Optical fiber identification data acquisition structure

By using the fiber optic identification data acquisition structure, the problems of low resource accuracy and high management cost in the transformation of traditional optical cable networks have been solved. This has enabled low-cost and high-efficiency visualization and digital transformation of optical cable networks, ensuring the continuity of communication and the transmission quality of optical fibers.

CN121784901APending Publication Date: 2026-04-03JIANGXI YANGUI TECH SERVICE CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-11-18
Publication Date
2026-04-03

AI Technical Summary

Technical Problem

Traditional optical fiber network upgrades rely on manual operations, resulting in low resource accuracy, high management costs, and difficulty in achieving low-cost, high-efficiency visualization and digital transformation.

Method used

The fiber optic identification data acquisition structure includes a data acquisition board, a card reader port, end identification cards, and a jumper identification connection structure, enabling the visualization and digital transformation of the optical cable network through non-fiber-pulling installation.

Benefits of technology

This enabled low-cost, high-efficiency, and lossless transformation of the optical fiber network, reducing transformation costs while ensuring communication continuity and optical fiber transmission quality.

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Abstract

The invention provides an optical fiber identification data acquisition structure, which comprises a data acquisition board, a plurality of card reader ports integrated on the data acquisition board, a plurality of end identification cards matched with the card reader ports, and a plurality of jumper fiber identification connection structures in one-to-one correspondence with the end identification cards, the end identification cards are respectively and correspondingly connected with the card reader ports in an inserted mode, the jumper fiber identification connecting structures are correspondingly connected to the end identification cards, and the jumper fiber identification connecting structures are respectively used for being connected with jumper fibers corresponding to the end identification cards. According to the optical fiber identification data acquisition structure provided by the invention, low-cost, high-efficiency and lossless transformation of an optical cable network can be realized.
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Description

Technical Field

[0001] This invention relates to the field of wired transmission communication technology, and in particular to a fiber optic identification data acquisition structure. Background Technology

[0002] Wired communication is a communication method that uses tangible media such as metal wires and optical fibers to transmit information, and the optical fiber network in wired communication is the foundation of all communication services. With the popularization of informatization and digitalization, and the increasing demands on communication, the requirements for wired communication are also becoming higher and higher, and the demand for optical fiber networks is also increasing. However, traditional optical fiber networks are invisible, have low reuse rates, and all optical resource comparison, definition, identification, analysis, judgment, recording, and transmission rely entirely on manual labor. Data collection is difficult, resource accuracy is low, resulting in poor customer experience, high management costs, and low investment returns.

[0003] Currently, the digital and visual transformation of optical fiber networks is in full swing, with the transformation of jumper connections between terminals, fiber core directional connections, and optical cable connections between points and equipment being of paramount importance. How to achieve low-cost, high-efficiency, and non-destructive visualization and digital transformation of optical fiber networks is a problem that those skilled in the art need to solve. Summary of the Invention

[0004] The purpose of this invention is to provide a fiber optic identification data acquisition structure that enables low-cost, high-efficiency, and non-destructive transformation of optical fiber networks.

[0005] This invention provides an optical fiber identification data acquisition structure, including a data acquisition board, multiple card reader ports integrated on the data acquisition board, multiple end identification cards adapted to the card reader ports, and multiple jumper identification connection structures corresponding one-to-one with the end identification cards. Each end identification card is plugged into each of the card reader ports, and each jumper identification connection structure is connected to each of the end identification cards. Each jumper identification connection structure is used to connect to the jumper corresponding to each end identification card.

[0006] According to the fiber optic identification data acquisition structure provided by the present invention, one end of the end identification card is a plug-in end adapted to the card reader port, and the other end of the end identification card is provided with a connecting ring.

[0007] According to the fiber optic identification data acquisition structure provided by the present invention, the jumper identification connection structure includes a connection body, a first snap connector disposed at a first end of the connection body, and a wraparound snap band disposed at a second end of the connection body. The wraparound snap band includes a wraparound band body, a second snap connector, and a snap-fit ​​ring that cooperates with the second snap connector. The second snap connector is disposed at the second end of the connection body. One end of the wraparound band body is connected to the second snap connector, and the other end of the wraparound band body is connected to the snap-fit ​​ring. The first snap connector is used to snap onto the connection ring of the end identification card, and the second snap connector can snap onto the snap-fit ​​ring to form a loop. The loop is wrapped around the corresponding jumper.

