Patents by Inventor Ryo Miyabe
Ryo Miyabe has filed for patents to protect the following inventions. This listing includes patent applications that are pending as well as patents that have already been granted by the United States Patent and Trademark Office (USPTO).
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Patent number: 11079537Abstract: An optical fiber has a core to which chlorine is added and a clad to which fluorine is added, chlorine of 9000 to 13000 ppm is added to the core, a relative refractive index difference ?1 of the core to a pure silica glass is 0.09 to 0.13%, a relative refractive index difference ?2 of the clad to a pure silica glass is ?0.36 to ?0.17%, a difference (?1-?2) between the relative refractive index difference ?1 of the core and the relative refractive index difference ?2 of the clad is larger than or equal to 0.30%, a mode field diameter at wavelength 1.31 ?m is 8.8 to 9.6 ?m, and a stress difference occurring at an interface between the core and the clad is lower than or equal to 60 MPa.Type: GrantFiled: September 5, 2019Date of Patent: August 3, 2021Assignee: FURUKAWA ELECTRIC CO., LTD.Inventors: Ryo Miyabe, Keiichi Aiso
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Publication number: 20190391323Abstract: Provided are an optical fiber and a manufacturing method of the optical fiber that can reduce transmission loss even when drawing is performed at a high tension and a high rate. An optical fiber has a core to which chlorine is added and a clad to which fluorine is added, chlorine of 9000 to 13000 ppm is added to the core, a relative refractive index difference ?1 of the core to a pure silica glass is 0.09 to 0.13%, a relative refractive index difference ?2 of the clad to a pure silica glass is ?0.36 to ?0.17%, a difference (?1??2) between the relative refractive index difference ?1 of the core and the relative refractive index difference ?2 of the clad is larger than or equal to 0.30%, a mode field diameter at wavelength 1.31 ?m is 8.8 to 9.6 ?m, and a stress difference occurring at an interface between the core and the clad is lower than or equal to 60 MPa.Type: ApplicationFiled: September 5, 2019Publication date: December 26, 2019Applicant: FURUKAWA ELECTRIC CO., LTD.Inventors: Ryo MIYABE, Keiichi AISO
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Patent number: 9783450Abstract: A method of producing a glass preform including: forming a porous glass soot configured by an inner deposition soot deposited on a start material and an outer deposition soot deposited outside the inner deposition soot; and sintering, after the forming, the porous glass soot while doping with fluorine to form a glass body including an inner glass portion and an outer glass layer. An amount of the fluorine, with which the inner deposition soot is doped at the sintering, is equal to or more than 0 g/cm3 and less than an amount of the fluorine with which the outer deposition soot is doped.Type: GrantFiled: July 28, 2015Date of Patent: October 10, 2017Assignee: FURUKAWA ELECTRIC CO., LTD.Inventors: Ryo Miyabe, Keiichi Aiso, Naomi Kumano
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Patent number: 9695079Abstract: A production method of an optical fiber preform includes first preparing a first preform having a plurality of glass preforms and a first cladding portion disposed between the plurality of glass preforms, and first arranging a second cladding portion to surround the first preform. At the first arranging, a material gas and a combustion gas are ejected from a burner to produce glass particles. The first preform and the burner are moved relative to each other in a longitudinal direction of the first preform. The glass particles are deposited on the first preform.Type: GrantFiled: October 22, 2015Date of Patent: July 4, 2017Assignee: FURUKAWA ELECTRIC CO., LTD.Inventors: Tomohiro Gonda, Katsunori Imamura, Ryo Miyabe, Ryuichi Sugizaki
