Manufacturing method for optical fiber connectors

By adjusting and fixing the orientation of each optical fiber around its central axis before collective bonding, the method addresses twisting issues in multicore fiber connectors, ensuring precise alignment and reducing coupling loss, thereby improving optical connector performance.

JP7831313B2Active Publication Date: 2026-03-17SUMITOMO ELECTRIC INDUSTRIES LTD
View PDF 7 Cites 0 Cited by

Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-12-22
Publication Date
2026-03-17

AI Technical Summary

Technical Problem

The manufacturing method for optical connectors with multicore fibers results in twisting during rotational alignment, leading to rotational torque at the end face, which causes fluctuations in the orientation of the multicore fibers, increasing coupling loss with external optical devices.

Method used

A method involving the sequential adjustment and fixation of each optical fiber's orientation around its central axis, using adhesives, laser welding, or mechanical means, before collective bonding to an optical fiber holding member, to prevent twisting-induced rotational torque and maintain precise alignment.

Benefits of technology

Prevents fluctuations in the orientation of optical fibers, reducing coupling loss and improving the optical properties of the connectors by maintaining accurate core positioning, thus enhancing the connection with external optical components.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007831313000001
    Figure 0007831313000001
  • Figure 0007831313000002
    Figure 0007831313000002
  • Figure 0007831313000003
    Figure 0007831313000003
Patent Text Reader

Abstract

This method for manufacturing an optical fiber connection component includes: preparing a plurality of optical fibers which each have a glass fiber having a core and a cladding that covers the core, and a resin coating that covers the glass fiber, an end part of the glass fiber being exposed from the resin coating; mounting the plurality of glass fibers to an optical fiber retaining member so that the plurality of glass fibers exposed from the resin coatings are arranged in a first direction, and protrude to the outside from the optical fiber retaining member; adjusting the direction about the central axis of each of the plurality of glass fibers ad fixing the direction about the central axis of each of the plurality of glass fibers; and using an adhesive to bond two or more glass fibers from among the plurality of glass fibers at once and the optical fiber retaining member.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present disclosure relates to an optical connector and an optical connection structure. This application claims priority based on Japanese Application No. 2020-217225 filed on December 25, 2020, and incorporates all the descriptions described in the Japanese application.

Background Art

[0002] Patent Document 1 discloses a method for manufacturing an optical connector including a multi-core fiber. According to the manufacturing method disclosed in Patent Document 1, after the multi-core fiber is disposed in a V-groove provided in the connector, the orientation around the central axis of the multi-core fiber is adjusted (i.e., the multi-core fiber is rotationally centered).

Prior Art Documents

Patent Documents

[0003]

Patent Document 1

Summary of the Invention

[0004] A method for manufacturing an optical fiber connection component according to an aspect of the present disclosure includes preparing a plurality of optical fibers having a core and a cladding covering the core, and a resin coating covering the optical fiber, with the ends of the optical fibers exposed from the resin coating; mounting the plurality of optical fibers exposed from the resin coating on an optical fiber holding member such that the plurality of optical fibers are arranged in a first direction and protrude from the optical fiber holding member to the outside; adjusting and fixing the orientation of each of the plurality of optical fibers around its central axis; and collectively bonding two or more of the plurality of optical fibers and the optical fiber holding member using an adhesive.

Brief Description of the Drawings

[0005] [Figure 1] This is a perspective view showing an example of an optical fiber connector manufactured by the manufacturing method of the optical fiber connector in this disclosure. [Figure 2] This figure shows a cross-section of the glass fiber included in the optical fiber connector component shown in Figure 1. [Figure 3] This is a flowchart illustrating the manufacturing method of an optical fiber connection component according to the first embodiment of this disclosure. [Figure 4] This is a perspective view showing the state in which each glass fiber is mounted on the holding substrate in the manufacturing method of the optical fiber connection component according to the first embodiment. [Figure 5] This figure shows how one of the glass fibers is being rotated and centered in a method for manufacturing an optical fiber connection component according to the first embodiment. [Figure 6] This figure shows how one of the glass fibers is fixed to the holding substrate in the manufacturing method of an optical fiber connection component according to the first embodiment. [Figure 7] This figure shows how each glass fiber, whose orientation around the central axis has been adjusted, is fixed to a holding substrate in a method for manufacturing an optical fiber connection component according to the first embodiment. [Figure 8] This is a flowchart illustrating a method for manufacturing an optical fiber connection component according to a second embodiment of the present disclosure. [Figure 9] This figure shows how each glass fiber, whose orientation around the central axis has been adjusted, is fixed to a fixing substrate in a method for manufacturing optical fiber connection components according to the second embodiment. [Figure 10] This figure illustrates the step of removing the fixing substrate in the manufacturing method of an optical fiber connection component according to the second embodiment. [Figure 11] This figure illustrates a method for manufacturing an optical fiber connection component according to the first embodiment, where the optical fiber holding member according to a modified example is used in an optical fiber connection component. [Figure 12] This figure illustrates a method for manufacturing an optical fiber connector according to a second embodiment, where the optical fiber holding member according to a modified example is used in an optical fiber connector. [Modes for carrying out the invention]

[0006] [Issues this disclosure aims to address] In the manufacturing method for optical connectors equipped with multicore fibers, each multicore fiber is rotated and centered, after which the multicore fibers and connectors are fixed together with adhesive. Subsequently, the end faces of the multicore fibers protruding from the connector are polished so that they are flush with the end faces of the connectors.