[0008] According to the fiber optic identification data acquisition structure provided by the present invention, the first connector includes a first connector head and a first latch disposed on the first connector head, and the second connector includes a second connector head and a second latch disposed on the second connector head.

[0009] According to the fiber optic identification data acquisition structure provided by the present invention, the jumper identification connection structure includes a connection body, a first snap connector disposed at a first end of the connection body, and a wraparound snap strap disposed at a second end of the connection body. The wraparound snap strap includes a wraparound strap body, a second snap connector, and a snap-fit ​​ring that cooperates with the second snap connector. The snap-fit ​​ring is disposed at the second end of the connection body. One end of the wraparound strap body is connected to the snap-fit ​​ring, and the other end of the wraparound strap body is connected to the second snap connector. The first snap connector is used to snap onto the connection ring of the end identification card, and the second snap connector can snap onto the snap-fit ​​ring to form a loop. The loop is wrapped around the corresponding jumper.

[0010] According to the fiber optic identification data acquisition structure provided by the present invention, the first connector includes a first connector head and a first latch disposed on the first connector head, and the second connector includes a second connector head and a second latch disposed on the second connector head.

[0011] According to the fiber optic identification data acquisition structure provided by the present invention, the jumper identification connection structure includes a connection body, a first snap connector disposed at a first end of the connection body, and a wraparound snap strap disposed at a second end of the connection body. The wraparound snap strap includes a wraparound strap body and a second snap connector connected to one end of the wraparound strap body. The wraparound strap body includes a plurality of snap-fit ​​rings connected in sequence. The first snap connector is used to snap onto the connection ring of the end identification card, and the second snap connector is used to snap onto the snap-fit ​​ring to form a loop. The loop is wrapped around the corresponding jumper fiber.

[0012] According to the fiber optic identification data acquisition structure provided by the present invention, the first connector includes a first connector head and a first latch disposed on the first connector head, and the second connector includes a second connector head and a second latch disposed on the second connector head.

[0013] According to the fiber optic identification data acquisition structure provided by the present invention, the jumper identification connection structure is a PE material jumper identification connection structure.

[0014] According to the fiber optic identification data acquisition structure provided by the present invention, the data acquisition board is provided with multiple mounting holes and multiple auxiliary positioning holes.

[0015] The fiber optic identification data acquisition structure provided by this invention has identification cards that are plugged into the corresponding card reader ports of the data acquisition board, and patch cord identification connection structures that are connected to the corresponding identification cards. Furthermore, each patch cord identification connection structure is connected to the patch cord corresponding to each identification card. During installation, the data acquisition board of the fiber optic identification data acquisition structure can be mounted on the fusion splice tray cover. Since each patch cord is plugged into its corresponding patch cord mounting port on the fusion splice tray, installation can be performed without removing the patch cords. In use, the data acquisition device can collect data from the card readers on the data acquisition board, thereby obtaining data from each card reader port and the corresponding identification cards.

[0016] Therefore, the fiber identification data acquisition structure of this invention can be used to visualize and digitally transform the optical cable network without disconnecting the jumpers, without interrupting existing services, and can identify each interface of the jumpers. It can be adapted to all jumpers on the market, without the need for special customization based on the jumper heads, thus reducing the cost of optical cable network transformation. Moreover, the transformation process does not damage the jumpers and is simple and efficient. Attached Figure Description

[0017] To more clearly illustrate the specific embodiments of the present invention or the technical solutions in the prior art, the drawings used in the description of the specific embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are some embodiments of the present invention. For those skilled in the art, other drawings can be obtained from these drawings without creative effort.