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Publication number: 20160347645Abstract: A production method of an optical fiber preform includes: preparing a plurality of bar-shaped first preforms and a plurality of second preforms including through holes having substantially same shape with a shape of outer periphery of a cross section of the first preform, the cross section being orthogonal to a major axis of the first preform; and an assembly step of: matching the through holes of the second preforms to make communication holes; and inserting, through each of the communication holes, at least two of the first preforms arranged side by side in a direction of the major axis such that the second preforms and the first preforms are fitting each other. In at least one position in the direction of the major axis of the communication holes, a position where the second preforms contact with each other differs from a position where the first preforms contact with each other.Type: ApplicationFiled: August 9, 2016Publication date: December 1, 2016Applicant: FURUKAWA ELECTRIC CO., LTD.Inventors: Tomohiro GONDA, Ryo MIYABE, Katsunori IMAMURA, Tsunetoshi SAITO, Ryuichi SUGIZAKI
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Publication number: 20160075590Abstract: A production method of an optical fiber preform includes first preparing a first preform having a plurality of glass preforms and a first cladding portion disposed between the plurality of glass preforms, and first arranging a second cladding portion to surround the first preform. At the first arranging, a material gas and a combustion gas are ejected from a burner to produce glass particles. The first preform and the burner are moved relative to each other in a longitudinal direction of the first preform. The glass particles are deposited on the first preform.Type: ApplicationFiled: October 22, 2015Publication date: March 17, 2016Applicant: FURUKAWA ELECTRIC CO., LTD.Inventors: Tomohiro GONDA, Katsunori IMAMURA, Ryo MIYABE, Ryuichi SUGIZAKI
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Patent number: 9225141Abstract: A multi-core amplification optical fiber includes a plurality of rare-earth-doped core portions and a cladding portion positioned at an outer periphery of the core portions and having refractive index lower than those of the core portions. When a doping concentration of the rare-earth of each of the core portions is 250 ppm to 2000 ppm, a relative refractive index difference of each of the core portions relative to the cladding portion is 0.5% to 2% at a wavelength of 1550 nm, and a core diameter of each of the core portions is 1 ?m to 5 ?m, a separation distance between each of the core portions and adjacent one of the core portions is set at equal to or larger than 30 ?m and at equal to or smaller than 60 ?m so that a light-crosstalk between the adjacent core portions is equal to or lower than ?30 dB.Type: GrantFiled: April 4, 2014Date of Patent: December 29, 2015Assignee: FURUKAWA ELECTRIC CO., LTD.Inventors: Yukihiro Tsuchida, Koichi Maeda, Yu Mimura, Hiroshi Matsuura, Kengo Watanabe, Tsunetoshi Saito, Ryo Miyabe, Shigeto Matsumoto, Keiichi Aiso, Ryuichi Sugizaki
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Publication number: 20150329404Abstract: A method of producing a glass preform including: forming a porous glass soot configured by an inner deposition soot deposited on a start material and an outer deposition soot deposited outside the inner deposition soot; and sintering, after the forming, the porous glass soot while doping with fluorine to form a glass body including an inner glass portion and an outer glass layer. An amount of the fluorine, with which the inner deposition soot is doped at the sintering, is equal to or more than 0 g/cm3 and less than an amount of the fluorine with which the outer deposition soot is doped.Type: ApplicationFiled: July 28, 2015Publication date: November 19, 2015Applicant: FURUKAWA ELECTRIC CO., LTD.Inventors: Ryo MIYABE, Keiichi AISO, Naomi KUMANO
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Publication number: 20140240819Abstract: A multi-core amplification optical fiber includes a plurality of rare-earth-doped core portions and a cladding portion positioned at an outer periphery of the core portions and having refractive index lower than those of the core portions. When a doping concentration of the rare-earth of each of the core portions is 250 ppm to 2000 ppm, a relative refractive index difference of each of the core portions relative to the cladding portion is 0.5% to 2% at a wavelength of 1550 nm, and a core diameter of each of the core portions is 1 ?m to 5 ?m, a separation distance between each of the core portions and adjacent one of the core portions is set at equal to or larger than 30 ?m and at equal to or smaller than 60 ?m so that a light-crosstalk between the adjacent core portions is equal to or lower than ?30 dB.Type: ApplicationFiled: April 4, 2014Publication date: August 28, 2014Applicant: FURUKAWA ELECTRIC CO., LTD.Inventors: Yukihiro TSUCHIDA, Koichi Maeda, Yu Mimura, Hiroshi Matsuura, Kengo Watanabe, Tsunetoshi Saito, Ryo Miyabe, Shigeto Matsumoto, Keiichi Aiso, Ryuichi Sugizaki