[0007] By the way, when a multicore fiber is rotationally aligned, the part that holds the multicore fiber in order to rotate the multicore fiber around its central axis Multicore fiber Twisting occurs in the multicore fiber between the end face and the end face. This twisting generates rotational torque at the end face of the multicore fiber. This rotational torque at the end face causes the orientation of the multicore fiber around its central axis (specifically, the position of the core on the end face of the multicore fiber) to fluctuate from the time the multicore fiber is rotated and centered until all of the multicore fibers are bonded to the connector at once. As a result, the position of the core on the end face of the multicore fiber shifts from the desired position, increasing the coupling loss between the optical connector and external optical devices such as optical waveguide circuits. Thus, from the above viewpoint, there is room for improvement in the manufacturing method of optical fiber connection components such as optical connectors.

[0008] [Description of the Embodiment] An embodiment will be described. (1) A method for manufacturing an optical fiber connection component, comprising: preparing a plurality of optical fibers, each having a core and a cladding covering the core, and a resin coating covering the glass fibers, with the ends of the glass fibers exposed from the resin coating; mounting the plurality of glass fibers on an optical fiber holding member such that the plurality of glass fibers exposed from the resin coating are arranged in a first direction and protrude outward from the optical fiber holding member; adjusting and fixing the orientation of each of the plurality of glass fibers around its central axis; and bonding two or more of the plurality of glass fibers to the optical fiber holding member at once using an adhesive.

[0009] According to the manufacturing method of embodiment (1), it is possible to suppress the rotational torque of the end face of the glass fiber caused by the twisting of the optical fiber. In this way, a situation in which the orientation of each glass fiber around its central axis (specifically, the position of the core on the end face of each glass fiber) fluctuates from the time each glass fiber is rotationally aligned until all of the glass fibers are bonded to the optical fiber holding member at once is prevented. As a result, the position of the core on the end face of the glass fiber is prevented from deviating from the desired position set by rotational alignment, and a situation in which the coupling loss between the optical fiber connection component and the external optical component (e.g., optical waveguide circuit) increases is prevented. Thus, a method for manufacturing an optical fiber connection component that can improve the optical properties of the optical fiber connection component is provided.

[0010] (2) The method for manufacturing an optical fiber connection component according to embodiment (1), wherein adjusting and fixing the orientation includes, in order, adjusting the orientation of a first glass fiber among the plurality of glass fibers around its central axis, fixing the orientation of the first glass fiber around its central axis, adjusting the orientation of a second glass fiber adjacent to the first glass fiber around its central axis, and fixing the orientation of the second glass fiber around its central axis.

[0011] According to the manufacturing method of aspect (2), it is possible to prevent a situation where the orientation around the central axis of the first glass fiber and the second glass fiber fluctuates after each glass fiber is rotationally centered and before the entire plurality of glass fibers are collectively adhered to the optical fiber holding member.

[0012] (3) Adjusting and fixing the orientation includes fixing the plurality of glass fibers to the optical fiber holding member, and is a manufacturing method of an optical fiber connection component according to aspect (1) or aspect (2).

[0013] According to the manufacturing method of aspect (3), it is possible to prevent a situation where the orientation around the central axis of each glass fiber fluctuates after each glass fiber is rotationally centered and before the entire plurality of glass fibers are collectively adhered to the optical fiber holding member. Furthermore, according to this manufacturing method, since there is no need to separately prepare a fixing substrate for fixing each glass fiber, the manufacturing process of the optical fiber connection component can be simplified.

[0014] (4) Adjusting and fixing the orientation includes fixing a portion of the plurality of glass fibers protruding from the optical fiber holding member to a fixing substrate between the end faces of the plurality of glass fibers and the optical fiber holding member, and the manufacturing method further includes cutting the plurality of glass fibers between the fixing substrate and the optical fiber holding member, and is a manufacturing method of an optical fiber connection component according to aspect (1) or aspect (2).

[0015] According to the manufacturing method of aspect (4), since the orientation around the central axis of the glass fiber is fixed in the vicinity of the end face of the glass fiber, it is possible to more effectively suppress the rotational torque of the end face of the glass fiber caused by the twisting of the optical fiber. Therefore, it is possible to more effectively prevent a situation where the orientation around the central axis of the glass fiber fluctuates.

