Optical fiber cleaver
The optical fiber cutter automates the chip collection process by integrating a drive unit to synchronize the clamp's operation with the lid and rotating roller, enhancing efficiency and preventing chip adhesion, while maintaining a simple design.
Patent Information
- Application Number
- JP2023502539
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-02-26
- Filing Date
- 2022-02-25
- Publication Date
- 2025-12-03
- Estimated Expiration
- 2042-02-25
AI Technical Summary
Conventional optical fiber cutters require manual operation of the debris collection mechanism cover, which decreases work efficiency during cutting and chip collection.
An optical fiber cutter with a chip collection mechanism that automatically opens and closes in conjunction with the clamp operation, utilizing a drive unit to transmit the clamp's opening and closing movements to both the lid and a rotating roller, ensuring efficient chip collection.
Improves work efficiency by automating the chip collection process, preventing chips from adhering to the rotating roller, and maintaining a simple configuration with a minimal number of parts.
Smart Images

Figure 0007779490000001 
Figure 0007779490000002 
Figure 0007779490000003
Abstract
Description
[Technical Field]
[0001] The present disclosure relates to an optical fiber cleaver. This application claims priority to Japanese Application No. 2021-029976, filed on February 26, 2021, and incorporates by reference all of the contents of said Japanese application. [Background technology]
[0002] Patent Documents 1 and 2 disclose optical fiber cutters that cut an optical fiber by making an initial cut in the optical fiber. The optical fiber cutters disclosed in Patent Documents 1 and 2 have a recovery mechanism that recovers chips of the cut optical fiber. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Publication No. 2001-296430 [Patent Document 2] Japanese Patent Publication No. 2012-73375 Summary of the Invention
[0004] An optical fiber cutter according to one aspect of the present disclosure includes: a clamp that can be opened and closed to hold the optical fiber; a movable blade portion that cuts the optical fiber held by the clamp, Further, a scrap collection mechanism is provided for collecting scraps of the cut optical fiber, The chip collection mechanism has a case in which the chips are stored, and a lid that opens and closes relative to the case in conjunction with the opening and closing operation of the clamp. [Brief explanation of the drawings]
[0005] [Figure 1] FIG. 1 is a perspective view of an optical fiber cutter according to the present embodiment. [Figure 2] FIG. 2 is an exploded perspective view of a chip collection mechanism provided in the optical fiber cutter of FIG. [Figure 3A] 3A is a perspective view of a drive lever provided in the chip collection mechanism of FIG. 2. FIG. [Figure 3B] 3B is a perspective view of a drive lever included in the chip collection mechanism of FIG. 2. FIG. [Figure 4A] 4A is a perspective view of a drive gear provided in the chip collection mechanism of FIG. 2. FIG. [Figure 4B] 4B is a perspective view of a drive gear provided in the chip collection mechanism of FIG. 2. FIG. [Figure 5A] FIG. 5A is a left side view of the chip collection mechanism in the initial state (first state). [Figure 5B] FIG. 5B is a rear view of the chip collection mechanism in the initial state. [Figure 6] FIG. 6 is a left side view of the chip collection mechanism in the second state. [Figure 7] FIG. 7 is a cross-sectional view of the chip collection mechanism taken along line AA in the second state. [Figure 8] FIG. 8 is a cross-sectional view of the chip collection mechanism taken along line BB in the third state. [Figure 9] FIG. 9 is a cross-sectional view of the chip collection mechanism taken along line BB in the fourth state. [Figure 10] FIG. 10 is a rear view of the chip collection mechanism in the fourth state. [Figure 11] FIG. 11 is a cross-sectional view of the chip collection mechanism taken along line AA in the fifth state. [Figure 12] FIG. 12 is a cross-sectional view of the chip collection mechanism taken along line AA in the sixth state. [Figure 13] FIG. 13 is a cross-sectional view of the chip collection mechanism taken along line BB in the sixth state. [Figure 14] FIG. 14 is a cross-sectional view of the chip collection mechanism taken along line BB in the seventh state. [Figure 15] FIG. 15 is a cross-sectional view of the chip collection mechanism taken along line BB in the eighth state (state returned to the initial state). DETAILED DESCRIPTION OF THE INVENTION
[0006] (Problem to be solved by this disclosure) In conventional optical fiber cutters with a debris collection mechanism, the cover of the debris collection mechanism must be opened and closed manually.
[0007] Therefore, an object of the present disclosure is to provide an optical fiber cutter that can improve the work efficiency during the work of cutting optical fibers and the work of collecting swarf.