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Publication number: 20130336343Abstract: An optical fiber has: a core made of silica glass in which a rare earth element and aluminum have been added; an inner cladding layer that is formed around the core, is made of silica glass in which at least any one of an alkali metal and an alkali earth metal has been added, and has a refractive index lower than a refractive index of the core; and an outer cladding layer that is formed around the inner cladding layer and has a refractive index lower than the refractive index of the inner cladding layer.Type: ApplicationFiled: August 22, 2013Publication date: December 19, 2013Applicant: Furukawa Electric Co., Ltd.Inventors: Ryo MIYABE, Keiichi Aiso
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Patent number: 8233761Abstract: An optical fiber includes a core region having a first refractive index and a cladding region having a second refractive index lower than the first refractive index on an outer circumference of the core region. The cladding region includes four holes formed to have a four-fold rotational symmetry with respect to a center axis around the core region in a longitudinal direction, such that a zero-dispersion wavelength is 900 nm to 1150 nm and a cutoff wavelength is equal to or shorter than 950 nm.Type: GrantFiled: June 3, 2010Date of Patent: July 31, 2012Assignee: The Furukawa Electric Co., Ltd.Inventors: Ryo Miyabe, Keiichi Aiso
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Patent number: 7826701Abstract: An optical fiber includes a core region having a first refractive index and a cladding region having a second refractive index lower than the first refractive index on an outer circumference of the core region. The cladding region includes four holes formed to have a four-fold rotational symmetry with respect to a center axis around the core region in a longitudinal direction, such that a zero-dispersion wavelength is 900 nm to 1150 nm and a cutoff wavelength is equal to or shorter than 950 nm.Type: GrantFiled: August 6, 2008Date of Patent: November 2, 2010Assignee: The Furukawa Electric Co., Ltd.Inventors: Ryo Miyabe, Keiichi Aiso
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Patent number: 7809223Abstract: A polarization-maintaining optical fiber includes a core region and a cladding region formed around the core region. The cladding region has a refractive index lower than a refractive index of the core region. A refractive index profile of the core region is either one of a step shaped or a concave shaped. The cladding region includes two holes formed in such a manner that a shortest distance from the core region is virtually zero at locations in opposite to each other across the core region.Type: GrantFiled: July 8, 2008Date of Patent: October 5, 2010Assignee: The Furukawa Electric Co., LtdInventors: Ryo Miyabe, Yu Mimura
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Publication number: 20100239217Abstract: An optical fiber includes a core region having a first refractive index and a cladding region having a second refractive index lower than the first refractive index on an outer circumference of the core region. The cladding region includes four holes formed to have a four-fold rotational symmetry with respect to a center axis around the core region in a longitudinal direction, such that a zero-dispersion wavelength is 900 nm to 1150 nm and a cutoff wavelength is equal to or shorter than 950 nm.Type: ApplicationFiled: June 3, 2010Publication date: September 23, 2010Applicant: FURUKAWA ELECTRIC CO., LTD.Inventors: Ryo MIYABE, Keiichi Aiso
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Patent number: 7756375Abstract: A core region is doped with an impurity. A first cladding region is formed in a layered structure around the core region, including a microstructure. A second cladding region is formed in a layered structure around the first cladding region, including a homogeneous material. A relative refractive-index difference ?1 between the core region and the second cladding region is equal to or more than 0.4% and equal to or less than 1.0%.Type: GrantFiled: March 20, 2006Date of Patent: July 13, 2010Assignee: The Furukawa Electric Co., Ltd.Inventors: Ryo Miyabe, Ryuichi Sugizaki