[0018] Figure 1 This is a schematic diagram of the fiber optic identification data acquisition structure according to an embodiment of the present invention; Figure 2 This is a schematic diagram of the data acquisition board in an embodiment of the present invention; Figure 3 This is a schematic diagram of the assembly structure of the fiber optic identification data acquisition structure and the fiber fusion splice tray cover plate according to an embodiment of the present invention; Figure 4This is a schematic diagram of the structure of the terminal identification card in an embodiment of the present invention; Figure 5 This is a schematic diagram of the first type of jumper identification connection structure in an embodiment of the present invention; Figure 6 This is a schematic diagram of the second type of jumper identification connection structure in an embodiment of the present invention; Figure 7 This is a schematic diagram of the third type of jumper identification connection structure in an embodiment of the present invention.

[0019] Explanation of reference numerals in the attached figures: 100. Fiber optic jumper identification connection structure; 1. Connecting main body; 2. First snap-fit ​​connector; 21. First connector head; 22. First snap-fit ​​buckle; 3. Wrap-around buckle belt; 31. Wrap-around belt body; 32. Second buckle connector; 321. Second connector; 322. Second buckle; 33. Snap-on ring; 200. Data Acquisition Board; 201. Card reader port; 202. Data interface; 203. Mounting hole; 204. Auxiliary positioning hole; 300, Terminal Identification Card; 301. Terminal identification card circuit; 302. Plug-in terminal; 303. Connecting ring; 400, fiber skipping; 500. Fiber fusion tray cover. Detailed Implementation

[0020] The technical solution of the present invention will be clearly and completely described below with reference to the embodiments. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0021] In the description of this invention, it should be understood that the terms "center," "longitudinal," "lateral," "length," "width," "thickness," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," "outer," "clockwise," and "counterclockwise," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are used only for the convenience of describing this invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limiting this invention.

[0022] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of indicated technical features. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of the stated features. In the description of this invention, "a plurality of" means two or more, unless otherwise explicitly specified. Furthermore, the terms "installed," "connected," and "linked" should be interpreted broadly; for example, they may refer to a fixed connection, a detachable connection, or an integral connection; they may refer to a mechanical connection or an electrical connection; they may refer to a direct connection or an indirect connection through an intermediate medium; and they may refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this invention based on the specific circumstances.

[0023] like Figure 1 As shown, the fiber optic identification data acquisition structure of this embodiment includes a data acquisition board 200, multiple card reader ports 201 integrated on the data acquisition board 200, multiple end identification cards 300 adapted to each card reader port 201, and multiple jumper identification connection structures 100 corresponding to each end identification card 300. Each end identification card 300 is inserted into each card reader port 201, and each jumper identification connection structure 100 is connected to each end identification card 300. Each jumper identification connection structure 100 is used to connect to the jumper 400 corresponding to each end identification card 300.

[0024] During installation, the data acquisition board 200 of the fiber optic identification data acquisition structure can be installed on the inner outer end of the fusion splice tray cover. Since each patch cord 400 is plugged into the corresponding patch cord mounting port on the fusion splice tray, installation can be performed without removing the patch cords. In use, the data acquisition device can collect data from the card reader on the data acquisition board 200, thereby obtaining data from each card reader port 201 and the corresponding identification card 300.

[0025] Therefore, the fiber identification data acquisition structure of this invention can be used to visualize and digitally transform the optical cable network without disconnecting the jumpers, without interrupting existing services, and can identify each interface of the jumpers. It can be adapted to all jumpers on the market, without the need for special customization based on the jumper heads, thus reducing the cost of optical cable network transformation. Moreover, the transformation process does not damage the jumpers and is simple and efficient.

[0026] Specifically, such as Figure 2 This is a schematic diagram of the data acquisition board 200. Multiple card reader ports 201 on the data acquisition board 200 are sequentially arranged along its length. The data acquisition board 200 integrates a card reader circuit, which, since it uses existing technology, will not be described in detail here.

[0027] Two data interfaces 202 are provided on one end of the data acquisition board 200 for connecting the data acquisition device and for connecting multiple data acquisition boards 200 with data cables.

