A break point detection device for a fiber optic communication line

CN224774918UActive Publication Date: 2026-09-18TIANJIN ZHONGTONG TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202522210990.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-10-20
Publication Date
2026-09-18
Estimated Expiration
2035-10-20

AI Technical Summary

Technical Problem

[0004]本实用新型的目的在于提供一种光纤通信线路的断点检测装置,以解决上述背景技术中提出的对于现在的光纤通信在进行检测操作时,由于光纤容易形成折断的情况,传统的在进行检测断点点位均是需要逐一的排查才可以进行定位,导致了排查检测的效率低下影响到维修的整体效率,且多设备的携带操作处理也是带来一定的麻烦

Benefits of technology

该一种光纤通信线路的断点检测装置,在进行日常使用的过程中,扫描夹体内设置的传感器结构,能够精确监测光纤通信线路的信号传输情况。当检测到断点时,传感器迅速将信号反馈给发射主机,发射主机立即触发警报扬声器和警报灯,及时提醒用户。这种精准的检测和快速的反馈机制,确保了断点检测的准确性和可靠性,避免了漏检和误检的情况发生。触控面板与发射主机电性连接,用户通过简单的触控操作,即可输入检测指令、设置检测参数,无需复杂的操作流程。发射主机根据指令自动启动检测程序,简化了检测过程,提高了工作效率。同时,触控面板的显示界面清晰直观,用户可实时查看检测状态和结果。连接侧槽内设置的多种规格接口的连接头,为用户提供了丰富的连接选项。用户可根据实际需要,将装置与其他设备或系统进行连接,实现数据的传输或共享。例如,可将检测数据传输至计算机进行进一步分析和处理,或将装置接入监控系统,实现对光纤线路的实时监测。这种扩展性强的设计,满足了不同用户在不同场景下的多样化需求。装置整体设计紧凑,主箱体配备顶把手杆和底垫块,方便用户携带和放置。收纳抽屉可收纳多根连接杆体,用户可根据实际检测需求,灵活组装不同长度的检测杆,适应不同场景下的检测工作,无论是狭窄空间还是较长距离的光纤线路检测,都能轻松应对。

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Abstract

The utility model discloses a kind of breakpoint detection devices of optical fiber communication line, including main box, the side of the main box is horizontally provided with side storage groove, the inside of the side storage groove is horizontally clamped with turnover link, one end of the turnover link is fixedly connected with touch panel, the top surface of the main box is horizontally fixedly provided with top handle bar, detection data can be transmitted to computer to carry out further analysis and processing, or device is accessed into monitoring system, realize the real-time monitoring of optical fiber line.This design with strong expansibility meets the diversified needs of different users in different scenarios.The overall design of the device is compact, the main box is equipped with a top handle bar and a bottom pad, making it easy for users to carry and place. The storage drawer can store multiple connecting rods. Users can assemble detection rods of different lengths according to actual detection needs, adapting to detection work in different scenarios. Whether it is a narrow space or a long distance optical fiber line detection, it can easily handle.
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Description

Technical Field

[0001] This utility model relates to the field of optical fiber communication technology, specifically to a device for detecting the breakpoint of an optical fiber communication line. Background Technology

[0002] Optical fiber communication is a communication method that uses light waves as the information carrier and optical fibers as the transmission medium. It began developing in the mid-20th century and has gradually become one of the core technologies of modern communication.

[0003] When performing testing operations on current fiber optic communications, fiber optic cables are prone to breakage. Traditionally, the breakage points need to be checked one by one to locate them, resulting in low efficiency in troubleshooting and affecting the overall efficiency of maintenance. Furthermore, the handling of multiple devices also brings certain troubles. Utility Model Content

[0004] The purpose of this utility model is to provide a fiber optic communication line break point detection device to solve the problem mentioned in the background art. In current fiber optic communication, due to the easy breakage of optical fibers, traditional methods of detecting break points require checking each one individually to locate the break point, resulting in low detection efficiency and affecting the overall maintenance efficiency. Furthermore, the handling of multiple devices also brings certain troubles.