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Patent number: 7715674Abstract: An optical fiber in which the macro-bending loss is lowered while an MFD is maintained large, and a waveguide including the optical fiber. The optical fiber includes a core region doped with an impurity; a first cladding region formed as a layer around the core region and including holes as microstructures; and a second cladding region formed as a layer around the first cladding region and made of a homogeneous material. A relative refractive-index difference ?1 between the core region and the second cladding region is equal to or higher than 0.01% and lower than 0.3%. A total cross-sectional area of the holes in the first cladding region with respect to a total cross-sectional area of the core region, the first cladding region, and the second cladding region is equal to or smaller than 20%. A waveguide is formed using the optical fiber.Type: GrantFiled: March 20, 2006Date of Patent: May 11, 2010Assignee: The Furukawa Electric Co., Ltd.Inventors: Ryo Miyabe, Ryuichi Sugizaki
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Patent number: 7668428Abstract: An optical fiber includes a core region and a cladding region formed on an outer circumference of the core region. The cladding region includes a plurality of holes arranged around the core region and has a refractive index lower than a refractive index of the core region. A zero dispersion wavelength of the optical fiber is shorter than 1150 nanometers. The optical fiber propagates a light having a wavelength longer than 1000 nanometers exclusively in a fundamental mode of LP01 mode. An effective core area of the optical fiber is equal to or smaller than 12.0 ?m2 at a wavelength of 1064 nanometers.Type: GrantFiled: March 18, 2009Date of Patent: February 23, 2010Assignee: The Furukawa Electric Co., Ltd.Inventors: Ryo Miyabe, Kazunori Mukasa
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Publication number: 20090274427Abstract: An optical fiber includes a core region and a cladding region formed on an outer circumference of the core region. The cladding region includes a plurality of holes arranged around the core region and has a refractive index lower than a refractive index of the core region. A zero dispersion wavelength of the optical fiber is shorter than 1150 nanometers. The optical fiber propagates a light having a wavelength longer than 1000 nanometers exclusively in a fundamental mode of LP01 mode. An effective core area of the optical fiber is equal to or smaller than 12.0 ?m2 at a wavelength of 1064 nanometers.Type: ApplicationFiled: March 18, 2009Publication date: November 5, 2009Applicant: THE FURUKAWA ELECTRIC CO., LTD.Inventors: Ryo MIYABE, Kazunori Mukasa
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Patent number: 7529453Abstract: An optical fiber includes a core region and a cladding region. The cladding region includes a first cladding region on outer circumference of the core region, which includes a main-medium region and a sub-medium region having a refractive index lower than that of the main-medium region. The sub-medium region includes a plurality of inner sub-medium regions arranged along the outer circumference of the core region and a plurality of outer sub-medium regions arranged on outer of the inner sub-medium regions. The outer sub-medium regions have a lateral cross section larger than that of the inner sub-medium regions.Type: GrantFiled: September 13, 2006Date of Patent: May 5, 2009Assignee: The Furukawa Electric Co., Ltd.Inventors: Ryo Miyabe, Yu Mimura
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Patent number: 7502540Abstract: An optical fiber includes a core region and a cladding region. The cladding region includes a first cladding region on an outer circumference of the core region, the first cladding region including a main-medium region and a sub-medium region having a refractive index lower than a refractive index of the main-medium region. The sub-medium region includes inner sub-medium regions arranged at four folds rotationally symmetric centering on the core region, and outer sub-medium regions arranged at four folds rotationally symmetric centering on the core region on an outer side of the inner sub-medium regions.Type: GrantFiled: September 13, 2006Date of Patent: March 10, 2009Assignee: The Furukawa Electric Co., Ltd.Inventors: Ryo Miyabe, Yu Mimura