Model Content

[0004] The purpose of this invention is to provide an online fiber optic testing device with multi-channel identification that can flexibly disassemble the detection structure and perform multi-channel detection operations, making it highly practical.

[0005] To achieve the above objectives, the present invention provides the following technical solution:

[0006] A multi-channel identification online fiber pairing device includes a connector, the outer surface of which is provided with multiple sets of mounting holes, and each set of mounting holes is equipped with a detection mechanism. The detection mechanism includes a housing, and a light sensor is installed inside the housing. An electrical socket is provided at the corresponding position on the side surface of the housing and the connector.

[0007] By adopting the above technical solution, disassembly and assembly operations can be carried out flexibly, resulting in high flexibility and practicality.

[0008] Furthermore, two through holes are provided on the outer surface of the housing, and a connecting rod is installed inside the through holes, with a limit cover fixedly connected to one end of the connecting rod.

[0009] By adopting the above technical solution, the positional stability of the limit cover is ensured.

[0010] Furthermore, a detection groove is provided on the end face of the housing, and the detection end of the optical sensor corresponds to the position of the detection groove.

[0011] By adopting the above technical solutions, the testing operation can be carried out effectively.

[0012] Furthermore, a limiting end block is fixedly connected to one end of the connecting rod, a spring is installed in the through hole inside the housing, one end of the spring abuts against the end face of the limiting end block, and an end cap is threaded onto one end of the through hole inside the housing.

[0013] By adopting the above technical solution, the limit cover can be effectively popped out when unlocking.

[0014] Furthermore, a locking block is integrally connected to the edge of the limiting cover, and a locking hole is provided on the outer surface of the locking block. A locking member is movably installed on the side surface of the housing, and one end of the locking member is adapted to the locking hole of the locking block.

[0015] By adopting the above technical solution, the limiting cover can be effectively limited and locked.

[0016] Furthermore, a host is provided outside the connector, and the host is electrically connected to the connector.

[0017] By adopting the above technical solutions, effective detection operations can be achieved.

[0018] In summary, the beneficial technical effects of this utility model are as follows:

[0019] 1. This utility model can select the corresponding number of detection mechanisms according to the needs of use, and then install the detection mechanisms in the mounting holes at the corresponding positions of the connector by bolts. Then, insert the two ends of the electrical wire harness into the slots of the two electrical sockets at the corresponding positions. At this time, multi-channel identification operation can be performed. The entire device can be flexibly disassembled and is highly practical.

[0020] 2. This utility model can lock the optical fiber inside the detection slot when testing the optical fiber line, and then press the limiting cover to compress the spring at one end of the connecting rod, so that the locking block locks at one end of the locking piece. Then, the working status of the optical fiber can be detected by the optical sensor inside the housing without interrupting the network. The detection operation is convenient and highly practical. Attached Figure Description

[0021] Figure 1 This is a first-view perspective view of the three-dimensional structure of this utility model;

[0022] Figure 2 This is a second perspective view of the three-dimensional structure of this utility model;

[0023] Figure 3 This utility model Figure 2 Enlarged view of point A.

[0024] In the diagram: 1. Main unit; 2. Connecting base; 3. Detection mechanism; 4. Housing; 5. Switch; 6. Limit cover; 7. Detection groove; 8. Electrical socket; 9. Spring; 10. End; 11. Connecting rod; 12. Locking fastener; 13. Locking block. Detailed Implementation

[0025] The method of this utility model will be further described in detail below with reference to the accompanying drawings.

[0026] Reference Figure 1 , Figure 2 A multi-channel identification online fiber optic cable pairing device includes a connector 2. Multiple sets of mounting holes are provided on the outer surface of the connector 2, and a detection mechanism 3 is installed in each set of mounting holes. The detection mechanism 3 includes a housing 4, and a light sensor is installed inside the housing 4. An electrical socket 8 is provided at the corresponding position on the side surface of the housing 4 and the connector 2. The number of detection mechanisms 3 can be selected according to usage needs. The detection mechanisms 3 are then installed in the mounting holes at the corresponding positions of the connector 2 using bolts. Next, both ends of the electrical cable harness are respectively inserted into the slots of the two electrical sockets 8 at the corresponding positions. At this point, multi-channel identification operation can be performed. The entire device can be flexibly disassembled, making it highly practical.