[0005] To achieve the above objectives, this utility model provides the following technical solution: a breakpoint detection device for an optical fiber communication line, comprising a main housing, a side storage groove horizontally formed on one side of the main housing, a flip-up connecting block horizontally engaged on the inner side of the side storage groove, a touch panel fixedly connected to one end of the flip-up connecting block, a top handle rod horizontally fixedly arranged on the top surface of the main housing, a side channel horizontally formed at one end of the main housing, a storage drawer horizontally inserted into the inner side of the side channel, a connecting rod body housed on the inner side of the storage drawer, a handle main rod abutting at the top end of the connecting rod body, and a top fixing block fixedly arranged at the top end of the handle main rod. The top surface of the top fixing block has a horizontally opening flip-top groove. A scanning clamp is symmetrically engaged on the inner side of the flip-top groove. Alarm speakers and alarm lights are symmetrically engaged on both sides of the top fixing block. A bottom pad is symmetrically engaged on the bottom surface of the main housing. A connecting side groove is opened at the end of the main housing away from the side groove. Connectors are evenly engaged on the inner side of the connecting side groove. A sealing plate is vertically engaged on the inner side of the connecting side groove. A mounting screw hole is opened at the top of the connecting rod. A mounting screw is fixed at the bottom of the connecting rod. A transmitter is fixed on the inner side of the main housing.

[0006] Preferably, the side storage slot is horizontally opened on the side of the main housing near one end, and the flip-up block is connected to the bottom center channel of the side storage slot through the side shaft. One end of the flip-up block is connected to the center of the bottom surface of the touch panel, and the touch panel and the transmitter host are electrically connected to each other.

[0007] Preferably, the top handle is horizontally fixed at the center of the top surface of the main body, the top surface of the storage drawer is open, there are multiple connecting rods, and the specifications and dimensions of the multiple connecting rods are all set to be consistent. The multiple connecting rods are all stored in the inner side of the storage drawer.

[0008] Preferably, the handle main rod and the connecting rod are fixedly connected to each other through mounting screw holes and mounting screws, and the flip-top groove is horizontally and through the center line of the top surface of the top fixing block, with both ends of the flip-top groove being open.

[0009] Preferably, the scanning clamp is arranged in a clamp-shaped structure, and the scanning clamps are symmetrically connected and arranged on the inner side of the flip-top groove near the two opening ends. The inner side of the scanning clamp is provided with a sensor structure, and the alarm speaker and alarm light are connected to the transmitting host wirelessly.

[0010] Preferably, the bottom pads are symmetrically fixed on the bottom surface of the main housing near the four corners. The connectors are all equipped with interfaces of various specifications, and multiple connectors are connected to the transmitter host. The sealing plate is vertically snapped into the inner opening end of the connecting side groove. Multiple connecting rods are fixedly connected to each other through mounting screw holes and mounting screws.

[0011] Compared with the prior art, the beneficial effects of this utility model are: This fiber optic communication line breakpoint detection device, during daily use, utilizes a sensor structure within its scanning clamp to accurately monitor the signal transmission status of the fiber optic communication line. When a breakpoint is detected, the sensor quickly feeds back the signal to the transmitting host, which immediately triggers an alarm speaker and alarm light to promptly alert the user. This precise detection and rapid feedback mechanism ensures the accuracy and reliability of breakpoint detection, preventing missed or false detections. The touch panel is electrically connected to the transmitting host, allowing users to input detection commands and set detection parameters through simple touch operations, eliminating the need for complex procedures. The transmitting host automatically starts the detection program based on the commands, simplifying the detection process and improving work efficiency. Simultaneously, the touch panel's display interface is clear and intuitive, allowing users to view the detection status and results in real time. Multiple connector types within the connection side slot provide users with a wide range of connection options. Users can connect the device to other devices or systems as needed to achieve data transmission or sharing. For example, detection data can be transmitted to a computer for further analysis and processing, or the device can be connected to a monitoring system for real-time monitoring of the fiber optic line. This highly expandable design meets the diverse needs of different users in different scenarios. The overall design of the device is compact, with the main body equipped with a top handle and a bottom pad for easy carrying and placement. The storage drawer can hold multiple connecting rods, allowing users to flexibly assemble testing rods of different lengths according to actual testing needs, adapting to testing work in different scenarios, whether it is testing in confined spaces or testing long-distance fiber optic lines, it can easily handle the task. Attached Figure Description

[0012] Figure 1 This is a three-dimensional front view of the present invention; Figure 2 This is a three-dimensional bottom view of the present invention; Figure 3 This is a three-dimensional top view of the present invention; Figure 4 This is a schematic diagram of the overall three-dimensional back connection structure of this utility model.

