Flexible optical fiber ribbon and bonding effect testing system and method thereof

The flexible optical fiber ribbon with a transparent layer and opaque bonding parts, using signal light for detection, addresses bonding performance issues, improving detection speed and accuracy without imaging, and reducing production line costs.

GB2641457APending Publication Date: 2025-12-03YANGTZE OPTICAL FIBRE & CABLE CO LTD
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Patent Information

Application Number
GB2025011047
Authority / Receiving Office
GB · GB
Patent Type
Applications
Current Assignee / Owner
Priority Date
2023-12-20
Filing Date
2024-08-16
Publication Date
2025-12-03

AI Technical Summary

Technical Problem

Existing methods for detecting bonding performance in flexible optical fiber ribbons are inadequate due to misaligned adhesive dots, missing adhesive, and adhesive dispensing defects, which cannot be accurately identified at high production speeds using visual inspection or imaging.

Method used

A flexible optical fiber ribbon structure with a transparent layer and opaque bonding parts that utilize signal light for detection, employing on-off operation and intensity to assess bonding performance without imaging, combined with a light detection system.

Benefits of technology

Enhances detection speed and accuracy of bonding performance, reducing production line costs and maintaining manufacturing speed, while overcoming ineffective detection methods.

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Abstract

A flexible optical fiber ribbon and a bonding effect testing system and method thereof. The flexible optical fiber ribbon comprises multiple optical fibers arranged side by side, and intermittent bonding portions are arranged between adjacent optical fibers; the transmittance of the intermittent bonding portions to the testing optical wavelength band is 50% or below; an optical fiber coating layer is wrapped by a colored layer, and the colored layer is wrapped by a light transmissive layer; the transmittance of the colored layer to the testing optical wavelength band is 30% or below, and the transmittance of the light transmissive layer to the testing optical wavelength band is 85% or above; and the bonding portions having standard conforming bonding effect cover the light transmissive layer in the direction of the testing light. In the present invention, a photosensitive component is used in conjunction to implement continuity testing by utilizing an optical signal, and thus the sensitivity, accuracy, and speed far exceed imaging testing. In the present invention, an optical signal continuity test is used to avoid defects such as image smearing and image retention caused by traditional imaging testing, significantly increasing testing efficiency, removing the manufacturing speed bottleneck caused by quality monitoring in a production line, and enhancing the manufacturing efficiency.
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Description

[0001] The present disclosure belongs to the field of optical communication, and more specifically, relates to a flexible optical fiber ribbon and a system and a method for detecting a bonding performance thereof. Description of Related Art

[0002] There are intermittent bonding parts between adjacent optical fibers in a flexible optical fiber ribbon. The connection is formed by placing a bonding material or an adhesive between the optical fibers in a regular pattern through equipment. Because of equipment stability, adhesive quality and other issues, adhesive dispensing might occur improperly, including misaligned adhesive dots that span across other optical fibers, which would cause unintended bonding between optical fibers that should not be adhered together. Furthermore, defects such as missing adhesive dots and abnormal adhesive dispensing lengths might occasionally occur. The bonding performance of flexible optical fiber ribbons is critical to determining the structural stability of both the flexible optical fiber ribbons and an overall ribbon cable structure.

[0003] Because the flexible optical fiber ribbons are manufactured in a high production speed which may be as high as 2m / s to lOm / s, and the adhesive dispensing pitch is short, which is approximately 40mm to 100mm, visual inspection is unable to keep pace with the adhesive dispensing speed, even when high-speed cameras for image capture is employed. Furthermore, owing to the limited shutter speed, the acquired images exhibit trailing effects and artifacts, rendering it impossible to accurately identify positions with poor bonding quality through intelligent algorithms or even visual inspection. SUMMARY

[0004] To remedy deficiencies or make improvement for the related art, the present disclosure provides a flexible optical fiber ribbon, a method and a system for detecting a bonding performance thereof. The purpose of the present disclosure is to form a transparent layer on the exterior of colored optical fibers to serve as a signal light receptor, which, in conjunction with an opaque bonding part, employs the on-off operation and intensity of signal light as detection signals to assess the bonding performance of the bonding part. There is no need to adopt imaging or an image analysis. Such design significantly enhances the speed of quality detection for the bonding performance of the bonding part without limiting the manufacturing speed of the flexible optical fiber ribbons. Accordingly, it is possible to overcome the existing technical difficulty in performing online detection for the bonding parts of the flexible optical fiber ribbons one-by-one and thereby solving the problem of ineffective detection for bonding performance.