[0016] (5) Adjusting and fixing the orientation involves fixing each of the plurality of glass fibers to the optical fiber holding member in the case of the manufacturing method of embodiment (3) or to the fixing substrate in the case of the manufacturing method of embodiment (4) by an adhesive (for example, an ultraviolet curable adhesive or a thermosetting adhesive), which is a manufacturing method of an optical fiber connection component.

[0017] According to the manufacturing method of embodiment (5), each glass fiber can be fixed to the optical fiber holding member or the fixing substrate relatively easily and quickly.

[0018] (6) Adjusting and fixing the orientation involves fixing each of the plurality of glass fibers to the optical fiber holding member in the case of the manufacturing method of embodiment (3) or to the fixing substrate in the case of the manufacturing method of embodiment (4) by laser welding, which is a manufacturing method of an optical fiber connection component.

[0019] According to the manufacturing method of embodiment (6), each glass fiber can be firmly fixed to the optical fiber holding member or the fixing substrate.

[0020] (7) Adjusting and fixing the orientation involves fixing each of the plurality of glass fibers to the optical fiber holding member in the case of the manufacturing method of embodiment (3) or to the fixing substrate in the case of the manufacturing method of embodiment (4) by mechanical fixing means, which is a manufacturing method of an optical fiber connection component.

[0021] According to the manufacturing method of embodiment (7), each glass fiber can be reliably fixed to the optical fiber holding member or the fixing substrate. Further, when readjusting the rotational alignment of the glass fiber, it is possible to release the fixing between the glass fiber and the optical fiber holding member or the fixing substrate.

[0022] (8) The optical fiber holding member includes a holding substrate having a plurality of groove portions each holding a corresponding one of the plurality of glass fibers, and a lid portion facing the holding substrate via the plurality of glass fibers, which is a manufacturing method of an optical fiber connection component according to any one of embodiments (1) to (7).

[0023] According to the manufacturing method of embodiment (8), it is possible to prevent the orientation of each glass fiber around its central axis from changing between the time each glass fiber is rotated and centered and the entire set of glass fibers is bonded together to the holding substrate and the lid.

[0024] (9) The method for manufacturing an optical fiber connection component according to any one of embodiments (1) to (7), wherein the optical fiber holding member is a block having a plurality of holes, each holding a corresponding one of the plurality of glass fibers.

[0025] According to the manufacturing method of embodiment (9), it is possible to prevent the orientation of each glass fiber around its central axis from changing between the time each glass fiber is rotated and centered and the entire set of glass fibers is bonded to the block at once.

[0026] (10) A method for manufacturing an optical fiber connection component according to any one of embodiments (1) to (9), wherein the optical fiber is a multicore fiber, a polarization-maintaining fiber, or a bundled fiber.

[0027] When optical fibers are multicore fibers, polarization-maintaining fibers, or bundled fibers, the accuracy of rotational alignment of each optical fiber is crucial. In this regard, the manufacturing method of the present disclosure makes it possible to prevent situations in which the orientation of each glass fiber around its central axis fluctuates, thereby preventing situations in which coupling loss between the optical fiber connector and external optical components (e.g., optical waveguide circuits) increases. Therefore, a manufacturing method for optical fiber connectors that can improve the optical properties of the optical fiber connector is provided.

[0028] [Effects of this disclosure] According to this disclosure, it is possible to provide a method for manufacturing optical fiber connectors that can improve the optical properties of the optical fiber connectors.

[0029] [Details of the embodiment] The embodiments of this disclosure will be described below with reference to the drawings. The dimensional ratios of the components shown in each drawing may differ from the actual dimensional ratios of the components for the sake of explanation. In this disclosure, the X-axis, Y-axis, and Z-axis directions set for the optical fiber connection component 1 shown in Figure 1 will be referred to as appropriate. Each of the X-axis, Y-axis, and Z-axis directions is perpendicular to the other two directions.

[0030] The optical fiber connector 1 functions as an optical fiber array containing multiple optical fibers 2. When the optical fibers of the optical fiber connector 1 are optically connected to other optical fibers, the optical fiber connector 1 functions as an optical connector.

[0031] Figure 1 is a perspective view showing an optical fiber connector 1. The optical fiber connector 1 comprises a plurality of optical fibers 2 (12 optical fibers 2 in Figure 1) arranged in the X-axis direction (first direction), and an optical fiber holding member 3 that holds the plurality of optical fibers 2. Each optical fiber 2 is arranged in the X-axis direction while being separated from each other. Each optical fiber 2 has a glass fiber 20 and a resin coating 21 that covers the glass fiber 20.