[0028] The data acquisition board 200 is equipped with multiple mounting holes 203 and multiple auxiliary positioning holes 204. The mounting holes 203 facilitate the installation of the data acquisition board 200 onto the fiber optic cable network cover plate 500 to be modified. The auxiliary positioning holes 204 facilitate the positioning of the data acquisition board 200 relative to the fiber optic cable network cover plate 500. Figure 3 The diagram shown is a schematic of the fiber optic identification data acquisition structure and the fusion splice tray cover 500 assembled in this embodiment. Since the data acquisition board is installed at the inner outer end of the fusion splice tray cover 500, therefore... Figure 3 Although the data acquisition board is not visible, it does not affect the insertion and connection of the terminal identification card 300. The connectors of each jumper 400 are used to connect to the jumper mounting ports on the fiber optic fusion tray.

[0029] like Figure 4 As shown, the terminal identification card 300 integrates a terminal identification card circuit 301, which includes a circuit chip U1, a capacitor C1, and connecting lines. One end of the terminal identification card 300 is a plug-in terminal 302 adapted to the card reader port 201, and the other end of the terminal identification card 300 is provided with a connecting ring 303.

[0030] Specifically, the fiber optic identification data acquisition structure and the jumper identification connection structure 100 of this embodiment of the invention have the following three structural forms, which will be described in detail below.

[0031] like Figure 5 As shown, the first type of jumper identification connection structure of the present invention includes a connection body 1, a first snap connector 2 disposed at the first end of the connection body 1, and a wraparound snap fastener 3 disposed at the second end of the connection body 1. The wraparound snap fastener 3 includes a wraparound strap 31, a second snap connector 32, and a snap-fit ​​ring 33 that cooperates with the second snap connector 32. The second snap connector 32 is disposed at the second end of the connection body 1. One end of the wraparound strap 31 is connected to the second snap connector 32, and the other end of the wraparound strap 31 is connected to the snap-fit ​​ring 33. The second snap connector 32 can snap into the snap-fit ​​ring 33.

[0032] In use, the first connector 2 is snapped onto the connecting ring 303 of the end identification card 300, and then the second connector 32 is snapped onto the snapping ring 33 to form a loop, and the loop is wrapped around the jumper 6, thereby achieving a reliable connection between the corresponding jumper 6 and the end identification card 4.

[0033] The first connector 2 includes a first connector 21 and a first buckle 22 disposed on the first connector 21. The first connector 21 is fixed on the connecting body 1. Since the first buckle 22 has a gap in the middle, the size of the gap can be adjusted by squeezing. The outer side of the first buckle 22 is set as a cone and has a locking protrusion. Therefore, the first buckle 22 can be smoothly locked into the ring of the end mark card 4 and limited by the locking protrusions on both sides.

[0034] The second snap-fit ​​connector 32 includes a second connector 321 and a second snap-fit ​​322 disposed on the second connector 321. The second connector 321 is fixed on the connecting body 1. Since the second snap-fit ​​322 has a gap in the middle, the size of the gap can be adjusted by squeezing. The outer side of the second snap-fit ​​322 is set as a cone and has a snap-fit ​​protrusion. Therefore, the second snap-fit ​​322 can be smoothly snapped into the snap-fit ​​ring 33 and limited by the snap-fit ​​protrusions on both sides.

[0035] like Figure 6 As shown, the second type of jumper identification connection structure of the present invention includes a connection body 1, a first snap connector 2 disposed at the first end of the connection body 1, and a wraparound snap fastener 3 disposed at the second end of the connection body 1. The wraparound snap fastener 3 includes a wraparound strap 31, a second snap connector 32, and a snap-fit ​​ring 33 that cooperates with the second snap connector 32. The snap-fit ​​ring 33 is disposed at the second end of the connection body 1. One end of the wraparound strap 31 is connected to the snap-fit ​​ring 33, and the other end of the wraparound strap 31 is connected to the second snap connector 32. The second snap connector 32 can snap into the snap-fit ​​ring 33.

[0036] In use, the first connector 2 is snapped onto the connecting ring 303 of the end identification card 300, and then the second connector 32 is snapped onto the snapping ring 33 to form a loop, and the loop is wrapped around the jumper 6, thereby achieving a reliable connection between the corresponding jumper 6 and the end identification card 4.