[0005] To achieve the above purpose, according to one aspect of the present disclosure, a flexible optical fiber ribbon is provided, which includes a plurality of optical fibers arranged side by side, and there are intermittent bonding parts between the adjacent optical fibers;

[0006] The intermittent bonding parts have a transmittance of 50% or lower for a wavelength band of a detection light;

[0007] An optical fiber coating is covered with a color layer, and the color layer is covered with a light-transmitting layer;

[0008] The color layer has a transmittance of 30% or lower for the wavelength band of the detection light, and the light-transmitting layer has a transmittance of 85% or higher for the wavelength band of the detection light;

[0009] The bonding parts with a qualified bonding performance cover the light-transmitting layer in a detection light direction.

[0010] Preferably, the flexible optical fiber ribbon has the light-transmitting layer with a thickness of lOum to 50um, and the thickness d of the light-transmitting layer is set to be greater than or equal to half of a bonding part width threshold D, that is, d >D / 2.

[0011] Preferably, the flexible optical fiber ribbon has the light-transmitting layer with a modulus that is greater than 500Mpa and made of a UV-curable acrylic resin. A modulus of the color layer is greater than 600Mpa and is made of a UV-curable acrylic ink.

[0012] According to another aspect of the present disclosure, a system for detecting a bonding performance for a flexible optical fiber ribbon is provided, including a light detection device arranged downstream of a bonding part forming device on a production line. The light detection device includes a detection light source and a light receiver.

[0013] The detection light source is disposed above the flexible optical fiber ribbon and emits a detection light with a preset wavelength band. The light receiver is disposed below the bonding part at a detection position and is positioned on an optical path of the detection light source.

[0014] When the bonding part appears at the detection position at an expected moment, in the case where a width of the bonding part is smaller than a qualified width threshold of the bonding part, the detection light passes through the light-transmitting layer of the optical fiber, and an optical signal is detected by the light receiver, thereby determining that the bonding performance of the bonding part is not qualified.

[0015] Preferably, the system for detecting the bonding performance of the flexible optical fiber ribbon has the detection light with the wavelength band that is in a visible light range.

[0016] Preferably, the system for detecting the bonding performance of the flexible optical fiber ribbon has the light receiver with a detection range that covers a width range of the adjacent optical fibers.

[0017] Preferably, the system for detecting the bonding performance of the flexible optical fiber ribbon has the light receiver that is at a distance of 0.5mm to 30mm from the flexible optical fiber ribbon.

[0018] Preferably, the system for detecting the bonding performance of the flexible optical fiber ribbon has the light receiver that is arranged in a staggered manner in an optical fiber arrangement direction.

[0019] According to another aspect of the present disclosure, a method for detecting a bonding performance for a flexible optical fiber ribbon is provided, wherein a detection light is irradiated onto a to-be-detected bonding part of the flexible optical fiber ribbon from one side of the flexible optical fiber ribbon along a detection direction, and the detection light is detected from the other side. When a transmittance of the detection light is detected, it is determined that the bonding performance of the to-be-detected bonding part is not qualified.

[0020] Preferably, the method for detecting the bonding performance for the flexible optical fiber ribbon is applicable for the system for detecting the bonding performance of the flexible optical fiber ribbon of the present disclosure.

[0021] To sum up, the above technical solutions conceived by the present disclosure is able to achieve the following advantageous effects compared with the related art.

[0022] The present disclosure improves the structure of the optical fiber coating adopted by the flexible optical fiber ribbon and the light transmission performance of the bonding part, in conjunction with the use of photosensitive elements to perform on-off detection using optical signals, the detection is sensitive, accurate and has a detection speed far exceeding imaging detection. The present disclosure adopts the on-off detection for the optical signals to avoid the drawbacks of trailing and afterimage caused by convention imaging detection, thereby significantly improving the detection efficiency, mitigating the constraints for the manufacturing speed caused by quality monitoring on the production line, and improving the manufacturing efficiency.

