1. Field of the Invention
The present invention relates to a method of measuring bending performance of a resin coated optical fiber.
2. Description of the Background Art
Use of optical fibers having small bend loss has spread with the progress of FTTH (fiber to the home) in recent years. The bend loss of an optical fiber occurs due to bend of the optical fiber. Methods for measuring the bend loss of an optical fiber are specified in ITU-T G.650.1 5.6 “Test methods for the macrobend loss,” and also described in Japanese Patent Application Publication No. H1-203938, Japanese Patent Application Publication No. 2002-310850, and Japanese Patent Application Publication No. 2009-229120. According to these, a bend loss is measured by evaluating differences between transmitted power obtained when an optical fiber is not bent and that obtained when the optical fiber is bent.
As indicated in “Wavelength dependence of bend loss in monomode optical fibers: effect of the fiber buffer coating” by R. Morgan et al., Vol. 15, No. 17, Optics Left. p. 947 (1990), a bend loss is caused because a part of core mode is ejected to a cladding at a bending portion when an optical fiber bends, and a part of the light that has leaked to the cladding (whispering gallery mode) is recombined with the core mode by Fresnel reflection at the interface between a coating layer and air. At the time of such recombination, interference arises between the core mode and the whispering gallery mode, generating an oscillatory component at equal optical frequency spacing in transmission spectrum of the bent optical fiber. As a result, it is difficult to achieve exact measurement of the bend loss.
The smaller the bend radius of an optical fiber, the more remarkable the generation of whispering gallery mode. In recent years, the application of optical fibers in which a small attenuation under a small radius of curvature such as 5 mm or 7.5 mm is guaranteed has increased according to the development of FTTH. However, in the case of such a small radius of curvature, it is difficult to measure the bend loss accurately in a simple manner.
It is known that the whispering gallery mode can be released outside from an optical fiber that is wound around a mandrel if the Fresnel reflection and the total reflection are suppressed at the interface between air and the coating layer of the optical fiber by dipping it in an index-matching liquid. However, as compared with an ordinary measurement, dipping an optical fiber in an index-matching liquid takes time and labor, thereby increasing the working hour and manufacturing cost. Moreover, an additional problem will occur: for example, a product may easily get dirty because of the index-matching liquid.
The object of present invention is to provide a method for measuring the bending performance of an optical fiber in a simple manner.
The method of the invention for measuring bending performance of an optical fiber e comprises: (1) a first step of measuring power P0 of light emitted from one end of an optical fiber when light is incident onto the other end of the optical fiber under conditions where no bend loss occurs in the optical fiber; (2) a second step of winding the optical fiber around a mandrel with a diameter 2R and covering the overall outer circumference of such wound optical fiber with an index matching sheet and subsequently measuring power P1 of light emitted from one end of the optical fiber when light is incident onto the other end of the optical fiber, whereas the refractive index of the index matching sheet substantially matches with the refractive index of resin in the outermost layer of the optical fiber; and (3) a third step of measuring, based on the power P0 measured at the first step and the power P1 measured at the second step, the bend loss of the optical fiber when the optical fiber is bent at the diameter 2R.
According to the method of the present invention for measuring bending performance of the optical fiber, preferably the difference between the refractive index of an index matching sheet and that of resin in the outermost layer of the optical fiber is ±0.3 or less, and more preferably the difference is ±0.1 or less. Preferably, the compression elasticity modulus of the index matching sheet is 50 N/mm2 or less, and more preferably the compression elasticity modulus is 30 N/mm2 or less. The index matching sheet can be made of any one selected from the group consisting of urethane gel, urethane elastomer, and UV resin.
According to the present invention, bending performance of an optical fiber can be measured in a simple manner.
Hereinafter, preferred embodiments of the present invention will be described in reference to the accompanying drawings. The drawings are provided for the purpose of explaining the embodiments and are not intended to limit the scope of the invention. In the drawings, an identical mark represents the same element so that the repetition of explanation may be omitted. The dimensional ratios in the drawings are not always exact.
Preferably, the difference between the refractive index of the index matching sheet 5 and the refractive index of resin in the outermost layer of the optical fiber 1 is ±0.3 or less, and more preferably the difference is ±0.1 or less. Thus, by lessening the difference between the refractive index of the index matching sheet 5 and the refractive index of resin in the outermost layer of the optical fiber 1 so that whispering gallery mode leaks out from the resin-coating layer effectively to the index matching sheet 5, it is made possible to measure the bend loss of the optical fiber 1 more correctly.
The compression elasticity modulus of the index matching sheet 5 is preferably 50 N/mm2 or less, and more preferably 30 N/mm2 or less. Thus, by lessening the compression elasticity modulus of the index matching sheet 5, the overall circumference of the fiber 1 that is wound around the mandrel 2 can be covered with the index matching sheet 5 in such a surrounding manner as to decrease the resin-air interface area. Consequently, the whispering gallery mode will be made to go out more effectively from the resin coating layer to the index matching sheet 5. This will enable measuring the bend loss of the optical fiber 1 more correctly.
It is desirable that the force of the index matching sheet 5 which presses the overall circumference of the optical fiber 1 be 200 g or less. Thus, the increase in micro bend loss due to the stress to the optical fiber 1 will be restrained, allowing exact measurement of bend loss. Preferably, the force with which the circumference of the optical fiber 1 is pressed by the index matching sheet 5 is 50 g or less.
In the case of measuring the cutoff wavelength of the optical fiber 1, the bend loss of high order mode is measured by affording a bend to the optical fiber 1. There is a case where the influence of whispering gallery mode appears similarly to high order mode, thereby decreasing accuracy in the measurement of a cutoff wavelength. In the method of the embodiment of the present invention for measuring bending performance of an optical fiber, it is also possible to restrain the influence of whispering gallery mode in measurement of cutoff wavelength, thereby preventing the degradation of measurement accuracy.
Number | Date | Country | Kind |
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2011-057023 | Mar 2011 | JP | national |