[0037] The first connector 2 includes a first connector 21 and a first buckle 22 disposed on the first connector 21. The first connector 21 is fixed on the connecting body 1. Since the first buckle 22 has a gap in the middle, the size of the gap can be adjusted by squeezing. The outer side of the first buckle 22 is set as a cone and has a locking protrusion. Therefore, the first buckle 22 can be smoothly locked into the ring of the end mark card 4 and limited by the locking protrusions on both sides.

[0038] The second snap-fit ​​connector 32 includes a second connector 321 and a second snap-fit ​​322 disposed on the second connector 321. The second connector 321 is fixed on the connecting body 1. Since the second snap-fit ​​322 has a gap in the middle, the size of the gap can be adjusted by squeezing. The outer side of the second snap-fit ​​322 is set as a cone and has a snap-fit ​​protrusion. Therefore, the second snap-fit ​​322 can be smoothly snapped into the snap-fit ​​ring 33 and limited by the snap-fit ​​protrusions on both sides.

[0039] like Figure 7 As shown, the third type of jumper identification connection structure of the present invention includes a connection body 1, a first snap connector 2 disposed at the first end of the connection body 1, and a wraparound snap fastener 3 disposed at the second end of the connection body 1. The wraparound snap fastener 3 includes a wraparound belt body 31 and a second snap connector 32 connected to one end of the wraparound belt body 31. The wraparound belt body 31 includes a plurality of snap-fit ​​rings connected in sequence. The second snap connector 32 is disposed at the second end of the connection body 1 and can snap with the snap-fit ​​rings on the wraparound belt body 31.

[0040] In use, the first connector 2 is snapped onto the connecting ring 303 of the end identification card 300, and then the second connector 32 is snapped onto the snapping ring on the wrapping belt 31 to form a loop, and the loop is wrapped around the jumper 6, thereby achieving a reliable connection between the corresponding jumper 6 and the end identification card 4.

[0041] Since the wrapping belt 31 has multiple snap-fit ​​rings, the second snap-fit ​​connector 32 can be selected to snap-fit ​​with snap-fit ​​rings at different positions according to actual usage requirements, thereby adjusting the size of the ring and making it more adaptable.

[0042] The first connector 2 includes a first connector 21 and a first buckle 22 disposed on the first connector 21. The first connector 21 is fixed on the connecting body 1. Since the first buckle 22 has a gap in the middle, the size of the gap can be adjusted by squeezing. The outer side of the first buckle 22 is set as a cone and has a locking protrusion. Therefore, the first buckle 22 can be smoothly locked into the ring of the end mark card and limited by the locking protrusions on both sides.

[0043] The second snap-fit ​​connector 32 includes a second connector 321 and a second snap-fit ​​322 disposed on the second connector 321. The second connector 321 is fixed on the connecting body 1. Since the second snap-fit ​​322 has a gap in the middle, the size of the gap can be adjusted by squeezing. The outer side of the second snap-fit ​​322 is set as a cone and has a snap-fit ​​protrusion. Therefore, the second snap-fit ​​322 can be smoothly snapped into the corresponding snap-fit ​​ring and limited by the snap-fit ​​protrusions on both sides.

[0044] Traditional fiber optic cable ties are susceptible to temperature changes and physical vibrations in various application scenarios, leading to variations in their tightening force. This can result in unstable fiber optic patch cord fixation, and overly tight binding can negatively impact fiber transmission quality, causing communication degradation or interruption. The patch cord identification connection structure described in this embodiment effectively solves this problem. The wraparound buckle 3 forms a loop during use; by fitting this loop onto the patch cord 6, a reliable connection between the patch cord 6 and the corresponding identification card 4 is achieved without damaging the patch cord 6, thus ensuring the quality of fiber optic transmission.

[0045] Specifically, the three types of jumper identification connection structures described in this embodiment of the invention can be injection molded from PE material, which has good ductility and a long service life. The length of the jumper identification connection structure can be set to about 15mm, which can be used for all jumpers on the market. No fiber removal modification is required during use, and existing services are not interrupted. The fiber optic network can be modified without interruption. It is convenient to use, does not damage the jumper, and can be adapted to all jumpers on the market. It does not require special customization based on the jumper head, thereby effectively reducing the cost of fiber optic network modification.