[0023] The system for detecting the bonding performance of the flexible optical fiber ribbon provided by the present disclosure has both hardware and software costs far lower than the conventional system combination of optical imaging and image recognition, thereby reducing the cost of the production line for flexible optical fiber ribbons.

[0024] In a preferred solution, the flexible optical fiber ribbon provided by the present disclosure simplifies a bonding force of the bonding part of optical fiber from a combination of a bonding resin plus multiple color resin surfaces to a combination of a bonding resin plus a high-transmittance resin. Accordingly, there is no need to take into consideration the influence of different optical fiber coloring pigments on the bonding force between the optical fiber coating and the bonding part, thereby reducing the difficulty in material development, manufacturing and ribbon process control brought by the delicate balance control of the bonding force and the tearing force, thus ensuring the stability of product quality. BRIEF DESCRIPTION OF THE DRAWINGS

[0025] FIG. 1 is a plan view of a flexible optical fiber ribbon provided by the present disclosure.

[0026] FIG. 2 is a cross-sectional view taken along line A-A of the flexible optical fiber ribbon provided by the present disclosure.

[0027] FIG. 3 is a structural view of a system for detecting a bonding performance of the flexible optical fiber ribbon provided by the present disclosure.

[0028] FIG. 4 is a schematic view of a detection signal for detecting the bonding performance of the flexible optical fiber ribbon provided in an embodiment of the present disclosure.

[0029] In the drawings, the same reference numerals are used to represent the same elements or structures, wherein: 1 is optical fiber, 2 is bonding part of first arrangement, 3 is bonding part of second arrangement, 4 is an optical fiber glass part, 5 is a natural-colored optical fiber resin, 6 is color layer, 7 is a bonding resin, 8 is a high-transmittance layer, 9 is a light source, 10 is a detection light, 11 is a light receiver. DESCRIPTION OF THE EMBODIMENTS

[0030] In order to make the objectives, technical solutions and advantages of the present disclosure more comprehensible, the present disclosure will be described in further detail below in conjunction with embodiments. It should be understood that the specific embodiments described herein are merely used to explain the present disclosure and are not used to limit the present disclosure. In addition, the technical features involved in the various embodiments of the present disclosure described below may be combined with each other as long as they do not constitute conflicts with each other.

[0031] A flexible optical fiber ribbon provided by the present disclosure is as shown in FIG. 1, which includes a plurality of optical fibers arranged side by side, and there are intermittent bonding parts between the adjacent optical fibers;

[0032] The intermittent bonding parts have a transmittance of 50% or lower for a wavelength band of a detection light;

[0033] An optical fiber coating is covered with a color layer, and the color layer is covered with a light-transmitting layer;

[0034] The color layer has a transmittance of 30% or lower for the wavelength band of the detection light, and the light-transmitting layer has a transmittance of 85% or higher for the wavelength band of the detection light;

[0035] The bonding parts with a qualified bonding performance cover the light-transmitting layer in a detection light direction. The light-transmitting layer has a thickness of lOum to 50um, and the thickness d of the light-transmitting layer is set to be greater than or equal to half of a bonding part width threshold D, that is, d >D / 2. The light-transmitting layer on the outside of the optical fiber serves as a detection signal sensor. When the light-transmitting layer is transmitted by the detection light, it means that the bonding performance of the bonding part is poor Therefore, the thickness of the light-transmitting layer determines the detection accuracy. The greater the thickness, the higher the detection standard, and the higher the requirement for the bonding performance of the bonding part, otherwise, the requirement for the bonding part is reduced.

[0036] The light-transmitting layer has a modulus that is greater than 500Mpa and made of a UV-curable acrylic resin. A modulus of the color layer is greater than 600Mpa and is made of a UV-curable acrylic ink. The modulus of the light-transmitting layer is lower than that of the color layer. When the optical fibers are separated, a transparent layer will rupture prior to the color layer, thereby avoiding tearing of the color layer which would affect an identification effect after splitting the optical fibers.