[0008] (Description of Embodiments of the Present Disclosure) First, embodiments of the present disclosure will be listed and described. An optical fiber cutter according to one aspect of the present disclosure includes: (1) a clamp that can be opened and closed to hold an optical fiber; a movable blade portion that cuts the optical fiber held by the clamp, Further, a scrap collection mechanism is provided for collecting scraps of the cut optical fiber, The chip collection mechanism has a case in which the chips are stored, and a lid that opens and closes relative to the case in conjunction with the opening and closing operation of the clamp. According to the present disclosure, the cover of the chip collection mechanism opens and closes automatically in conjunction with the opening and closing operation of the clamp, thereby improving the work efficiency during the optical fiber cutting operation and chip collection operation.
[0009] (2) The chip collection mechanism is a rotating roller provided in the case for holding the chips and sending them away from the clamp; The clamping device may further include a drive unit that transmits an opening operation of the clamp to the lid unit and the rotating roller. According to the present disclosure, since a drive unit for transmitting the clamping operation is provided to both the lid portion and the rotating roller, an optical fiber cutter with significantly improved workability can be provided with a small number of parts.
[0010] (3) The drive unit may transmit the closing operation of the clamp to the lid unit, but may not transmit the operation to the rotating roller. According to the present disclosure, the rotating roller is not rotated when the clamp is closed. That is, the rotating roller is rotated only to send chips away from the clamp. This prevents chips from adhering to the rotating roller and being pulled back toward the clamp when the lid is closed together with the clamp.
[0011] (4) The drive unit has a drive lever that interlocks with the clamp and a first gear that rotates in response to the operation of the drive lever, the rotating roller has a second gear integrally formed at one end thereof; The first gear is In response to the operation of the drive lever linked to the opening operation of the clamp, the drive lever moves toward the second gear and engages directly or indirectly with the second gear, The clamp may be configured so that, in response to operation of the drive lever linked to the closing operation of the clamp, the drive lever moves to the opposite side of the second gear and disengages from the second gear. According to the present disclosure, a configuration in which the rotating roller rotates only in a direction away from the clamp can be realized simply and with a small number of parts.
[0012] (5) The clamp and the cover of the chip collecting mechanism may be opened and closed by rotating about rotation axes that are parallel to each other. According to the present disclosure, the interlocking mechanism between the clamp and the lid portion can be realized with a simple configuration.
[0013] (Effects of the present disclosure) According to the present disclosure, the cover of the chip collection mechanism opens and closes automatically in conjunction with the opening and closing operation of the clamp, thereby improving the work efficiency during the optical fiber cutting operation and chip collection operation.
[0014] (Details of the embodiments of the present disclosure) Optical fiber according to an embodiment of the present disclosure Cutter A specific example of this will be described below with reference to the drawings. It should be noted that the present disclosure is not limited to these examples, but is defined by the scope of the claims, and is intended to include all modifications within the meaning and scope equivalent to the claims.
[0015] FIG. 1 is a perspective view of an optical fiber cutter according to the present embodiment.
[0016] The optical fiber cutter 1 comprises a main body 10, a clamp 20 for holding the bare optical fiber, a pillow 40 for bending the bare optical fiber, a disk-shaped blade part 50 for making an initial cut in the bare optical fiber, and a bare optical fiber scrap collection mechanism 60.
[0017] The main body 10 is a metal block with a substantially I-shaped cross section, with an upper main body 11 and a lower main body 12 connected by a connecting piece 13. A holder guide 14 is formed on the top surface of the main body 10 to which an optical fiber holder (not shown) is attached. The optical fiber holder is a device that holds a single optical fiber core or multiple optical fiber cores in a parallel state. An exposure hole 15 for the blade portion 50 is formed in the upper main body 11, and the blade portion 50 protrudes upward from this exposure hole 15. Furthermore, a slider 16 is attached to the connecting piece 13 to allow the blade portion 50 to slide freely in the forward and backward directions. The configuration of the slider 16 is well known, so a detailed description thereof will be omitted. A pair of lower clamps 23 are fixed to the top surface of the main body 10 at locations that sandwich the exposure hole 15.
[0018] The clamp 20 is a plate-like body that is attached to the rear end of the upper surface of the main body 10 via a support shaft 21 so as to be able to open and close freely. A pillow 40 and a pair of upper clamps 22 are provided on the back surface of the clamp 20 (the surface facing the main body 10). When the clamp 20 is closed, the upper clamp 22 faces a pair of lower clamps 23 that are provided on the upper surface of the main body 10. When the clamp 20 is closed on the main body 10, the bare optical fiber is sandwiched between the pair of upper clamps 22 and the pair of lower clamps 23.