[0013] In the diagram: 1. Main housing; 2. Side storage slot; 3. Flip-up connecting block; 4. Touch panel; 5. Top handle rod; 6. Side channel; 7. Storage drawer; 8. Connecting rod; 9. Main handle rod; 10. Top fixing block; 11. Flip-up top slot; 12. Scanning clamp; 13. Alarm speaker; 14. Alarm light; 15. Bottom pad; 16. Connecting side channel; 17. Connector; 18. Sealing plate; 19. Mounting screw hole; 20. Mounting screw; 21. Transmitter. Detailed Implementation

[0014] 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. Example

[0015] like Figures 1-4 As shown, this utility model provides a technical solution: a fiber optic communication line breakpoint detection device, including a main housing 1. A side storage groove 2 is horizontally opened on one side of the main housing 1. A flip-up connecting block 3 is horizontally engaged on the inner side of the side storage groove 2. A touch panel 4 is fixedly connected to one end of the flip-up connecting block 3. The side storage groove 2 is horizontally opened on the side of the main housing 1 near one end. The flip-up connecting block 3 is connected to the bottom center channel of the side storage groove 2 via a side shaft. One end of the flip-up connecting block 3 is connected to the center of the bottom surface of the touch panel 4, and the touch panel 4 and the transmitting host 21 are mutually... The main body 1 is electrically connected to the other side. A top handle rod 5 is fixedly installed horizontally on the top surface of the main body 1. A side channel 6 is horizontally opened at one end of the main body 1. A storage drawer 7 is horizontally inserted into the inner side of the side channel 6. A connecting rod 8 is stored in the inner side of the storage drawer 7. The top handle rod 5 is fixedly installed horizontally at the center of the top surface of the main body 1. The top surface of the storage drawer 7 is open. There are multiple connecting rods 8, and the specifications and dimensions of the multiple connecting rods 8 are all the same. The multiple connecting rods 8 are stored in the inner side of the storage drawer 7. The top of the connecting rod 8 is connected to the handle rod 9.

[0016] The main housing 1 is equipped with a top handle 5 and a bottom pad 15 for easy carrying and placement. The storage drawer 7 can hold multiple connecting rods 8, allowing users to flexibly assemble testing rods of different lengths according to actual testing needs, adapting to testing work in different scenarios. Example

[0017] like Figures 1-4As shown, this utility model provides a technical solution: a fiber optic communication line breakpoint detection device, including a main housing 1. A side storage groove 2 is horizontally opened on one side of the main housing 1. A flip-up connecting block 3 is horizontally engaged on the inner side of the side storage groove 2. A touch panel 4 is fixedly connected to one end of the flip-up connecting block 3. The side storage groove 2 is horizontally opened on the side of the main housing 1 near one end. The flip-up connecting block 3 is connected to the bottom center channel of the side storage groove 2 via a side shaft. One end of the flip-up connecting block 3 is connected to the bottom surface of the touch panel 4. At the center, the touch panel 4 and the transmitter host 21 are electrically connected. A top handle 5 is horizontally fixed on the top surface of the main housing 1. A side channel 6 is horizontally opened at one end of the main housing 1. A storage drawer 7 is horizontally inserted into the inner side of the side channel 6. A connecting rod 8 is stored in the inner side of the storage drawer 7. The top handle 5 is horizontally fixed at the center of the top surface of the main housing 1. The top surface of the storage drawer 7 is open. There are multiple connecting rods 8, and the specifications and dimensions of the multiple connecting rods 8 are all consistent. Multiple connecting rods 8 are housed inside the storage drawer 7. The top of each connecting rod 8 is connected to a handle rod 9. A top fixing block 10 is fixedly installed at the top of the handle rod 9. A flip-top groove 11 is horizontally formed on the top surface of the top fixing block 10. The handle rod 9 and the connecting rods 8 are fixedly connected to each other via mounting screw holes 19 and mounting screws 20. The flip-top groove 11 is horizontally formed through the top surface of the top fixing block 10, with open ends. The inner sides of the flip-top groove 11 are symmetrically fitted... The scanning clamp 12 is connected to the top fixing block 10. Alarm speakers 13 are symmetrically fixed on both sides of the top fixing block 10. Alarm lights 14 are symmetrically fixed on both sides of the top fixing block 10. The scanning clamp 12 is arranged in a clamp-shaped structure and is symmetrically connected to the inside of the flip top groove 11 near the two opening ends. A sensor structure is arranged on the inner side of the scanning clamp 12. The alarm speakers 13 and alarm lights 14 are both connected to the transmitter host 21 wirelessly. The bottom of the main housing 1 is symmetrically fixed with bottom pads 15.