[0037] As shown in FIG. 3, a system for detecting the bonding performance for the flexible optical fiber ribbon provided by the present disclosure includes a light detection device arranged downstream of a bonding part forming device on a production line. The light detection device includes a detection light source and a light receiver.

[0038] The detection light source is disposed above the flexible optical fiber ribbon and emits a detection light with a preset wavelength band. It is required for a light spot of the light source to be emitted vertically and focused at the center of the adjacent optical fibers being detected, with a light spot diameter being less than or equal to a spacing between the adjacent optical fibers of the flexible optical fiber ribbon. The light receiver is disposed below the bonding part at a detection position and is positioned on an optical path of the detection light source. The wavelength band of the detection light is preferably in a visible light range for ease of observation and imaging.

[0039] A detection range of the light receiver covers a width range of the adjacent optical fibers. Preferably, the light receiver is positioned 0.5mm to 30mm away from the flexible optical fiber ribbon to avoid receiving stray light signals that cause a false detection. The space for setting the light receiver normally exceeds the width of the flexible optical fiber ribbon, creating a spatial obstruction, and the use of area array photosensitive elements limits the detection speed. In the preferred solution, the light receivers are arranged in the staggered manner in an optical fiber arrangement direction, which solves the spatial hindrance while performing on-off detection without mutual interference (only detecting light intensity rather than the shape of optical signal). The detection speed and sensitivity are far higher than that of imaging detection.

[0040] When the bonding part appears at the detection position at an expected moment, in the case where a width of the bonding part is smaller than a qualified width threshold of the bonding part, the detection light passes through the light-transmitting layer of the optical fiber, and the optical signal is detected by the light receiver, thereby determining that the bonding performance of the bonding part is not qualified.

[0041] A method for detecting the bonding performance for the flexible optical fiber ribbon provided by the present disclosure includes the following steps: the detection light is irradiated onto a to-be-detected bonding part of the flexible optical fiber ribbon from one side of the flexible optical fiber ribbon along a detection direction, and the detection light is detected from the other side. When a transmittance of the detection light is detected, it is determined that the bonding performance of the to-be-detected bonding part is not qualified.

[0042] The present disclosure uses the light-transmitting layer as a sensor and performs the on-off detection using the optical signals through the photosensitive elements, the detection is sensitive, accurate, and has a detection speed far exceeding that of the imaging detection, making the method suitable for high-speed production lines for the flexible optical fiber ribbons.

[0043] The embodiments are provided as follows.

[0044] First Embodiment

[0045] The flexible optical fiber ribbon provided in the embodiment is a 12-core optical fiber ribbon with a spacing of 250um between the centers of the optical fibers. A structure of the 250um colored optical fibers adopted in the embodiment is: 210um natural-colored optical fibers with its glass part having a diameter of 125um. There are inner and outer coatings outside the glass, the glass has a diameter of 210um after coating. Then, coloring is performed by using acrylic-based ink with a color layer having an outer diameter of 220um. A layer of approximately 15um thick acrylic UV-curable high light-transmitting resin is further colored outside the colored optical fibers. The resin has a transmittance of 85% or more, making the optical fibers having a diameter of 250um. After this layer is colored, the transparent layer does not affect the differentiation between optical fibers through the color layer. The transmittance of the color layer is 25%. The modulus of the high light-transmitting cured resin is 550Mpa. The modulus of the light-transmitting layer is lower than that of the color layer, and the modulus of the color layer is 650Mpa. When the optical fibers are separated, the transparent layer will rupture prior to the color layer, thereby avoiding tearing of the color layer which would affect the identification effect of the split optical fibers. A bonding resin, which is the intermittent bonding part, is distributed intermittently between the optical fibers. A first arrangement of the bonding parts is distributed at a position A-A, and a second arrangement of the bonding parts is distributed at a position B-B, as shown in FIG. 1. A length of the bonding resin is 5mm to 20mm, and the spacing between the resins is 50mm to 100mm.