[0019] Clamp 20 further includes a spring (not shown) attached to spindle 21, a magnet 25 for holding clamp 20 in a closed state, and a release lever 26 for releasing clamp 20 from the closed state. The spring attached to spindle 21 presses clamp 20 in the direction of opening. Magnet 25 is located on the side edge of clamp 20 opposite spindle 21. Meanwhile, catcher 17 is provided on the top surface of main body 10 at a position corresponding to magnet 25. When clamp 20 is closed relative to main body 10, magnet 25 is attracted to catcher 17 against the pressing force of the spring attached to spindle 21. This maintains clamp 20 in a closed state relative to main body 10. When release lever 26 is pulled upward in the closed state, an upward opening force is applied to clamp 20, releasing (disengaging) the attraction between magnet 25 and catcher 17. When the attraction between the magnet 25 and the catcher 17 is released, the clamp 20 is automatically opened by the repulsive force of the spring attached to the support shaft 21.
[0020] The pillow 40 is attached to the clamp 20 with a compression spring (not shown) provided between it and the back surface of the clamp 20. The pillow 40 is normally in a protruding state due to the repulsion of the compression spring. In other words, the pillow 40 is configured to be held in a state in which it imparts a bend to the bare optical fiber. A pillow support piece 41 extending downward is fixed to the pillow 40. Meanwhile, the slider 16 on which the blade unit 50 is mounted is provided with a protrusion (not shown) that protrudes upward and abuts against the pillow support piece 41. When this protrusion abuts against the pillow support piece 41, the pillow 40 is pressed upward against the compression spring. In other words, until the blade unit 50 makes an initial scratch on the bare optical fiber, the pillow support piece 41 abuts against the protrusion of the slider 16, and the pillow 40 is pushed back to a state in which it does not contact the bare optical fiber. Thereafter, when the slider 16 moves backward and the blade portion 50 makes an initial cut in the bare optical fiber, the protrusion of the slider 16 passes below the pillow support piece 41, and the pillow 40 is pushed out by the pressing force of the compression spring, bending the bare optical fiber and cutting it. In this way, in conjunction with the sliding movement of the blade portion 50 by the slider 16, the operation of making an initial cut in the bare optical fiber by the blade portion 50 and the operation of cutting the bare optical fiber by the pillow 40 are automated.
[0021] FIG. 2 is an exploded perspective view showing the components that make up the chip collection mechanism 60. As shown in FIG. As shown in FIG. 2, the chip collection mechanism 60 includes a case body 61 (an example of a case), an inner case 62 housed in the case body 61, an openable / closable lid 63 (an example of a lid portion) that can be opened and closed relative to an opening at the top of the case body 61, and an openable / closable lock lever 64 for locking the openable / closable lid 63 in an open state. The case body 61 is integrated with the main body 10 shown in FIG. 1 by being fixed to a case lid 65 interposed between the case body 61 and the main body 10. The openable / closable lock lever 64 has a shaft 641 attached to a bearing 612 of the case body 61, and is therefore rotatable about the shaft 641 relative to the case body 61. The openable / closable lid 63 is a plate-shaped body attached to the rear end of the top surface of the case body 61. A bearing 631 is formed at the rear end of the openable / closable lid 63, through which a support shaft 611 formed at the rear end of the case body 61 is inserted. The support shaft 611 of the case body 61 is inserted into the bearing 631 of the opening / closing lid 63 , so that the opening / closing lid 63 can be opened and closed relative to the case body 61 .
[0022] The open / close lock lever 64 includes a lock portion 642 extending above the shaft 641, a torsion spring (torsion coil spring) 643, and a lever portion 644 bent leftward from below the shaft 641. The torsion spring 643 applies a force to the lock portion 642 that rotates it in one direction around the shaft 641. As a result, when the open / close lid 63 is closed, the tip of the lock portion 642 comes into contact with a part of the back surface of the open / close lid 63. The tip of the lever portion 644 is inserted into an opening 651 formed in the case lid 65 and protrudes toward the main body 10. The lever portion 644 protruding toward the main body 10 is pressed by the sliding movement of the slider 16, and applies a force to the open / close lock lever 64 that rotates it in the opposite direction around the shaft 641 against the biasing force of the torsion spring 643.
[0023] The scrap collection mechanism 60 further includes a lower roller 66 (an example of a rotating roller) journaled within the case body 61 and an upper roller 67 journaled on the back surface of the opening / closing lid 63. The lower roller 66 is a single, substantially cylindrical member made of a resin molded product, and is provided with a feed-out portion 661 near the center thereof with which scraps of bare optical fiber come into contact, and a gear 662 (an example of a second gear) at its rear end. The lower roller 66 is rotatably attached to a plurality of lower roller holders 652 provided on the case lid 65. The case lid 65 has a notch 653 formed therein so that the feed-out portion 661 is exposed from the main body 10 side when the lower roller 66 is attached to the lower roller holder 652. The upper roller 67 is rotatably attached to an upper roller holder 632 provided on the back surface of the opening / closing lid 63. When the opening / closing lid 63 is closed, scraps of bare optical fiber are sandwiched between the upper roller 67 and the feed-out portion 661 of the lower roller 66. Then, by rotating the lower roller 66, the chips are sent in a direction away from the clamp 20, and the chips are thrown into the inner case 62. This allows the inner case 62 containing the chips to be removed from the case main body 61 and disposed of easily and reliably. One side surface 61a of the case main body 61 is open as an outlet for the inner case 62.
