This invention relates to a fusion splicer including a reinforcement treatment device for reinforcing a fusion splice part with a reinforcement sleeve after executing fusion splice of optical fibers by a fusion splicing device.
Fusion splice of optical fibers is executed by removing the fiber coatings of splice ends of the optical fibers and heating and fusing the butt end parts of bare fiber parts of exposed glass. Each bare fiber portion subjected to the fusion splice with the fiber coating removed has weak mechanical strength and thus needs to be protected by a reinforcement member. The reinforcement member usually is formed by adding a tensile strength body (also called a reinforcement rod) in a heat-shrinkable tube shrunk radially by heating and storing a hot-melt adhesive resin material (for example, refer to patent document 1).
In general fusion splice, for example, assuming that the time taken for fusion splice work is 10 to 20 seconds, the time required for reinforcement work is 30 to 135 seconds. Thus, even if the splice work is performed rapidly, if preparations for performing the next reinforcement treatment are delayed or much time is taken for the reinforcement treatment, the total work efficiency cannot be enhanced. Thus, patent document 1 discloses an art of placing an air blower below an electric heater plate of a reinforcement treatment device, providing a temperature sensor, executing forced cooling by the air blower after the termination of the reinforcement treatment, and making a notification of the termination of the reinforcement treatment using the temperature sensor for shortening the time of one cycle.
Patent document 1: Japanese Patent Unexamined Publication No. 6-201938
However, if the time required for the reinforcement treatment is shortened, it cannot be made shorter than the fusion splice work. Each optical fiber in an unreinforced state just after the termination of the fusion splice has weak strength because the bare fiber of glass is exposed; in the situation in which a plurality of optical fibers waiting for being reinforced are accumulated, there is a fear of causing a problem of break, damage, etc., to occur as an external force is added to the fusion splice part. Thus, it is possible to shorten the wait time before completion of the reinforcement treatment by preparing a plurality of reinforcement treatment devices for one fusion splicing device. To efficiently conduct transport from a fusion splicing device to a reinforcement treatment device, a fusion splicer including both a fusion splicing device and a reinforcement treatment device side by side is also considered.
If the time to transition to another reinforcement treatment by detecting the termination of one reinforcement treatment can be shortened as disclosed in patent document 1, the progress state of the reinforcement treatment cannot be known. Thus, what timing fusion splice work is to be performed at cannot be determined and the fusion splice work is advanced consecutively regardless of the progress state of the reinforcement treatment or is executed each time the termination of the reinforcement treatment is detected. The former results in accumulation of a large number of optical fibers waiting for being reinforced and the latter results in an increase in the total work time. If a plurality of reinforcement treatment devices are included, a similar result occurs unless the progress state of each reinforcement treatment device can be known individually; it is difficult to set efficient work allocation.
The invention is embodied considering the realities described above and it is an object of the invention to provide a fusion splicer that can execute fusion splice and reinforcement preparations of optical fibers to be next subjected to reinforcement treatment efficiently at a proper timing by keeping track of the reinforcement treatment progress state to perform fusion splice and reinforcement treatment in parallel with each other.
A fusion splicer according to the invention is a fusion splicer including a fusion splicing device for butting optical fiber end parts against each other and fusing them and a reinforcement treatment device for reinforcing the optical fibers subjected to the fusion splice with a reinforcement sleeve covered thereon, wherein a display for monitoring the state of fusion splice comprises a display function of displaying the progress state of reinforcement treatment. The reinforcement treatment progress state is displayed as temperature rise, heat insulation, cooling information or is displayed as time information or temperature information. If the fusion splicer includes a plurality of reinforcement treatment devices that can be controlled independently, the progress state of each reinforcement treatment device is displayed.
According to the invention, it is made possible to keep track of the progress state of the current reinforcement treatment being executed in real time on the display for monitoring the state of fusion splice, so that fusion splice and preparations for reinforcement treatment of the optical fibers to be next subjected to reinforcement treatment can be executed at good timing. Consequently, the optical fibers whose fusion splice is complete can be transported efficiently from the fusion splicing device to the reinforcement treatment device without standby. If standby occurs, reinforcement treatment can be executed in sequence efficiently in an appropriate standby time without accumulating a large number of optical fibers for waiting. To include a plurality of reinforcement treatment devices that can be operated independently of each other, the reinforcement treatment device that can be next used can be determined and the wait time, etc., becomes obvious, so that preparation work can be conducted efficiently, it is made possible to set non-wasteful work allocation as a whole, and the workability can be enhanced.
An embodiment of the invention will be discussed based on the accompanying drawings.