[0032] Figure 2 shows a cross-section of the glass fiber 20 perpendicular to its central axis. The glass fiber 20 is a multi-core fiber with a non-axially symmetric structure in a cross-section perpendicular to its central axis. Thus, since each optical fiber 2 has a non-axially symmetric structure with respect to its central axis, it is necessary to adjust the orientation of each optical fiber 2 around its central axis (rotational centering).

[0033] The glass fiber 20 has a plurality of cores 24 through which signal light propagates, a marker 25, and a cladding 23 covering the plurality of cores 24 and the marker 25. The refractive index of each core 24 is greater than that of the cladding 23. The refractive index of the marker 25 is different from that of the cladding 23. The marker 25 is used in the rotational alignment process of the optical fiber 2, which will be described later.

[0034] As shown in Figure 1, in each optical fiber 2, the end of the glass fiber 20 is exposed from the resin coating 21. The optical fiber holding member 3 holds the multiple glass fibers 20 so that the multiple glass fibers 20 exposed from the resin coating 21 are arranged in the X-axis direction. The optical fiber holding member 3 has a holding substrate 4 and a lid portion 5 that faces the holding substrate 4 via the multiple glass fibers 20. The holding substrate 4 is provided with multiple V-shaped grooves 46 (see Figure 4), each of which holds one of the corresponding glass fibers 20. The lid portion 5, each glass fiber 20, and the holding substrate 4 are fixed to each other via adhesive. In addition, the end faces of each glass fiber 20, the end face 51 of the lid portion 5, and the end face 41 of the holding substrate 4 are flush with each other.

[0035] (First Embodiment) Next, a method for manufacturing an optical fiber connection component 1 according to the first embodiment of this disclosure will be described with reference to Figures 3 to 7. For the sake of convenience, in the following explanation, four of the twelve optical fibers 2 will be referred to as optical fibers 2a to 2d, and the glass fibers 20 of optical fibers 2a to 2d will be referred to as glass fibers 20a to 20d.

[0036] Figure 3 is a flowchart illustrating a first embodiment of a method for manufacturing optical fiber connection components. In step S1, the ends of each glass fiber 20 are exposed from the resin coating 21 by using a predetermined tool. In the first embodiment, the multiple optical fibers 2 may be multiple optical fibers that are not bonded to each other, or they may be multiple optical fibers included in an intermittently bonded fiber ribbon. In an intermittently bonded fiber ribbon, adjacent optical fibers are intermittently bonded to each other along the longitudinal direction.

[0037] Figure 4 shows the state in which each glass fiber 20 is mounted on the holding substrate 4. In step S2, each glass fiber 20 exposed from the resin coating 21 is mounted on the holding substrate 4. Each glass fiber 20 is mounted on the holding substrate 4 so that it is arranged in the X-axis direction and protrudes outward from the holding substrate 4 in the Z-axis direction.

[0038] Figure 5 shows the rotational alignment of one of the glass fibers 20. First, the orientation of the glass fiber 20a of the optical fiber 2a (an example of the first glass fiber) around the central axis Ax (in other words, the position of the core 24 on the end face of the glass fiber 20a) is adjusted (step S3). In the rotational alignment step S3, for example, the end face of the glass fiber 20 protruding from the holding substrate 4 may be imaged by an imaging device such as a camera. After that, a rotational alignment device (not shown) may automatically adjust the orientation of the glass fiber 20 around the central axis Ax based on the image of the end face of the glass fiber 20 acquired by the imaging device. In this regard, the rotational alignment device may adjust the orientation of the glass fiber 20 around the central axis Ax so that the position of the marker 25 (see Figure 2) on the glass fiber 20 is at a predetermined position. The rotational alignment device also holds the resin coating 21 of the optical fiber 2 while adjusting the orientation of the glass fiber 20 around the central axis Ax Around The orientation may be adjusted. In this way, the rotational positions of the multiple cores 24 are adjusted to desired rotational positions through the rotational alignment process of step S3.

[0039] When the glass fiber 20 is rotationally aligned, it rotates around its central axis Ax. As a result, twisting occurs in the optical fiber 2 between the holding portion of the optical fiber 2, which is held by the rotational alignment device, and the end face of the glass fiber 20. This twisting of the optical fiber 2 generates rotational torque at the end face of the glass fiber 20.

[0040] Figure 6 shows how one of the glass fibers 20 is fixed to the holding substrate 4. In order to fix the orientation of the glass fiber 20a of the optical fiber 2a around the central axis Ax, the glass fiber 20a whose orientation around the central axis Ax has been adjusted is fixed to the holding substrate 4 (step S4). The following methods can be used to fix the glass fiber 20 and the holding substrate 4.