[0024] The chip collection mechanism 60 further includes a drive lever 71 (an example of a drive unit) housed within the case main body 61, a drive gear 72 (an example of a drive unit, a first gear) attached to the drive lever 71, and an idle gear 73 interposed between the drive gear 72 and the lower roller 66.
[0025] 3A and 3B are perspective views of the drive lever 71. FIG. As shown in FIGS. 3A and 3B , the drive lever 71 includes a shaft 711, a flange 712 provided at the left end of the shaft 711, and an arm 713 protruding upward from the flange 712. The shaft 711 is inserted through an opening 721a provided in a drive gear 72 (described later). A small shaft 714 having a smaller diameter than the shaft 711 is formed further right from the right end of the shaft 711. The small shaft 714 is inserted through a bearing 631 of the opening / closing cover 63. As described above, the support shaft 611 formed in the case body 61 is inserted through this bearing 631 in the opposite direction to the insertion direction of the small shaft 714. As shown in FIG. 2 , a torsion spring 74 is attached around the small shaft 714. The torsion spring 74 is configured to apply a force in the closing direction to the opening / closing cover 63 in response to the rotation of the drive gear 72 (described later).
[0026] In the drive lever 71, a pair of openings 715 are formed on the inner periphery of a flange 712 provided on the outer periphery of the shaft 711, through which a pair of claws 722 of the drive gear 72, which will be described later, can be inserted. A stepped portion 715a is provided at one end of each opening 715. The stepped portion 715a is a step provided between the inner periphery 715b of the flange 712 and the opening 715, on the right side surface of the flange 712, which is the direction in which the claws 722 are inserted into the opening 715. An attachment portion 716 that protrudes to the left is provided at the top of the arm portion 713. The attachment portion 716 is attached to the clamp 20. right The mounting portion 716 is attached to the side of the clamp 20. The mounting portion 716 extends in a direction substantially parallel to the axis 711 of the drive lever 71. The mounting portion 716 is attached to the clamp 20 so that its extending direction (longitudinal direction) is substantially parallel to the support axis 21 of the clamp 20. As a result, the drive lever 71 rotates around the axis 711, which is substantially parallel to the support axis 21 of the clamp 20, in conjunction with the opening and closing operation of the clamp 20. Furthermore, a protrusion 717 of a predetermined length is provided on the outer periphery of the flange 712 on the side opposite (lower side) to the side on which the arm portion 713 is provided (upper side).
[0027] 4A and 4B are perspective views of the drive gear 72. FIG. As shown in Figures 4A and 4B, the drive gear 72 has a substantially cylindrical base 721, a pair of claws 722, a gear mounting portion 723, a gear portion 724, a ridge portion 725, and a protrusion 726. The pair of claws 722 are inserted into a pair of openings 715 of the drive lever 71. The pair of claws 722 are provided on the left side surface of the base 721 so as to protrude leftward in stages. That is, each claw 722 has a tip 722a and a step portion 722b. The tip 722a is always inserted into each opening 715. On the other hand, the step portion 722b is inserted into each opening 715 in response to the rotation of the drive lever 71. Insert The position of the flange 712 changes between a state in which the flange 712 is inserted into the opening 715 and a state in which the flange 712 is in contact with the stepped-down portion 715a without being inserted into the opening 715. This configuration makes it possible to control the distance between and approaching the right side surface of the flange 712 and the left side surface of the base 721.
[0028] The gear mounting portion 723 extends in a fan shape from a part of the outer periphery of the base portion 721. A plurality of gear portions 724 are formed on the outer edge of the fan-shaped gear mounting portion 723 so as to protrude to the left. The peak portion 725 protrudes to the left from the gear mounting portion 723 near one of the pair of claw portions 722. The protrusion 726 is formed on the outer periphery of the base portion 721 so as to protrude on the side opposite to the side on which the gear mounting portion 723 extends. An opening 721a, through which the shaft 711 of the drive lever 71 is inserted, is formed between the pair of claw portions 722 so as to penetrate the base portion 721.
[0029] (Optical fiber cutting operation) Next, we will explain the operation of the above-described optical fiber cutter 1. The operation of the chip collection mechanism 60 will be described later. First, the optical fiber core is set in an optical fiber holder (not shown), and the coating at the end of the core is removed to expose the bare optical fiber. The clamp 20 is opened, and the optical fiber holder is fitted into the holder guide 14.