In the fusion splicer 10 according to the invention, the reinforcement treatment device 12 for performing reinforcement treatment of the fusion part of optical fibers is placed side by side with the fusion splicing device 11 for butting the connection ends of optical fibers against each other and performing fusion splice, and the display 13 for observing the state of the fusion splice portion of optical fibers is provided with a display function for displaying the progress state of reinforcement treatment described later. The fusion splicing device 11 is shown in the figure as an example of fusing single-core optical fibers, but a device of a configuration capable of collectively fusing multicore optical fibers can also be used. For a pair of optical fibers 1 mutually subjected to fusion splice, the fiber coatings 3 of the splice ends are removed for exposing the bare fibers 2 of glass, and either of the optical fibers 1 is previously inserted into the reinforcement sleeve 5.
A pair of optical fibers 1 is set in the fusion splicing device 11 so that the end parts are butted against each other, and is clamped and then core aligning at the butt position is performed. This state can be monitored and checked on the display 13. Upon completion of the fusion splice, the previously inserted reinforcement sleeve 5 is moved for covering the fusion part 4 and the exposed bare fibers 2 of glass on the periphery of the fusion part. Next, the optical fibers just after fused are moved to the reinforcement treatment device 12 and reinforcement treatment is performed.
The reinforcement sleeve 5 is formed of a heat-shrinkable tube and the heat-fused adhesive resin material 6 is entered in the reinforcement sleeve. The reinforcement sleeve 5 is heated for a predetermined time by the reinforcement treatment device 12, whereby it is shrunk, and the internal adhesive resin material 6 is heated and fused, fills the space in the reinforcement sleeve 5, and covers the optical fiber fusion part 4 and the bare fibers 2 on the periphery of the fusion part for increasing the mechanical strength. While the reinforcement treatment is performed, the next optical fiber fusion splice is performed and preparations for the next reinforcement treatment are made.
Further, an outline of the invention will be discussed with
The fusion splicing device 11 has the fusion mechanism 14 including core alignment and discharge means and the observation mechanism 15 for taking in the fusion state as an image, and setting and control are performed based on the management data managed in the control section 18 and the memory 20. The image data acquired by the observation mechanism 15 is subjected to image processing in the control section 18 and is displayed on the display 13. The reinforcement treatment device 12 has the heating mechanism 16 for storing the reinforcement sleeve 5 and heating it and the temperature detection mechanism 17 for detecting the heating state, etc. The heating treatment of the heating mechanism 16 is executed according to a predetermined pattern set and controlled by the control section 18 and the memory 20, and the progress state, time, temperature, etc., is managed or input in the control section 18 and is displayed on the display 13.
However, the whole progress state of the reinforcement treatment may be hard to see only from the display example 25a, 25b of the temperature during the reinforcement treatment. In this case, the display example may be used in combination with the display example 22a, 22b of (%) display in
The display example 25a, 25b of the temperature and the display example 23a, 23b of the operation state of temperature rise, heat insulation, cooling are combined, whereby disturbance elements of the effect of outside air, etc., can be kept track of and settings of the heating temperature, etc., can also be made from the beginning. In addition, the display example 25a, 25b of the temperature and the display example 24a, 24b of time display may be combined or the display example 23a, 23b of displaying the operation state and the display example 24a, 24b of time display may be combined. Further, a display example of displaying the reinforcement treatment progress state on the side of the main screen in
While the invention has been described in detail with reference to the specific embodiments, it will be obvious to those skilled in the art that various changes and modifications can be made without departing from the spirit and the scope of the invention. This application is based on Japanese Patent Application (No. 2006-110454) filed on Apr. 13, 2006, which is incorporated herein by reference.
The display for monitoring the state of fusion splice work is provided with a function of displaying the progress state of the reinforcement treatment performed in parallel with the fusion splice work, whereby it is made possible to efficiently execute fusion splice and preparations for reinforcement treatment of the optical fibers to be next subjected to reinforcement treatment. Consequently, the optical fibers whose fusion splice is complete can be transported efficiently from the fusion splicing device to the reinforcement treatment device without standby. If standby occurs, reinforcement treatment can be executed in sequence efficiently in an appropriate standby time without accumulating a large number of optical fibers for waiting.
Particularly, to include a plurality of reinforcement treatment devices that can be operated independently of each other, the reinforcement treatment device that can be next used can be determined and the wait time, etc., becomes obvious, so that preparation work can be conducted efficiently, it is made possible to set non-wasteful work allocation as a whole, and the workability can be enhanced. The reinforcement treatment progress state can be easily displayed by adding hardware to an existing display, but can also be displayed using software. The reinforcement treatment progress state can be displayed using software with no change made to an existing fusion splicer main body or display.
Number | Date | Country | Kind |
---|---|---|---|
P2006-110454 | Apr 2006 | JP | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
---|---|---|---|---|
PCT/JP2007/058206 | 4/13/2007 | WO | 00 | 4/30/2008 |