[0041] (1) Fixing method using adhesive The glass fibers 20 may be fixed to the holding substrate 4 by an adhesive. In this case, an ultraviolet-curing adhesive or a thermosetting adhesive may be used as the adhesive. For example, if an ultraviolet-curing adhesive is used as the adhesive, the ultraviolet-curing adhesive may be applied between the holding substrate 4 and each glass fiber 20 in advance before step S3. After that, ultraviolet light may be irradiated onto the ultraviolet-curing adhesive applied to the rotationally aligned glass fibers 20. In this way, the rotationally aligned glass fibers 20 are fixed to the holding substrate 4 by the ultraviolet-curing adhesive. Alternatively, after step S3, an ultraviolet-curing adhesive may be applied between the rotationally aligned glass fibers 20 and the holding substrate 4.

[0042] Furthermore, if a thermosetting adhesive is used as the adhesive, the thermosetting adhesive may be applied between the holding substrate 4 and each glass fiber 20 before step S3. Subsequently, the thermosetting adhesive applied to the rotationally aligned glass fiber 20 may be heated through a heater or laser irradiation. In this way, the rotationally aligned glass fiber 20 is fixed to the holding substrate 4 by the thermosetting adhesive. Alternatively, after step S3, the thermosetting adhesive may be applied between the rotationally aligned glass fiber 20 and the holding substrate 4.

[0043] When an adhesive is used as a means of fixing the glass fiber 20 to the holding substrate 4, the glass fiber 20 can be fixed to the holding substrate 4 relatively easily and quickly.

[0044] (2) Fixation method by laser welding The glass fiber 20 may be fixed to the holding substrate 4 by laser welding. In this case, it is preferable that the melting point of the material constituting the holding substrate 4 is lower than the melting point of the material constituting the cladding 23 of the glass fiber 20 (for example, quartz glass or Tempax). The laser used for laser welding may be, for example, a CO2 laser, a YAG laser, a fiber laser, or a disk laser.

[0045] When laser welding is used as a means of fixing the glass fiber 20 to the holding substrate 4, the glass fiber 20 can be firmly fixed to the holding substrate 4.

[0046] (3) Fixing method using mechanical fastening means The glass fiber 20 may be fixed to the holding substrate 4 by mechanical fixing means. The mechanical fixing means is, for example, a fixing member made of metal or resin. The mechanical fixing means is mounted on the holding substrate 4 so as to face the rotationally aligned glass fiber 20. When the mechanical fixing means is mounted on the holding substrate 4, the glass fiber 20 is positioned within the groove 46 of the holding substrate 4 and pressed toward the groove 46 by the mechanical fixing means. In this case, the glass fiber 20 is in contact with the V-shaped groove 46 at two points and in contact with the mechanical fixing means at one point. The shape of the mechanical fixing means is not particularly limited, but it is preferable that the mechanical fixing means is removable from the holding substrate 4.

[0047] When mechanical fastening means are used to fix the glass fiber 20 to the holding substrate 4, the glass fiber 20 can be securely fixed to the holding substrate 4. Furthermore, when the rotational alignment of the glass fiber 20 needs to be readjusted, the fixation between the glass fiber 20 and the holding substrate 4 can be released.

[0048] Furthermore, while the position for fixing the glass fiber 20 to the holding substrate 4 is not particularly limited, it is preferable that the fixing position be close to the end face of the glass fiber 20 in order to suppress the rotational torque generated at the end face of the glass fiber 20.

[0049] Figure 7 shows how each glass fiber 20, whose orientation around its central axis has been adjusted, is fixed to the holding substrate 4. Next, steps S3 and S4 are repeatedly performed until the rotational alignment of all glass fibers 20 is completed (step S5). Specifically, after the orientation around the central axis Ax of the glass fiber 20b of optical fiber 2b adjacent to optical fiber 2a (an example of a second glass fiber) is adjusted, the glass fiber 20b is fixed to the holding substrate 4 in order to fix the orientation around the central axis Ax of the glass fiber 20b. Next, after the orientation around the central axis Ax of the glass fiber 20c of optical fiber 2c adjacent to optical fiber 2b is adjusted, the glass fiber 20c is fixed to the holding substrate 4 in order to fix the orientation around the central axis Ax of the glass fiber 20c. Furthermore, after the orientation around the central axis Ax of the glass fiber 20d of optical fiber 2d adjacent to optical fiber 2c is adjusted, the glass fiber 20d is fixed to the holding substrate 4 in order to fix the orientation around the central axis Ax of the glass fiber 20d. Processes S3 and S4 are also performed on the remaining glass fibers 20.

[0050] In this way, after steps S3 and S4 have been performed on all the glass fibers 20 (YES in step S5), two or more of the glass fibers 20, the holding substrate 4, and the lid portion 5 are bonded together using an adhesive (step S6). Next, in step S7, the end faces of the glass fibers 20 are polished until the end faces of each glass fiber 20, the end face 41 of the holding substrate 4, and the end face 51 of the lid portion 5 are flush. In this way, the optical fiber connection component 1 shown in Figure 1 is manufactured through the manufacturing steps shown in Figure 3.