[0018] The various interface connectors 17 provided within the side slot 16 offer users a wide range of connection options. Users can connect the device to other equipment or systems according to their actual needs to achieve data transmission or sharing. Example

[0019] like Figures 1-4As shown, this utility model provides a technical solution: a fiber optic communication line breakpoint detection device, including a main housing 1. A side storage groove 2 is horizontally opened on one side of the main housing 1. A flip-up connecting block 3 is horizontally engaged on the inner side of the side storage groove 2. A touch panel 4 is fixedly connected to one end of the flip-up connecting block 3. The side storage groove 2 is horizontally opened on the side of the main housing 1 near one end. The flip-up connecting block 3 is connected to the bottom center channel of the side storage groove 2 via a side shaft. One end of the flip-up connecting block 3 is connected to the bottom center of the touch panel 4, and the touch panel 4 and the transmitting host 21 are electrically connected to each other. A top handle 5 is horizontally fixed on the top surface of the main housing 1, and a side groove is horizontally opened at one end of the main housing 1. The inner side of the side channel 6 is horizontally connected to a storage drawer 7. A connecting rod 8 is housed on the inner side of the storage drawer 7. A top handle rod 5 is horizontally fixed at the center of the top surface of the main body 1. The top surface of the storage drawer 7 is open. Multiple connecting rods 8, all with identical dimensions, are housed on the inner side of the storage drawer 7. A handle main rod 9 is connected to the top of each connecting rod 8. A top fixing block 10 is fixed to the top of the handle main rod 9. A flip-top groove 11 is horizontally formed on the top surface of the top fixing block 10. The handle main rod 9 and the connecting rods 8 are fixedly connected to each other via mounting screw holes 19 and mounting screws 20. The flip-top groove 11... A horizontal through-type opening is located at the center line of the top surface of the top fixing block 10, and the two ends of the flip-top groove 11 are open. A scanning clamp 12 is symmetrically engaged on the inner side of the flip-top groove 11. Alarm speakers 13 and alarm lights 14 are symmetrically fixed on both sides of the top fixing block 10. The scanning clamp 12 has a clamp-like structure and is symmetrically connected to the inner side of the flip-top groove 11 near the two open ends. A sensor structure is provided on the inner side of the scanning clamp 12. The alarm speakers 13 and alarm lights 14 are both wirelessly connected to the transmitter 21. A bottom pad 15 is symmetrically fixed on the bottom surface of the main housing 1. The main housing 1 is located away from the side channel 6. One end has a connecting side groove 16, and connectors 17 are evenly fixed on the inner side of the connecting side groove 16. A sealing plate 18 is vertically snapped onto the inner side of the connecting side groove 16. The top of the connecting rod 8 has a mounting screw hole 19, and the bottom of the connecting rod 8 is fixedly set with a mounting screw 20. The main body 1 is fixedly set on the inner side of the main housing 1. The bottom pad 15 is symmetrically fixed on the bottom surface of the main housing 1 near the four corners. The connectors 17 are all set with various specifications of interfaces, and multiple connectors 17 are connected to the main body 21. The sealing plate 18 is vertically snapped onto the inner opening end of the connecting side groove 16. Multiple connecting rods 8 are fixedly connected to each other through the mounting screw hole 19 and the mounting screw 20.

[0020] Electrically connected to the transmitter 21 via the touch panel 4, users can input detection commands and set detection parameters through simple touch operations, eliminating the need for complex procedures. The transmitter 21 automatically starts the detection program based on the commands, simplifying the detection process and improving work efficiency.

[0021] Working Principle: Users can easily lift and carry the entire testing device to the testing site using the top handle 5, which is horizontally fixed at the center of the top surface of the main housing 1. The bottom pads 15, symmetrically fixed on the bottom of the main housing 1, provide stable support for the device, ensuring it will not shake or slip during placement. In use, the user can flip the connecting block 3 out of the side storage slot 2, causing the touch panel 4 to unfold to a suitable position. The touch panel 4 and the transmitter 21 are electrically connected. The user can input testing commands and set testing parameters through the touch panel 4, and the transmitter 21 will start the testing program according to the commands. The user takes out the required number of connecting rods 8 from the storage drawer 7 and connects them together using the mounting screw holes 19 at the top and the mounting screws 20 at the bottom, assembling a testing rod of the required length. The scanning clamp 12 has a clamp-like structure with a sensor structure on its inner side. The user opens the scanning clamp 12, clamps the fiber optic communication line to be tested, and ensures full contact between the sensor and the line. An alarm speaker 13 and an alarm light 14 are symmetrically fixed on both sides of the top fixing block 10, and they are all wirelessly connected to the transmitter host 21. The transmitter host 21 sends detection signals to the fiber optic communication line according to the settings on the touch panel 4. Sensors inside the scanning clamp 12 monitor the signal transmission of the line in real time. When a breakpoint is detected, the sensor feeds back a signal to the transmitter host 21, which immediately controls the alarm speaker 13 to sound an alarm, while the alarm light 14 flashes to alert the user that a breakpoint has been detected. The main housing 1 has a connection side channel 16 at the end furthest from the side channel 6. Connectors 17 of various interface specifications are evenly fixed on the inner side of the connection side channel 16, and all connectors 17 are connected to the transmitter host 21. Users can connect the device to other devices or systems via the connectors 17 as needed to achieve data transmission or sharing. A sealing plate 18 is vertically snapped into the inner side of the connecting side groove 16. When the connector 17 is not in use, the sealing plate 18 can be snapped into the inner opening of the connecting side groove 16 to prevent dust and water.

