OPTICAL FIBER, COATED OPTICAL FIBER, AND OPTICAL TRANSMISSION SYSTEM
20200333528 ยท 2020-10-22
Inventors
Cpc classification
G02B6/03611
PHYSICS
G02B6/02395
PHYSICS
G02B6/02019
PHYSICS
C03B2203/23
CHEMISTRY; METALLURGY
International classification
Abstract
The optical fiber has an effective area that is greater than or equal to 110 m.sup.2 and less than or equal to 180 m.sup.2 at a wavelength of 1550 nm and a cable cut-off wavelength of less than or equal to 1530 nm. An average value of a glass outer diameter in a longitudinal direction is 1250.5 m. When is a standard deviation of the glass outer diameter in the longitudinal direction, 3 is greater than or equal to 0.1 m and less than or equal to 0.5 m.
Claims
1. An optical fiber comprising a glass portion, the glass portion including a core and a cladding that surrounds the core and has a refractive index lower than a refractive index of the core, wherein the glass portion has an outer diameter having an average value and a standard deviation in the longitudinal direction, the average value being 1250.5 m and a triple value of the standard deviation being greater than or equal to 0.1 m and less than or equal to 0.5 m, and wherein the optical fiber has an effective area that is greater than or equal to 110 m.sup.2 and less than or equal to 180 m.sup.2 at a wavelength of 1550 nm and a cable cut-off wavelength that is less than or equal to 1530 nm.
2. The optical fiber according to claim 1, wherein the cladding includes an inner cladding that surrounds the core, and an outer cladding that surrounds the inner cladding and has a refractive index higher than the refractive index of the inner cladding.
3. The optical fiber according to claim 2, wherein the core includes a center core, and a ring core that surrounds the center core and has a refractive index higher than a refractive index of the center core.
4. The optical fiber according to claim 1, wherein the optical fiber has a transmission loss of less than or equal to 0.174 dB/km at the wavelength of 1550 nm.
5. The optical fiber according to claim 4, wherein the cladding includes an inner cladding that surrounds the core, and an outer cladding that surrounds the inner cladding and has a refractive index higher than the refractive index of the inner cladding.
6. The optical fiber according to claim 5, wherein the core includes a center core, and a ring core that surrounds the center core and has a refractive index higher than a refractive index of the center core.
7. A coated optical fiber comprising: the optical fiber according to claim 1; a coating that surrounds the optical fiber and includes two protective coating layers; and a color layer that surrounds the coating and has an outer diameter that is greater than or equal to 180 m and less than or equal to 210 m.
8. An optical transmission system comprising; the optical fiber according to claim 1, the optical fiber serving as an optical transmission line that transmits signal light.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWING
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DETAILED DESCRIPTION OF THE INVENTION
[0014] An embodiment will now be described in detail with reference to the drawings. In the description referring to the drawings, the same elements are denoted by the identical reference numerals, and redundant description is thus omitted. The present invention is not limited to examples described below. The present invention is defined by the scope of the claims, and is intended to include equivalents to the scope of the claims and all modifications within the scope.
[0015] According to the related art, the effective area of an optical fiber has been increased and the bending loss characteristics of the optical fiber have been improved by improving the refractive index profile of the optical fiber. However, in such a case, it is difficult to improve the characteristics without making the refractive index profile complex and reducing mass productivity (manufacturing tolerance).
[0016] The variation in the glass outer diameter of an optical fiber in the longitudinal direction can be easily adjusted by adjusting conditions, for example, a drawing speed, in the step of drawing an optical fiber preform. The core diameter varies in proportion to the amount of variation in the outer diameter. As the amount of variation in the core diameter increases, the light wave that propagates through the core is more easily coupled to the cladding mode, and the leakage loss increases.
[0017] As the difference in effective refractive index between the propagated light and the cladding mode decreases, the propagated light is more easily coupled to the cladding mode. Among the propagated light, the high-order mode has an effective area larger than that of the fundamental mode. Therefore, the effective refractive index of the high-order mode is low due to the cladding having a low refractive index, and the difference in effective refractive index between the high-order mode and the cladding mode is small. Accordingly, the high-order mode easily causes leakage loss in response to the variation in glass diameter. Therefore, by appropriately controlling the range of variation in the glass outer diameter of the optical fiber in the longitudinal direction, only the scattering loss of the high-order mode can be increased while the scattering loss of the fundamental mode is maintained low. As a result, the effective area can be increased while the cut-off wavelength is maintained within a desired range.
[0018] An optical fiber having a radial refractive index profile illustrated in
[0019] The optical fiber illustrated in
[0020]
[0021]
[0022] The radial refractive index profile of the optical fiber according to the present invention is not limited to that illustrated in
[0023] In particular, when the optical fiber has the refractive index profile illustrated in
[0024] The present disclosure provides an optical fiber having an increased effective area and improved bending loss characteristics without making the shape of the refractive index profile of the optical fiber excessively complex. The variation in the glass outer diameter can be easily controlled by adjusting the drawing conditions, and therefore it is not necessary to design a complex refractive index profile. Accordingly, the optical fiber is expected to be suitable for mass production.
[0025] As illustrated in
[0026] The glass fiber 10 of the coated optical fiber 1 is the optical fiber according to the present disclosure including a core 11, an inner cladding 12, and an outer cladding 13. The outer diameter of the color layer 30 is greater than or equal to 180 m and less than or equal to 210 m. The coated optical fiber 1, which has such a small diameter, may have improved bending loss characteristics.
[0027]
REFERENCE SIGNS LIST
[0028] 1: coated optical fiber, 10: glass fiber, 20: coating, 21, 22: protective coating layer, 30: color layer, 100: optical transmission system, 110: optical transmitter, 120: optical receiver, 130: optical transmission line