[0051] According to the first embodiment, before all of the glass fibers 20 are bonded to the optical fiber holding member 3 at once, in step S4 each glass fiber 20 is fixed to the holding substrate 4 in order to fix the orientation of each glass fiber 20 around its central axis Ax. This makes it possible to suppress the rotational torque of the end face of the glass fiber 20 caused by the twisting of the optical fiber 2 during rotational alignment. In particular, the distance from the position where the glass fiber 20 and the holding substrate 4 are fixed to the end face of the glass fiber 20 is smaller than the distance from the holding portion of the optical fiber 2 held by the rotational alignment device to the end face of the glass fiber 20. This makes it possible to suppress the rotational torque of the end face of the glass fiber 20 caused by the twisting of the optical fiber 2.

[0052] In this way, from the time each glass fiber 20 is rotationally aligned until all of the glass fibers 20 are bonded to the optical fiber holding member 3 with adhesive, a situation in which the orientation of each glass fiber 20 around its central axis Ax fluctuates is prevented. As a result, the position of the core 24 on the end face of the glass fiber 20 is prevented from shifting from the desired position set by rotational alignment. In this respect, the position of the core 24 of the glass fiber 20a, which is the first to be rotationally aligned, is most likely to shift from the desired position. On the other hand, according to the first embodiment, since the orientation of the glass fiber 20a around its central axis Ax is fixed in step S4, the position of the core 24 of the glass fiber 20a is prevented from shifting from the desired position.

[0053] Therefore, it becomes possible to prevent situations in which the coupling loss between the finally manufactured optical fiber connector 1 and external optical components (e.g., optical waveguide circuits and optical connectors) increases. In this way, a method for manufacturing an optical fiber connector 1 is provided that can improve the optical characteristics of the optical fiber connector 1.

[0054] Furthermore, according to the first embodiment, since there is no need to separately prepare a fixing substrate for fixing the orientation of each glass fiber 20 around its central axis Ax, the manufacturing process of the optical fiber connection component 1 can be simplified.

[0055] (Second Embodiment) Figure 8 is a flowchart illustrating the manufacturing method of an optical fiber connection component according to the second embodiment. Steps S10 and S11 are the same as steps S1 and S2 in the first embodiment.

[0056] Figure 9 shows how each glass fiber 20, whose orientation around the central axis Ax has been adjusted, is fixed to the fixing substrate 7. In step S12, the fixing substrate 7 is positioned between the end face of each glass fiber 20 in the Z-axis direction and the holding substrate 4 of the optical fiber holding member 3. The fixing substrate 7 may be positioned such that the distance between the fixing substrate 7 and the end face of the glass fiber 20 in the Z-axis direction is smaller than the distance between the fixing substrate 7 and the holding substrate 4. In particular, because the fixing substrate 7 and the holding substrate 4 are separated from each other, the fixing substrate 7 can be successfully removed in step S17.

[0057] Next, in step S13, the orientation of the glass fiber 20a of the optical fiber 2a around the central axis Ax is first adjusted. Then, in order to fix the orientation of the glass fiber 20a around the central axis Ax, the glass fiber 20a whose orientation around the central axis Ax has been adjusted is fixed to the fixing substrate 7 (step S14). Similar to the first embodiment, the glass fiber 20a may be fixed to the fixing substrate 7 using an adhesive, or it may be fixed to the fixing substrate 7 by laser welding. Alternatively, the glass fiber 20a may be fixed to the fixing substrate 7 by mechanical fixing means.

[0058] Next, steps S13 and S14 are repeatedly performed until rotational alignment of all glass fibers 20 is completed (step S15). Specifically, after the orientation of the glass fiber 20b of optical fiber 2b adjacent to optical fiber 2a is adjusted around the central axis Ax, the glass fiber 20b is fixed to the fixing substrate 7 in order to fix the orientation of the glass fiber 20b around the central axis Ax. Next, after the orientation of the glass fiber 20c of optical fiber 2c adjacent to optical fiber 2b is adjusted around the central axis Ax, the glass fiber 20c is fixed to the fixing substrate 7 in order to fix the orientation of the glass fiber 20c around the central axis Ax. Furthermore, after the orientation of the glass fiber 20d of optical fiber 2d adjacent to optical fiber 2c is adjusted around the central axis Ax, the glass fiber 20d is fixed to the fixing substrate 7 in order to fix the orientation of the glass fiber 20d around the central axis Ax.

[0059] In this way, after steps S13 and S14 have been performed on all the glass fibers 20 (if YES in step S15), two or more of the glass fibers 20, the holding substrate 4, and the lid portion 5 are bonded together at once using an adhesive (step S16).