[0046] Second Embodiment

[0047] The system for detecting the bonding performance of the flexible optical fiber ribbon provided in this embodiment is as shown in FIG. 3. In the arrangement directly above the parallel plane of the optical fiber ribbon, N-l sets of light sources are positioned vertically in a staggered configuration, corresponding to the bonding parts of the first arrangement and the bonded parts of the second arrangement. In a longitudinal direction of the optical fibers, a staggered distance exceeds the length of the light source itself. In a width direction of the optical fibers, the light sources are sequentially staggered by predetermined intervals. Where necessary, the bonding parts of either the first arrangement or second arrangement are arranged in the staggered manner at multiple positions in the longitudinal direction. The light sources are calibrated, because it is required for a light spot of the light source to be emitted vertically and focused at the center of the adjacent optical fibers being detected. A diameter of the light spot is less than 200um to prevent coverage of other fibers. Concurrently, the light receivers are positioned directly below the light sources at approximately 10mm from the parallel plane of the optical fiber ribbon. The light receivers are staggered in the longitudinal direction of the optical fibers, aligned with the light sources above, ensuring that no interference occurs between the light receivers, while maintaining sufficient stagger intervals to prevent reception of light emitted from the adjacent light sources. During detection operations, the light sources remain continuously illuminated upon equipment activation, emitting laser light continuously. When the optical fibers of the corresponding channels move into a laser range accompanied by bonding parts, the light receivers directly beneath cannot receive the optical signal due to extremely low light transmittance. Conversely, when non-bonding parts of the optical fibers move into the laser range, the light receivers directly beneath are able to receive the signal. The on or off of signal transmission may be converted to determine whether there are bonding parts between the optical fibers or whether the bonding performance of the bonding parts meets qualification standards.

[0048] Third Embodiment

[0049] A process of applying the detection system provided in the Second Embodiment to detect the bonding performance of the flexible optical fiber ribbon provided in the First Embodiment is as follows.

[0050] The optical fiber ribbon being detected is a 12-core optical fiber ribbon, with 11 sets of light sources and a light receiver system combined to form the light detection device. The bonding parts of the optical fiber ribbon have a length of 10mm and disposed at a spacing of 60mm.

[0051] A manufacturing speed of the optical fiber ribbon is 5m / s. When the bonding part moves under the laser light spot, the light receiver will be unable to receive the optical signals for approximately Tl=2ms, which is a pulse silent state, followed by T2=10ms during which the optical signals may be received, which is the pulse active state. Meanwhile, phase comparison is performed between the optical signals and pulse signals received by the light receivers of the 11 sets of light sources and the light receiver system. Through computer data processing, the misalignment distance of bonding parts on any optical fiber channel may be calculated. This misalignment distance may be compared with a preset misalignment distance of the bonding part, and an alarm will be triggered if deviation occurs. Under the circumstances, it is necessary to check whether there is blockage in the bonding part forming device or whether cumulative errors have occurred in the control between a mold / nozzle.

[0052] When the nozzle or the mold experiences partial blockage and part of the resin is ejected, the time of pulse activation and pulse silence will be affected. The periods during which the light receiver actually receives the signal are tl and t2 respectively. When tl / Tl-1 and t2 / T2-l exceed ±10%, the alarm will be triggered and the machine needs to be suspended for inspection.

[0053] When the cumulative errors occur in the control between the mold / nozzle, the alarm will be triggered when the phase difference t3 / T3-l between different channels exceeds ±20%, requiring the machine to be suspended for inspection.

[0054] When the nozzle or the mold is blocked and the bonding resin is completely unable to be ejected, no bonding part is formed between the optical fibers. Under the circumstances, the intensity received by the light receiver is Pl. Since the pulse silent state far exceeds the specified T2, the alarm will be triggered and the machine needs to be suspended for inspection.

[0055] When the nozzle or the mold is blocked and part of the bonding resin is ejected, there is limited bonding part between the optical fibers, and the width of the bonding part will be less than the width threshold 20um. Under the circumstances, the bonding force between the optical fibers will be at a low level. During the manufacture of the optical fiber ribbon and subsequent cabling and use of the optical fiber ribbon, it is unable to ensure that the optical fibers remain in a ribbon form. Under the circumstances, the intensity of the light receiver is P2. When P2 / P1 is greater than 80%, the alarm will still be triggered and the machine needs to be suspended for inspection.