[0030] Next, the clamp 20 is closed against the repulsive force of the pillow 40, and the magnet 25 is attracted to the catcher 17. At this time, the bare optical fiber is sandwiched between the upper and lower clamps 22 and 23. In addition, the pillow support piece 41 abuts against the protrusion of the slider 16, and the pillow 40 is held in a pushed-back state.
[0031] Next, the slider 16 is slid to bring the blade portion 50 into contact with the bare optical fiber, creating an initial flaw. Once the initial flaw has been created in the bare optical fiber, the protrusion of the slider 16 passes below the pillow support piece 41, and the pillow 40 is returned to its protruding state, imparting a bend to the bare optical fiber. At this time, tension is applied to the bare optical fiber because the tip and base sides of the bare optical fiber are held by the upper and lower clamps 22, 23. As a result, the initial flaw develops and the bare optical fiber breaks.
[0032] Next, the clamp 20 is released by pulling up the release lever 26 and prying open the clamp 20. Clamp 20 Since a torsion spring is attached to the clamp 20 to press the clamp 20 in the direction of opening the clamp 20, the clamp 20 is automatically opened by the repulsive force of the spring, and the upper and lower clamps 22 and 23 are also opened.
[0033] After the cutting is completed, the optical fiber core is taken out from the optical fiber holder fitted into the holder guide 14.
[0034] (Automatic opening and closing operation of the opening and closing lid 63) Next, with reference to FIGS. 5A to 15, an automatic opening / closing operation of the open / close cover 63 of the chip collection mechanism 60, which is performed in conjunction with the opening / closing operation of the clamp 20 of the optical fiber cutter 1 as described above, will be described. FIG. 5A is a left side view of the chip collection mechanism in an initial state (first state). FIG. 5B is a rear view of the chip collection mechanism in the initial state. FIG. 6 is a left side view of the chip collection mechanism in a second state. FIG. 7 is a cross-sectional view of the chip collection mechanism taken along line AA in the second state. FIG. 8 is a cross-sectional view of the chip collection mechanism taken along line BB in the third state. FIG. 9 is a cross-sectional view of the chip collection mechanism taken along line BB in the fourth state. FIG. 10 is a rear view of the chip collection mechanism in the fourth state. FIG. 11 is a cross-sectional view of the chip collection mechanism taken along line AA in the fifth state. FIG. 12 is a cross-sectional view of the chip collection mechanism taken along line AA in the sixth state. FIG. 13 is a cross-sectional view of the chip collection mechanism taken along line BB in the sixth state. FIG. 14 is a cross-sectional view of the chip collection mechanism taken along line BB in the seventh state. FIG. 15 is a cross-sectional view of the chip collection mechanism taken along line BB in the eighth state (initial state).
[0035] As shown in FIG. 5A, in the initial state where the clamp 20 is fully open relative to the main body 10, the drive lever 71 of the chip collection mechanism 60 is right The arm 713 is held in a tilted backward position by an attachment portion 716 attached to the side surface. At this time, a forward force is applied to the lever portion 644 of the open / close lock lever 64 by a torsion spring 643 attached to the shaft 641. As a result, the lever portion 644 is positioned at the forwardmost position within the opening 651 of the case lid 65. Note that the lock portion 642, which is provided on the opposite side of the shaft 641 from the lever portion 644, comes into contact with the outer peripheral surface of the bearing 631 of the open / close lid 63, thereby holding the open / close lid 63 in an open position relative to the case main body 61.
[0036] As shown in Fig. 5B, the drive gear 72 is inserted onto the shaft 711 of the drive lever 71 and is sandwiched between the flange 712 of the drive lever 71 and the bearing 631 of the opening / closing cover 63. In the initial state shown in Figs. 5A and 5B, the protrusion 726 of the drive gear 72 is in contact with the upper edge 616 on the rear side of the case main body 61, so that only the tip portion 722a of each claw portion 722 of the drive gear 72 is inserted into the corresponding opening 715 of the drive lever 71, and the stepped portion 722b of each claw portion 722 is in contact with the stepped portion 715a of the drive lever 71. As a result, as shown in Fig. 5B, the left side surface of the base portion 721 of the drive gear 72 and the right side surface of the flange 712 of the drive lever 71 do not come into contact with each other, and the base portion 721 and the flange 712 are spaced apart by a certain distance. In this way, in the initial state in which the base 721 and the flange 712 are separated, the gear portion 724 of the drive gear 72 is not engaged with the idle gear 73, and even if the drive gear 72 is rotated by the drive lever 71, the rotational motion of the drive gear 72 is not transmitted to the lower roller 66 via the idle gear 73.