[0046] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention, and not to limit them; although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some or all of the technical features; and these modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of the present invention.

Claims

1. A fiber optic identification data acquisition structure, characterized in that, include: The system includes a data acquisition board, multiple card reader ports integrated on the data acquisition board, multiple terminal identification cards adapted to the card reader ports, and multiple jumper identification connection structures corresponding to each terminal identification card. Each terminal identification card is plugged into each of the card reader ports, and each jumper identification connection structure is connected to each of the terminal identification cards. Each jumper identification connection structure is used to connect to the jumper corresponding to each of the terminal identification cards.

2. The fiber optic identification data acquisition structure according to claim 1, characterized in that, One end of the terminal identification card is a plug-in end adapted to the card reader port, and the other end of the terminal identification card is provided with a connecting ring.

3. The fiber optic identification data acquisition structure according to claim 2, characterized in that, The jumper identification connection structure includes a connecting body, a first snap connector disposed at a first end of the connecting body, and a wraparound snap strap disposed at a second end of the connecting body. The wraparound snap strap includes a wraparound strap body, a second snap connector, and a snap-fit ​​ring that cooperates with the second snap connector. The second snap connector is disposed at the second end of the connecting body. One end of the wraparound strap body is connected to the second snap connector, and the other end of the wraparound strap body is connected to the snap-fit ​​ring. The first snap connector is used to snap onto the connecting ring of the end identification card, and the second snap connector is used to snap onto the snap-fit ​​ring to form a loop. The loop is wrapped around the corresponding jumper.

4. The fiber optic identification data acquisition structure according to claim 3, characterized in that, The first snap-fit ​​connector includes a first connector head and a first snap fastener disposed on the first connector head, and the second snap-fit ​​connector includes a second connector head and a second snap fastener disposed on the second connector head.

5. The fiber optic identification data acquisition structure according to claim 2, characterized in that, The jumper identification connection structure includes a connecting body, a first snap connector disposed at a first end of the connecting body, and a wraparound snap strap disposed at a second end of the connecting body. The wraparound snap strap includes a wraparound strap body, a second snap connector, and a snap-fit ​​ring that cooperates with the second snap connector. The snap-fit ​​ring is disposed at the second end of the connecting body. One end of the wraparound strap body is connected to the snap-fit ​​ring, and the other end of the wraparound strap body is connected to the second snap connector. The first snap connector is used to snap onto the connecting ring of the end identification card, and the second snap connector is used to snap onto the snap-fit ​​ring to form a loop. The loop is wrapped around the corresponding jumper.

6. The fiber optic identification data acquisition structure according to claim 5, characterized in that, The first snap-fit ​​connector includes a first connector head and a first snap fastener disposed on the first connector head, and the second snap-fit ​​connector includes a second connector head and a second snap fastener disposed on the second connector head.

7. The fiber optic identification data acquisition structure according to claim 2, characterized in that, The jumper identification connection structure includes a connecting body, a first snap connector disposed at a first end of the connecting body, and a wraparound snap fastener disposed at a second end of the connecting body. The wraparound snap fastener includes a wraparound belt body and a second snap connector connected to one end of the wraparound belt body. The wraparound belt body includes a plurality of snap-fit ​​rings connected in sequence. The first snap connector is used to snap onto the connecting ring of the end identification card, and the second snap connector is used to snap onto the snap-fit ​​ring to form a loop. The loop is wrapped around the corresponding jumper.

8. The fiber optic identification data acquisition structure according to claim 7, characterized in that, The first snap-fit ​​connector includes a first connector head and a first snap fastener disposed on the first connector head, and the second snap-fit ​​connector includes a second connector head and a second snap fastener disposed on the second connector head.

9. The fiber optic identification data acquisition structure according to claim 1, characterized in that, The jumper cable identification connection structure is made of PE material.

10. The fiber optic identification data acquisition structure according to claim 1, characterized in that, The data acquisition board is equipped with multiple mounting holes and multiple auxiliary positioning holes.