[0060] Figure 10 is a diagram illustrating step S17 for removing the fixing substrate 7. Next, in step S17, the fixing substrate 7 is removed. Specifically, each glass fiber 20 located between the fixing substrate 7 and the holding substrate 4 of the optical fiber holding member 3 in the Z-axis direction is cut by a cutting tool. In this way, the fixing substrate 7 can be removed by cutting each glass fiber 20. Next, in step S18, the end faces of each glass fiber 20 are polished until they are flush with the end face 41 of the holding substrate 4 and the end face 51 of the lid portion 5. In this way, the optical fiber connection component 1 shown in Figure 1 is manufactured through each manufacturing process shown in Figure 8.

[0061] According to the second embodiment, before all of the glass fibers 20 are bonded to the optical fiber holding member 3 at once, in step S14, the ends of each glass fiber 20 are fixed to the fixing substrate 7 in order to fix the orientation of each glass fiber 20 around its central axis Ax. This makes it possible to suppress the rotational torque of the end face of the glass fiber 20 caused by the twisting of the optical fiber 2 during rotational alignment. In particular, the distance from the position where the glass fiber 20 and the fixing substrate 7 are fixed to the end face of the glass fiber 20 is smaller than the distance from the holding portion of the optical fiber 2 held by the rotational alignment device to the end face of the glass fiber 20. In this respect, since the orientation of the glass fiber 20 around its central axis Ax is fixed near the end face of the glass fiber 20, the rotational torque of the end face of the glass fiber 20 caused by the twisting of the optical fiber 2 can be further suppressed.

[0062] In this way, a situation in which the orientation of each glass fiber 20 around its central axis Ax fluctuates from the time each glass fiber 20 is rotationally aligned until all of the glass fibers 20 are bonded to the optical fiber holding member 3 with adhesive is prevented. As a result, the position of the core 24 on the end face of the glass fiber 20 is prevented from deviating from the desired position set by rotational alignment. Therefore, it is possible to prevent a situation in which the coupling loss between the finally manufactured optical fiber connection component 1 and external optical components (e.g., optical waveguide circuits and optical connectors) increases. Thus, a method for manufacturing an optical fiber connection component 1 that can improve the optical properties of the optical fiber connection component 1 is provided.

[0063] (Modified example of optical fiber holding member) Figure 11 is a diagram illustrating a method for manufacturing an optical fiber connector according to the first embodiment, where the modified optical fiber holding member 3a is used in the optical fiber connector. The modified optical fiber holding member 3a is a block having a plurality of holes 30a arranged in the X-axis direction. Each of the plurality of holes 30a extends in the Z-axis direction and is configured to hold one corresponding glass fiber 20 from a plurality of glass fibers 20. When each glass fiber 20 is held by the optical fiber holding member 3a, in step S2 shown in Figure 3, each glass fiber 20 is inserted into the corresponding hole 30a. In this case, the tip portion of each glass fiber 20 protrudes outward from the optical fiber holding member 3a in the Z-axis direction. Thereafter, steps S3 and S4 are performed for all glass fibers 20.

[0064] In step S4, the glass fiber 20 may be fixed to the optical fiber holding member 3a near the end face 32a of the optical fiber holding member 3a. In particular, the glass fiber 20 may be fixed to the optical fiber holding member 3a by an adhesive (ultraviolet-curing adhesive or thermosetting adhesive), or by laser welding. For example, if the glass fiber 20 is fixed to the optical fiber holding member 3a by an ultraviolet-curing adhesive, the ultraviolet-curing adhesive is poured into the hole 30a before step S3. After the rotational alignment of the glass fiber 20 is performed, ultraviolet light is irradiated onto the ultraviolet-curing resin present near the end face 32a of the optical fiber holding member 3a. In this way, the glass fiber 20 is fixed to the optical fiber holding member 3a by the ultraviolet-curing adhesive near the end face 32a.

[0065] Thus, after steps S3 and S4 have been performed on all the glass fibers 20, steps S6 and S7 are performed. In step S6, adhesive is poured into each hole 30a while each glass fiber 20 inserted into the hole 30a is fixed to the optical fiber holding member 3a. In this way, each glass fiber 20 is bonded to the optical fiber holding member 3a. Subsequently, the end faces of the glass fibers 20 are polished until the end face of each glass fiber 20 and the end face 32a of the optical fiber holding member 3a are flush. As a result, an optical fiber connection component equipped with the optical fiber holding member 3a is manufactured.

[0066] Figure 12 is a diagram illustrating a method for manufacturing an optical fiber connector according to the second embodiment, in which an optical fiber holding member 3a according to a modified example is used in an optical fiber connector. In step S11 of Figure 8, each glass fiber 20 is inserted into the corresponding hole 30a. In this case, the tip portion of each glass fiber 20 protrudes outward from the optical fiber holding member 3a in the Z-axis direction. Subsequently, a fixing substrate 7a is placed between the optical fiber holding member 3a and the end face of each glass fiber 20 in the Z-axis direction (step S12). Next, steps S13 and S14 are performed for all glass fibers 20.