[0056] Those skilled in the art can easily understand that the above descriptions are only preferred embodiments of the present disclosure and are not intended to limit the present disclosure. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of the present disclosure shall be included within the scope to be protected by the present disclosure.

Claims

1. A flexible optical fiber ribbon, comprising a plurality of optical fibers arranged side by side, and there are intermittent bonding parts between the adjacent optical fibers;wherein the intermittent bonding parts have a transmittance of 50% or lower for a wavelength band of a detection light;an optical fiber coating is covered with a color layer, and the color layer is covered with a light-transmitting layer;the color layer has a transmittance of 30% or lower for the wavelength band of the detection light, and the light-transmitting layer has a transmittance of 85% or higher for the wavelength band of the detection light;the bonding parts with a qualified bonding performance cover the light-transmitting layer in a detection light direction.

2. The flexible optical fiber ribbon according to claim 1, wherein the flexible optical fiber ribbon has the light-transmitting layer with a thickness of lOum to 50um, and the thickness d of the light-transmitting layer is set to be greater than or equal to half of a bonding part width threshold D.

3. The flexible optical fiber ribbon according to claim 1, wherein the light-transmitting layer has a modulus that is greater than 500Mpa and is made of a UV-curable acrylic resin, a modulus of the color layer is greater than 600Mpa and is made of a UV-curable acrylic ink.

4. A system for detecting a bonding performance for the flexible optical fiber ribbon according to any one of claims 1-3, comprising a light detection device arranged downstream of a bonding part forming device on a production line, wherein the light detection device comprises a detection light source and a light receiver,the detection light source is disposed above the flexible optical fiber ribbon and emits a detection light with a preset wavelength band, the light receiver is disposed below the bonding part at a detection position and is positioned on an optical path of the detection light source,when the bonding part appears at the detection position at an expected moment, in the case where a width of the bonding part is smaller than a qualified width threshold of the bonding part, the detection light passes through the light-transmitting layer of the optical fiber, and an optical signal is detected by the light receiver, thereby determining that the bonding performance of the bonding part is not qualified.

5. The system for detecting the bonding performance for the flexible optical fiber ribbon according to claim 4, wherein the detection light has the wavelength band that is in a visible light range.

6. The system for detecting the bonding performance for the flexible optical fiber ribbon according to claim 4, wherein the light receiver has a detection range that covers a width range of the adjacent optical fibers.

7. The system for detecting the bonding performance for the flexible optical fiber ribbon according to claim 6, wherein the light receiver is at a distance of 0.5mm to 30mm from the flexible optical fiber ribbon.

8. The system for detecting the bonding performance for the flexible optical fiber ribbon according to claim 4, wherein the light receiver is arranged in a staggered manner in an optical fiber arrangement direction.

9. A method for detecting a bonding performance for the flexible optical fiber ribbon according to any one of claims 1-3, wherein the detection light is irradiated onto a to-be-detected bonding part of the flexible optical fiber ribbon from one side of the flexible optical fiber ribbon along a detection direction, and the detection light is detected from the other side, when a transmittance of the detection light is detected, it is determined that a bonding performance of the to-be-detected bonding part is not qualified.