[0037] Next, in the second state, when the closing operation of the clamp 20 relative to the main body 10 is initiated, as shown in Fig. 6, the arm 713 including the attachment portion 716 moves in conjunction with the closing operation of the clamp 20, causing the drive lever 71 to rotate clockwise in Fig. 6. In conjunction with this rotational operation of the drive lever 71, the drive gear 72 also rotates clockwise. At this time, the biasing force of the torsion spring 74, which rotates together with the drive gear 72, applies a force to the open-close lid 63 in the direction in which it closes relative to the case main body 61.
[0038] 7, when the opening / closing cover 63 moves in the direction of closing relative to the case body 61, the locking portion 642 of the opening / closing lock lever 64 comes into contact with a step 633 formed on the back surface of the opening / closing cover 63. The locking portion 642 is pressed rearward by the biasing force of the torsion spring 643. As a result, the opening / closing cover 63 is not completely closed relative to the case body 61, and the top surface of the case body 61 and the back surface of the opening / closing cover 63 are spaced a predetermined distance apart. That is, in the second state, the upper roller 67 and the feeding portion 661 of the lower roller 66 do not come into contact with each other, and therefore the optical fiber is not clamped between the upper roller 67 and the feeding portion 661.
[0039] Next, to the third state, when clamp 20 moves in a direction further closing relative to main body 10 than in the second state, as shown in FIG. 8 , arm 713 moves further in conjunction with the closing movement of clamp 20, causing drive lever 71 to further rotate clockwise in FIG. 8 . Note that from the initial state to the third state, only tip portions 722a of the pair of claw portions 722 of drive gear 72 are inserted into the pair of openings 715 of drive lever 71, and stepped portions 722b are not inserted into openings 715. In other words, until the third state, base portion 721 and flange 712 are separated from each other, and therefore gear portion 724 of drive gear 72 does not mesh with idle gear 73. Therefore, as described above, even if drive gear 72 is rotated by drive lever 71 from the initial state to the third state, the rotational movement of drive gear 72 is not transmitted to lower roller 66 via idle gear 73, and lower roller 66 does not rotate. A projection 717 formed on a part of the outer periphery of the flange 712 of the drive lever 71 is in contact with a crest 725 of the drive gear 72. Specifically, a step on the front side of the crest 725 is in contact with a step on the rear side of the projection 717.
[0040] Next, as a fourth state, when the clamp 20 is completely closed relative to the main body 10, as shown in FIG. 9, the arm 713 moves further in conjunction with the closing movement of the clamp 20, causing the drive lever 71 to further rotate clockwise in FIG. 9. This further rotation of the drive lever 71 causes the protrusion 717 to ride over the crest 725 of the drive gear 72. Specifically, the front step of the protrusion 717 comes into contact with the rear step of the crest 725. As a result, in the fourth state, the pair of claws 722 of the drive gear 72 are entirely inserted (the tip portions 722a and the stepped portions 722b) into the pair of openings 715 of the drive lever 71. At this time, as shown in FIG. 10, the left side surface of the base 721 of the drive gear 72 comes into contact with the right side surface of the flange 712 of the drive lever 71. As a result, the gear portion 724 of the drive gear 72 meshes with the idle gear 73.
[0041] Next, in the fifth state, the slider 16 equipped with the blade portion 50 is moved rearward, and an initial cut is made in the optical fiber. At this time, as shown in FIG. 11 , the slider 16 moves rearward, and the lever portion 644 of the open / close lock lever 64 comes into contact with a step (not shown) of the slider 16, and the lever portion 644 is moved rearward within the opening 651 of the case lid 65. As a result, the lock portion 642, which is provided on the opposite side of the shaft 641 from the lever portion 644, moves forward. The forward movement of the lock portion 642 releases the contact between the step 633 on the back surface of the open / close lid 63 and the lock portion 642, and the open / close lid 63 moves in the direction of closing relative to the case body 61. Note that, as described above, a force in the closing direction is applied to the open / close lid 63 by the torsion spring 74, which is linked to the rotational movement of the drive gear 72. As a result, the open / close lid 63 comes into contact with the top surface of the case body 61, and the open / close lid 63 is completely closed relative to the case body 61.
[0042] 12 and 13, when the opening / closing lid 63 is completely closed on the upper surface of the case body 61, the feeding portion 661 of the lower roller 66 comes into contact with the upper roller 67, and the optical fiber is held between the feeding portion 661 and the upper roller 67. After the initial flaw is made in the optical fiber by the sliding movement of the blade portion 50, as described above, the protrusion of the slider 16 passes below the pillow support piece 41, the pillow 40 is returned to the protruding state, a bend is imparted to the bare optical fiber, the initial flaw progresses, and the bare optical fiber breaks. In this way, the optical fiber held between the feeding portion 661 and the upper roller 67 becomes chips.