[0022] 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 device for detecting the breakpoint of an optical fiber communication line, comprising a main housing (1), characterized in that: A side storage groove (2) is horizontally opened on one side of the main box (1). A flip-up connecting block (3) is horizontally engaged on the inner side of the side storage groove (2). A touch panel (4) is fixedly connected to one end of the flip-up connecting block (3). A top handle rod (5) is horizontally fixed on the top surface of the main box (1). A side channel (6) is horizontally opened at one end of the main box (1). A storage drawer (7) is horizontally inserted into the inner side of the side channel (6). A connecting rod (8) is stored on the inner side of the storage drawer (7). A handle rod (9) is connected to the top of the connecting rod (8). A top fixing block (10) is fixedly installed on the top of the handle rod (9). A flip-up top groove (11) is horizontally opened on the top surface of the top fixing block (10). The inner side of the flip-up top groove (11) is... The scanning clamp (12) is symmetrically attached to the side. Alarm speakers (13) are symmetrically fixed on both sides of the top fixing block (10). Alarm lights (14) are symmetrically fixed on both sides of the top fixing block (10). Bottom pads (15) are symmetrically fixed on the bottom surface of the main housing (1). A connecting side groove (16) is opened at the end of the main housing (1) away from the side channel (6). Connectors (17) are evenly fixed on the inner side of the connecting side groove (16). A sealing plate (18) is vertically attached to the inner side of the connecting side groove (16). A mounting screw hole (19) is opened at the top of the connecting rod (8). A mounting screw (20) is fixed at the bottom of the connecting rod (8). A transmitter host (21) is fixed on the inner side of the main housing (1).

2. A break point detection device for a fiber optic communication line as set forth in claim 1, characterized in that: The side storage slot (2) is horizontally opened on the side of the main body (1) near one end. The flip block (3) is connected to the bottom center channel of the side storage slot (2) through the side shaft. One end of the flip block (3) is connected to the bottom center of the touch panel (4), and the touch panel (4) and the transmitter (21) are electrically connected to each other.

3. The fiber optic communication line breakpoint detection device according to claim 1, characterized in that: The top handle (5) is horizontally fixed at the center of the top surface of the main box (1). The top surface of the storage drawer (7) is open. There are multiple connecting rods (8), and the specifications and dimensions of the multiple connecting rods (8) are all consistent. The multiple connecting rods (8) are all stored on the inner side of the storage drawer (7).

4. A break-point detection device for a fiber-optic communication line according to claim 1, characterized in that: The handle main rod (9) and the connecting rod body (8) are fixedly connected to each other through the mounting screw hole (19) and the mounting screw (20). The flip top groove (11) is horizontally opened through the center line of the top surface of the top fixing block (10), and the two ends of the flip top groove (11) are open.

5. A break-point detection device for a fiber-optic communication line according to claim 1, characterized in that: The scanning clamp (12) is arranged in a clamp-shaped structure, and the scanning clamp (12) is symmetrically connected and arranged on the inner side of the flip top groove (11) near the two opening ends. The inner side of the scanning clamp (12) is provided with a sensor structure. The alarm speaker (13) and the alarm light (14) are both connected to the transmitter host (21) wirelessly.

6. A break-point detection device for a fiber-optic communication line according to claim 1, characterized in that: The bottom pad (15) is symmetrically fixed on the bottom surface of the main box (1) near the four corners. The connectors (17) are all set with various specifications of interfaces, and multiple connectors (17) are connected to the transmitter (21). The sealing plate (18) is vertically snapped into the inner opening end of the connecting side groove (16). Multiple connecting rods (8) are fixedly connected to each other through mounting screw holes (19) and mounting screws (20).