IP Library Granted Patent US 11,474,292
Granted Patent B2
US 11,474,292 · App. 16/986,743 · Granted Oct 18, 2022

Multi-core fibers and method of manufacturing the same, and optical transmission system and optical transmission method

Inventor: Kazunori Mukasa (Tokyo, JP)
Assignee: FURUKAWA ELECTRIC CO., LTD.
G02B6/02042C03B37/01214C03B37/027G02B6/4246H04B10/25891H04B10/50H04B10/60H04J14/02
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Quick Facts
Patent No.
US 11,474,292
App. No.
16/986,743
Granted
Oct 18, 2022
Kind
B2
Abstract

A multi-core fiber includes: a plurality of cores; and a cladding portion formed around outer peripheries of the cores. Further, the cores each have a propagation characteristic conforming to any one of a plurality of standards for optical propagation characteristics, and of the cores, cores that are closest to each other conform to standards different from each other.

Claims (31)

1. A multi-core fiber comprising:

a plurality of cores; and

a cladding portion formed around outer peripheries of the plurality of cores,

wherein the plurality of cores each have a propagation characteristic conforming to any one of a plurality of standards for optical propagation characteristics, and of the plurality of cores, cores that are closest to each other conform to standards different from each other,

wherein the standards include ITU-T G.652 standard, G.657A standard, and G.654 standard, and

wherein, of the plurality of cores that are closest to each other, a first core has a propagation characteristic conforming to G.652 standard or G.657A standard, and a second core has a propagation characteristic conforming to G.654 standard.

2. The multi-core fiber according to claim 1 , wherein the propagation characteristic is at least one of a cut-off wavelength, a mode field diameter, a macrobending loss, and a chromatic dispersion characteristic.

3. The multi-core fiber according to claim 2 , wherein the first core and the cladding portion, and the second core and the cladding portion have parameters for specifying a refractive index profile equal to each other except for a core diameter.

4. The multi-core fiber according to claim 3 , wherein the refractive index profiles comprise a step-index type or a trench-index type.

5. The multi-core fiber according to claim 1 , wherein a cladding thickness is in a range from 30 μm to 50 μm.

6. The multi-core fiber according to claim 1 , wherein a distance between the cores that are closest to each other is in a range from 12.5 μm to 32.5 μm.

7. An optical transmission system comprising:

the multi-core fiber according to claim 1 ;

an optical transmission device configured to input a signal light beam into at least one of the plurality of cores of the multi-core fiber; and

an optical reception device configured to receive the signal light beam propagated through the multi-core fiber.

8. An optical transmission system comprising:

a multi-core fiber comprising:

a plurality of cores, and

a cladding portion formed around outer peripheries of the plurality of cores, wherein the plurality of cores each have a propagation characteristic conforming to any one of a plurality of standards for optical propagation characteristics, and of the plurality of cores, cores that are closest to each other conform to standards different from each other;

an optical transmission device configured to input a signal light beam into at least one of the plurality of cores of the multi-core fiber; and

an optical reception device configured to receive the signal light beam propagated through the multi-core fiber, wherein the optical transmission device inputs, to a core that has a propagation characteristic conforming to G.652 standard or G.657A standard, a CWDM signal obtained by wavelength multiplexing a plurality of signal light beams having a wavelength of equal to or greater than 1260 nm, and inputs, to a core that has a propagation characteristic conforming to G.654 standard, a DWDM signal obtained by wavelength multiplexing a plurality of signal light beams having a wavelength of equal to or greater than 1530 nm.

9. An optical transmission system comprising:

a multi-core fiber comprising:

a plurality of cores, and

a cladding portion formed around outer peripheries of the plurality of cores, wherein the plurality of cores each have a propagation characteristic conforming to any one of a plurality of standards for optical propagation characteristics, and of the plurality of cores, cores that are closest to each other conform to standards different from each other;

an optical transmission device configured to input a signal light beam into at least one of the plurality of cores of the multi-core fiber; and

an optical reception device configured to receive the signal light beam propagated through the multi-core fiber, wherein the optical transmission device and the optical reception device are configured to be capable of making bidirectional transmission,

wherein the standards include ITU-T G.652 standard, G.657A standard, and G.654 standard, and

wherein, of the plurality of cores that are closest to each other, a first core has a propagation characteristic conforming to G.652 standard or G.657A standard, and a second core has a propagation characteristic conforming to G.654 standard.

10. An optical transmission method using the optical transmission system as in claim 7 , wherein, by using a core that has a propagation characteristic conforming to G.652 standard or G.657A standard, CWDM optical transmission is made that uses a CWDM signal light beam obtained by wavelength multiplexing a plurality of signal light beams having a wavelength of equal to or greater than 1260 nm, and, by using a core that has a propagation characteristic conforming to G.654 standard, DWDM optical transmission is made that uses a DWDM signal light beam obtained by wavelength multiplexing a plurality of signal light beams having a wavelength of equal to or greater than 1530 nm.

11. An optical transmission method using the optical transmission system as in claim 7 , wherein bidirectional transmission is made.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 6, 2020
From: MUKASA, KAZUNORI
To: FURUKAWA ELECTRIC CO., LTD.
Reel/Frame 053420/0919 →
Priority Claims (1)
JP JP2018-034619 · Feb 28, 2018 · national
Continuity (2)
Continuation PCTJP2019007639 · Feb 27, 2019
Related Publication 20200379168A1 · Dec 3, 2020