[0043] In the seventh state, when the clamp 20 is released from the main body 10 after the optical fiber is broken, as shown in FIG. 14, the arm 713 of the drive lever 71 also rotates counterclockwise in FIG. 14 in conjunction with the release operation of the clamp 20. Rotation At this time, the pair of claws 722 of the drive gear 72 are substantially entirely inserted into the pair of openings 715 of the drive lever 71, so that the left side of the base 721 of the drive gear 72 comes into contact with the right side of the flange 712 of the drive lever 71, and the gear portion 724 of the drive gear 72 is engaged with the idle gear 73. In this state, when the arm portion 713 rotates counterclockwise, the gear portion 724 of the drive gear 72 also rotates counterclockwise. As a result, the idle gear 73 engaged with the gear portion 724 rotates about its axis, and the gear 662 engaged with the idle gear 73 rotates the lower roller 66. Note that in the seventh state, the delivery portion 661 of the lower roller 66 comes into contact with the upper roller 67, and the chips are maintained in a state of being held between the delivery portion 661 and the upper roller 67. Therefore, the chips held between the upper roller 67 and the delivery portion 661 of the lower roller 66 are sent in a direction away from the clamp 20 as the lower roller 66 rotates. The sent chips fall and are stored in the inner case 62.
[0044] Next, as the eighth state, when the clamp 20 is further released from the main body 10, the drive lever 71 also rotates further in the direction of arrow C shown in FIG. 14 . This applies a force to the drive gear 72 to rotate in the direction of arrow C. However, the protrusion 726 of the drive gear 72 comes into contact with the upper edge 616 of the case main body 61, restricting the rotation of the drive gear 72 at this position. As a result, the stepped portions 722b of the pair of claws 722 inserted into the pair of openings 715 of the drive lever 71 are pushed out of the openings 715 and come into contact with the stepped portions 715a formed on the flange 712. That is, as shown in FIG. 15 , when the drive lever 71 returns to the initial state (eighth state) in conjunction with the opening operation of the clamp 20, only the tip portions 722a of the pair of claws 722 are inserted into the pair of openings 715 of the drive lever 71. As a result, the right side surface of the flange 712 of the drive lever 71 and the left side surface of the base 721 of the drive gear 72 are again spaced apart by a certain distance (FIG. 5B), and the gear portion 724 is released from the engagement with the idle gear 73. At this time, the crest portion 725 of the drive gear 72 returns to a state in which it is in contact with the step portion on the rear side of the protrusion 717. In this way, by making the movable range of the drive lever 71, which is linked to the opening and closing operation of the clamp 20, larger than the movable range of the drive gear 72, the positional relationship between the drive lever 71 and the drive gear 72 is changed, and a configuration is realized in which the gear portion 724 of the drive gear 72 and the idle gear 73 mesh only at the desired timing.
[0045] As described above, the optical fiber cutter 1 according to this embodiment has at least the openable and closable clamp 20 (22, 23) that holds the optical fiber, and the movable blade 50 that cuts the optical fiber held by the clamp 20. The optical fiber cutter 1 further has a chip collection mechanism 60 that collects chips of the cut optical fiber. The chip collection mechanism 60 has a case main body 61 (an example of a case) that stores the chips, and an openable / closeable lid 63 (an example of a lid) that opens and closes relative to the case main body 61 in conjunction with the opening and closing movement of the clamp 20. In this way, the openable / closeable lid 63 automatically opens and closes in conjunction with the opening and closing movement of the clamp 20, thereby improving the efficiency of the optical fiber cutting operation and the chip collection operation.
[0046] The chip collection mechanism 60 is further provided with a lower roller 66 (an example of a rotating roller) that is provided within the case body 61 and that holds the chips and sends them in a direction away from the clamp 20, and a drive lever 71 and a drive gear 72 (an example of a drive unit) that transmit the opening operation of the clamp 20 to the open / close lid 63 and the lower roller 66. In this way, the chip collection mechanism 60 is provided with the drive lever 71 and the drive gear 72 as a mechanism for transmitting the clamp operation to both the open / close lid 63 and the lower roller 66, so that an optical fiber cutter 1 with significantly improved operability can be provided with a small number of parts.
[0047] The drive lever 71 and drive gear 72 provided in the chip collection mechanism 60 are configured to transmit the closing operation of the clamp 20 to the opening / closing cover 63, but not to the lower roller 66. Specifically, the drive lever 71 is linked to the opening and closing operation of the clamp 20, and the drive gear 72 (an example of a first gear) rotates in response to the operation of the drive lever 71. The lower roller 66 has a gear 662 (an example of a second gear) integrally formed at one end thereof. In response to the operation of the drive lever 71 linked to the opening operation of the clamp 20, the drive gear 72 moves toward the gear 662 and comes into contact with the gear 662. Direct or While indirectly engaging with each other, the drive lever 71 moves in the opposite direction to the gear 662 in response to the operation of the drive lever 71 linked to the closing operation of the clamp 20. Direct orThe clamp 20 is configured so that the indirect meshing is released. With this configuration, the lower roller 66 does not rotate when the clamp 20 is closed. In other words, the lower roller 66 rotates only to send chips away from the clamp 20. This prevents chips from adhering to the lower roller 66, for example, from being pulled back toward the clamp 20 when the opening / closing lid 63 is closed together with the clamp 20. In this way, with this example, a configuration in which the lower roller 66 rotates only in the direction away from the clamp 20 can be realized simply and with a small number of parts.