[0027] Reference Figure 1 , Figure 3 Two through holes are provided on the outer surface of the housing 4, and a connecting rod 11 is installed inside the through holes. One end of the connecting rod 11 is fixedly connected to a limit cover 6, and the other end of the connecting rod 11 is fixedly connected to a limit end block. A spring 9 is installed inside the through holes of the housing 4, and one end of the spring 9 abuts against the end face of the limit end block. An end head 10 is threaded onto one end of the through holes of the housing 4. A detection groove 7 is provided on the end face of the housing 4. The detection end of the optical sensor corresponds to the position of the detection groove 7. A locking block 13 is integrally connected to the edge of the limit cover 6. The outer surface of the locking block 13 is provided with a locking hole, and the locking element 12 is movably installed on the side surface of the housing 4. One end of the locking element 12 is adapted to the locking hole of the locking block 13. When testing the optical fiber line, the optical fiber can be locked inside the testing groove 7, and then the limiting cover 6 is pressed to compress the spring 9 at one end of the connecting rod 11, thereby locking the locking block 13 at one end of the locking element 12. Then, the optical sensor inside the housing 4 can detect the working status of the optical fiber without interrupting the network. The detection operation is convenient and highly practical.

[0028] Reference Figure 1 The connector 2 is externally equipped with a host 1, which is electrically connected to the connector 2. The host 1 can be used to receive signals and analyze data to achieve effective detection operations.

[0029] Working principle: In use, select the corresponding number of detection mechanisms 3 according to the needs, and then install the detection mechanism 3 into the mounting holes at the corresponding positions of the connecting seat 2 with bolts. Then, insert the two ends of the electrical wire harness into the slots of the two electrical sockets 8 at the corresponding positions. Then, snap the optical fiber into the inside of the detection slot 7, and then press the limit cover 6 to compress the spring 9 at one end of the connecting rod 11. Then, the locking block 13 locks into one end of the locking piece 12. Then, the optical sensor inside the housing 4 detects the working status of the optical fiber without interrupting the network. During detection, press the switch 5 to close the detection circuit, thereby realizing effective detection operation. The signal data generated by the detection is transmitted to the inside of the host 1. After the host 1 analyzes the data, the accurate fault point can be obtained.

[0030] The specific real-time examples described herein are preferred real-time examples of this utility model and are not intended to limit the scope of protection of this utility model. Therefore, all equivalent changes made to the structure, shape, and principle of this utility model should be included within the scope of protection of this utility model.

Claims

1. A multi-channel identification online fiber pairing device, comprising a connector (2), characterized in that: The outer surface of the connector (2) is provided with multiple sets of mounting holes, and a detection mechanism (3) is installed in each set of mounting holes. The detection mechanism (3) includes a housing (4), and a light sensor is installed inside the housing (4). An electrical socket (8) is provided on the side surface of the housing (4) and at the corresponding position of the connector (2).

2. The online fiber optic analyzer apparatus of claim 1, wherein: Two through holes are provided on the outer surface of the housing (4), and a connecting rod (11) is installed inside the through holes. One end of the connecting rod (11) is fixedly connected to a limit cover (6).

3. The online fiber optic tester apparatus of claim 1, wherein: A detection groove (7) is provided on the end face of the housing (4), and the detection end of the optical sensor corresponds to the position of the detection groove (7).

4. The online fiber optic tester apparatus of claim 2, wherein: One end of the connecting rod (11) is fixedly connected to a limiting end block. A spring (9) is installed in the through hole inside the housing (4). One end of the spring (9) abuts against the end face of the limiting end block. One end of the through hole inside the housing (4) is threadedly installed with an end head (10).

5. The online fiber optic apparatus of claim 2, wherein: A locking block (13) is integrally connected to the edge of the limiting cover (6). A locking hole is provided on the outer surface of the locking block (13). A locking member (12) is movably installed on the side surface of the housing (4). One end of the locking member (12) is adapted to the locking hole of the locking block (13).

6. The online fiber optic apparatus of claim 1, wherein: The connector (2) is externally provided with a host (1), and the host (1) is electrically connected to the connector (2).