10. The method for detecting the bonding performance for the flexible optical fiber ribbon according to claim 9, being applicable for a system for detecting the bonding performance of the flexible optical fiber ribbon according to any one of claims 4-8.INTERNATIONAL SEARCH REPORT International application No. PCT / CN2024 / 112734A. CLASSIFICATION OF SUBJECT MATTER G01N21 / 59(2006.01)i; G02B6 / 44(2006.01)i According to International Patent Classification (IPC) or to both national classification and IPC B. FIELDS SEARCHED Minimum documentation searched (classification system followed by classification symbols) IPC:G01N21 / -; G0IB 11 / -: G02B6 / - Documentation searched other than minimum documentation to the extent that such documents are included in the fields searched Electronic data base consulted during the international search (name of data base and, where practicable, search terms used) CNTXT, CNKI, ENTXTC, ENTXT, DWPI, WPABS, WPABSC, EPTXT, JPTXT, USTXT, WOTXT: pt®, , M SOI, O'K tt®, tt®, RR, KH,KB KB, ES, Bft, igJt, R SSit, SKR-Sll, fiber, ribbon, belt, inspect+, measu+, detect+, check+, light, stick, bond+, size, dimension, width, diameter, unqualified, not qualified, qualified, shield+, receiv+, pass, through, transmit+ C. DOCUMENTS CONSIDERED TO BE RELEVANT Category* Citation of document, with indication, where appropriate, of the relevant passages Relevant to claim No. Y CN 114217398 A (YANGTZE OPTICAL FIBRE AND CABLE JOINT STOCK CO., LTD.) 22 March 2022 (2022-03-22) description, paragraphs [0036]-[0047], and figures 1-5 1-10 Y A CN 103837542 A (FUJIAN SBS ZIPPER SCIENCE &TECHNOLOGY CO., LTD.) 04 June 2014 (2014-06-04) description, paragraphs [0021]-[0024], and figures 1-4 CN 108351273 A (FUJIKURA LTD.) 31 July 2018 (2018-07-31) entire document 1-10 1-10 A CN 207472537 U (DONGGUAN HUABEL ELECTRONIC TECHNOLOGY CO., LTD.) 08 June 2018 (2018-06-08) entire document 1-10 A JP 2001105362 A (RICOH K.K.) 17 April 2001 (2001-04-17) entire document 1-10 | J | Further documents are listed in the continuation of Box C. | J | See patent family annex. * Special categories of cited documents: “T” later document published after the international filing date or priority “A" document defining the general state of the art which is not considered date and not in conflict with the application but cited to understand the to be of particular relevance principle or theory underlying the invention “D" document cited by the applicant in die international application “X” document of particular relevance; the claimed invention cannot be “E" earlier application orpatent but published on or after the international considered novel or cannot be considered to involve an inventive step filing date when the document is taken alone “L" document which may throw doubts on priority claim(s) or which is “Y” document of particular relevance; the claimed invention cannot be cited to establish the publication date of another citation or other considered to involve an inventive step when the document is special reason (as specified) combined with one or more other such documents, such combination “O” document referring to an oral disclosure, use, exhibition or other being obvious to a person skilled in tile art means “&” document member of the same patent family “P” document published prior to the international filing date but later than the priority date claimed Date of the actual completion of the international search 21 October 2024 Date of mailing of the international search report 29 October 2024 Name and mailing address of the ISA / CN China National Intellectual Property Administration (ISA / CN) China No. 6, Xitucheng Road, Jimenqiao, Haidian District, Beijing 100088 Authorized officer Telephone No.INTERNATIONAL SEARCH REPORT International application No. PCT / CN2024 / 112734C. DOCUMENTS CONSIDERED TO BE RELEVANTCategory* Citation of document, with indication, where appropriate, of the relevant passages Relevant to claim No. A JP 2004233089 A (YAMATAKE CORP.) 19 August 2004 (2004-08-19) entire document 1-10INTERNATIONAL SEARCH REPORT Information on patent family membersInternational application No.PCT / CN2024 / 112734Patent document cited in search report Publication date (day / month / year) Patent family member(s) Publication date (day / month / year) CN 114217398 A 22 March 2022 CN 114217398 B 24 March 2023 CN 103837542 A 04 June 2014 CN 103837542 B 18 November 2015 CN 108351273 A 31 July 2018 US 2019025156 Al 24 January 2019 US 10704985 B2 07 July 2020 JP 6144371 Bl 07 June 2017 JP 2017125780 A 20 July 2017 EP 3379225 Al 26 September 2018 EP 3379225 Bl 25 November 2020 WO 2017122375 Al 20 July 2017 TW 201725371 A 16 July 2017 TWI 605241 B 11 November 2017 CN 108351273 B 16 June 2020 CN 207472537 U 08 June 2018 None JP 2001105362 A 17 April 2001 None JP 2004233089 A 19 August 2004 None

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