[0048] In this embodiment, the clamp 20 and the opening / closing lid 63 of the chip collection mechanism 60 are configured to rotate about parallel rotation axes to open and close. That is, the support shaft 21, which is the opening / closing axis of the clamp 20, and the shaft 711 of the drive lever 71, which is the opening / closing axis of the opening / closing lid 63, are approximately parallel. With this configuration, the interlocking mechanism between the clamp 20 and the opening / closing lid 63 can be realized with a simple configuration.
[0049] Although the present disclosure has been described in detail and with reference to specific embodiments, it will be apparent to those skilled in the art that various changes and modifications can be made without departing from the spirit and scope of the present disclosure. Furthermore, the number, position, shape, etc. of the components described above are not limited to the above embodiments, and can be changed to the number, position, shape, etc. that are suitable for implementing the present disclosure.
[0050] In the above embodiment, the chip collection mechanism 60 includes two components, a drive lever 71 and a drive gear 72, to restrict the rotational direction of the lower roller 66, which is linked to the opening and closing of the cover 63, to one direction. This mechanism, however, is not limited to this example. If it is not necessary to restrict the rotational direction of the lower roller 66 to one direction, the drive lever 71 and the drive gear 72 may be integrated into the drive unit as a single component. This further reduces the number of components. While the above optical fiber cleaver has been described as cutting a single optical fiber, the same applies to cutting multiple optical fibers arranged in parallel. [Explanation of symbols]
[0051] 1 Optical fiber cleaver 10 Main Unit 11 Upper body 12 Lower body 13 Connecting piece 14 Holder guide 15 Exposure hole 16 Sliders 17 Catcher 20 Clamp 21 Spindle 22 Upper clamp 23 Lower clamp 25 Magnet 26 Release lever 40 pillows 41 Pillow support piece 50 Blade 60 Chip collection mechanism 61 Case body 62 Inner case 63 Opening and closing lid (example of lid part) 64 Open / close lock lever 65 Case lid 66 Lower roller (an example of a rotating roller) 67 Upper Roller 71 Drive lever (an example of a drive unit) 72 Drive gear (drive part, example of first gear) 73 Idle Gear 74 Torsion spring 611 Support shaft 612 Bearings 631 Bearings 632 Upper roller holding part 641 Axis 642 Lock Section 643 Torsion Spring 644 Lever part 651 Opening 652 Lower roller holding part 661 Sending section 662 Gear (an example of a second gear) 711 axes 712 flange 713 Arm 714 Small axis 715 Opening 715a Stepped down section 715b (flange) inner surface 716 Mounting part 717 Protrusion 721 Base 721a opening 722 Claw 722a (claw) tip Department 722b (claw) step 723 Gear mounting section 724 Gear section 725 Yamabe 726 Protrusion
Claims
1. a clamp that can be opened and closed to hold the optical fiber; a movable blade portion that cuts the optical fiber held by the clamp, Further, a scrap collection mechanism is provided for collecting scraps of the cut optical fiber, the chip collection mechanism includes a case in which the chips are stored, and a lid portion that opens and closes relative to the case in conjunction with an opening and closing operation of the clamp, The chip collection mechanism includes: a rotating roller provided in the case for holding the chips and sending them away from the clamp; a drive unit that transmits an opening operation of the clamp to the lid unit and the rotary roller, the drive unit transmits the closing operation of the clamp to the lid unit but does not transmit the operation to the rotary roller; the drive unit includes a drive lever that interlocks with the clamp and a first gear that rotates in response to operation of the drive lever, the rotating roller has a second gear integrally formed at one end thereof; The first gear is In response to the operation of the drive lever linked to the opening operation of the clamp, the drive lever moves toward the second gear and engages directly or indirectly with the second gear, The optical fiber cutter is configured to move in the opposite direction to the second gear and disengage from the second gear in response to operation of the drive lever linked to the closing operation of the clamp.
2. 2. The optical fiber cutter according to claim 1, wherein the clamp and the cover of the chip collection mechanism rotate about rotation axes parallel to each other to open and close.
Citation Information
Patent Citations
Cable cutting device
CN110850525A
Optical fiber cutter
JP2001296430A
Optical fiber cutter storage case
JP2012003064A
Chip recovery device of optical fiber cutting apparatus
JP2012073375A
Optical fiber cutting device
JP2014089272A