[0067] In step S14, the end of the glass fiber 20 protruding from the optical fiber holding member 3a is fixed to the fixing substrate 7a. In particular, the glass fiber 20 is fixed to the fixing substrate 7a using an adhesive (ultraviolet curing adhesive or thermosetting adhesive). a The glass fiber 20 may be fixed to the fixing substrate 7a by laser welding, or it may be fixed to the fixing substrate 7a by mechanical fixing means.

[0068] Thus, after steps S13 and S14 are performed on all glass fibers 20, steps S16 to S18 are performed. As a result, an optical fiber connection component equipped with an optical fiber holding member 3a is manufactured.

[0069] Although embodiments have been described above, it goes without saying that the technical scope of the present invention should not be interpreted as being limited by the description of embodiments. The embodiments are merely examples, and it will be understood by those skilled in the art that various modifications to the embodiments are possible within the scope of the invention described in the claims. Thus, the technical scope of the present invention should be determined based on the scope of the invention described in the claims and the scope of its equivalents.

[0070] In this disclosure, a multicore fiber is used as an example of optical fiber 2, but optical fiber 2 may be a polarization-maintaining fiber or a bundle fiber. A polarization-maintaining fiber has a pair of stress-applying sections, a core disposed between the pair of stress-applying sections through which signal light propagates, and a cladding covering the pair of stress-applying sections and the core. When a polarization-maintaining fiber is used as optical fiber 2, it is possible to suppress crosstalk between optical fiber connectors 1 and other optical components that are optically connected to each other. A bundle fiber is composed of a bundle of multiple single-core fibers. [Explanation of Symbols]

[0071] 1: Fiber optic connector 2,2a,2b,2c,2d: Optical fiber 3,3a: Optical fiber holding member 4: Holding board 5: Lid part 7:Fixing board 20, 20a, 20b, 20c, 20d: Glass fiber 21: Resin coating 23: Clad 24: Core 25: Marker 30a: Hole 32a: End face 41: End face 46: Groove 51: End face

Claims

1. The invention provides a plurality of optical fibers, each having a core and a cladding covering the core, and a resin coating covering the glass fiber, with the ends of the glass fibers exposed from the resin coating. The plurality of glass fibers exposed from the resin coating are arranged in a first direction, and the plurality of glass fibers are mounted on the optical fiber holding member so as to protrude outward from the optical fiber holding member. The orientation of each of the aforementioned multiple glass fibers around its central axis is adjusted and fixed, This includes bonding two or more of the plurality of glass fibers to the optical fiber holding member at once using an adhesive, Adjusting and fixing the orientation includes fixing each of the plurality of glass fibers to the optical fiber holding member by laser welding. A method for manufacturing an optical fiber connection component, wherein the melting point of the material constituting the optical fiber holding member is lower than the melting point of the material constituting the cladding.

2. Adjusting and fixing the aforementioned orientation is Adjusting the orientation of the first glass fiber among the plurality of glass fibers around its central axis, To fix the orientation of the first glass fiber around its central axis, Adjusting the orientation of the second glass fiber adjacent to the first glass fiber around its central axis, To fix the orientation of the second glass fiber around its central axis, A method for manufacturing an optical fiber connection component according to claim 1, comprising the following in order:

3. Adjusting and fixing the aforementioned orientation is A method for manufacturing an optical fiber connection component according to claim 1 or 2, comprising fixing each of the plurality of glass fibers to a fixing substrate by mechanical fixing means.

4. The optical fiber holding member is A retaining substrate having multiple grooves, each holding one of the multiple glass fibers corresponding to it, The lid portion facing the holding substrate is connected via the plurality of glass fibers, Equipped with, A method for manufacturing an optical fiber connection component according to any one of claims 1 to 3.

5. The optical fiber holding member is A method for manufacturing an optical fiber connection component according to any one of claims 1 to 3, wherein the block is having a plurality of holes, each holding one corresponding of the plurality of glass fibers.

6. The method for manufacturing an optical fiber connection component according to any one of claims 1 to 5, wherein the optical fiber is a multicore fiber, a polarization-maintaining fiber, or a bundled fiber.

Citation Information

Patent Citations

  • Method and structure for fixing optical fiber

    JP1999142688A

  • Method and device for manufacturing polarization maintaining optical fiber array

    JP2005284223A

  • Multicore optical fiber and method for manufacturing multicore optical fiber connector

    JP2015125172A

  • Multi-core fiber aligning method, connector manufacturing method, and ribbon fiber manufacturing method

    JP2015145989A

  • Optical module production method

    JP2015169873A