WO2020005606A1 - Enhanced microbend sensor - Google Patents

Enhanced microbend sensor Download PDF

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Publication number
WO2020005606A1
WO2020005606A1 PCT/US2019/037426 US2019037426W WO2020005606A1 WO 2020005606 A1 WO2020005606 A1 WO 2020005606A1 US 2019037426 W US2019037426 W US 2019037426W WO 2020005606 A1 WO2020005606 A1 WO 2020005606A1
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fiber
single mode
mode
multimode
multimode fiber
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French (fr)
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Scott Robertson Bickham
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Corning Inc
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Corning Inc
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Priority to GB2020261.0A priority patent/GB2588058B/en
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    • GPHYSICS
    • G01MEASURING; TESTING
    • G01DMEASURING NOT SPECIALLY ADAPTED FOR A SPECIFIC VARIABLE; ARRANGEMENTS FOR MEASURING TWO OR MORE VARIABLES NOT COVERED IN A SINGLE OTHER SUBCLASS; TARIFF METERING APPARATUS; MEASURING OR TESTING NOT OTHERWISE PROVIDED FOR
    • G01D5/00Mechanical means for transferring the output of a sensing member; Means for converting the output of a sensing member to another variable where the form or nature of the sensing member does not constrain the means for converting; Transducers not specially adapted for a specific variable
    • G01D5/26Mechanical means for transferring the output of a sensing member; Means for converting the output of a sensing member to another variable where the form or nature of the sensing member does not constrain the means for converting; Transducers not specially adapted for a specific variable characterised by optical transfer means, i.e. using infrared, visible, or ultraviolet light
    • G01D5/32Mechanical means for transferring the output of a sensing member; Means for converting the output of a sensing member to another variable where the form or nature of the sensing member does not constrain the means for converting; Transducers not specially adapted for a specific variable characterised by optical transfer means, i.e. using infrared, visible, or ultraviolet light with attenuation or whole or partial obturation of beams of light
    • G01D5/34Mechanical means for transferring the output of a sensing member; Means for converting the output of a sensing member to another variable where the form or nature of the sensing member does not constrain the means for converting; Transducers not specially adapted for a specific variable characterised by optical transfer means, i.e. using infrared, visible, or ultraviolet light with attenuation or whole or partial obturation of beams of light the beams of light being detected by photocells
    • G01D5/353Mechanical means for transferring the output of a sensing member; Means for converting the output of a sensing member to another variable where the form or nature of the sensing member does not constrain the means for converting; Transducers not specially adapted for a specific variable characterised by optical transfer means, i.e. using infrared, visible, or ultraviolet light with attenuation or whole or partial obturation of beams of light the beams of light being detected by photocells influencing the transmission properties of an optical fibre
    • G01D5/35338Mechanical means for transferring the output of a sensing member; Means for converting the output of a sensing member to another variable where the form or nature of the sensing member does not constrain the means for converting; Transducers not specially adapted for a specific variable characterised by optical transfer means, i.e. using infrared, visible, or ultraviolet light with attenuation or whole or partial obturation of beams of light the beams of light being detected by photocells influencing the transmission properties of an optical fibre using other arrangements than interferometer arrangements
    • G01D5/35341Sensor working in transmission
    • G01D5/35351Sensor working in transmission using other means to detect the measured quantity
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01DMEASURING NOT SPECIALLY ADAPTED FOR A SPECIFIC VARIABLE; ARRANGEMENTS FOR MEASURING TWO OR MORE VARIABLES NOT COVERED IN A SINGLE OTHER SUBCLASS; TARIFF METERING APPARATUS; MEASURING OR TESTING NOT OTHERWISE PROVIDED FOR
    • G01D5/00Mechanical means for transferring the output of a sensing member; Means for converting the output of a sensing member to another variable where the form or nature of the sensing member does not constrain the means for converting; Transducers not specially adapted for a specific variable
    • G01D5/26Mechanical means for transferring the output of a sensing member; Means for converting the output of a sensing member to another variable where the form or nature of the sensing member does not constrain the means for converting; Transducers not specially adapted for a specific variable characterised by optical transfer means, i.e. using infrared, visible, or ultraviolet light
    • G01D5/32Mechanical means for transferring the output of a sensing member; Means for converting the output of a sensing member to another variable where the form or nature of the sensing member does not constrain the means for converting; Transducers not specially adapted for a specific variable characterised by optical transfer means, i.e. using infrared, visible, or ultraviolet light with attenuation or whole or partial obturation of beams of light
    • G01D5/34Mechanical means for transferring the output of a sensing member; Means for converting the output of a sensing member to another variable where the form or nature of the sensing member does not constrain the means for converting; Transducers not specially adapted for a specific variable characterised by optical transfer means, i.e. using infrared, visible, or ultraviolet light with attenuation or whole or partial obturation of beams of light the beams of light being detected by photocells
    • G01D5/353Mechanical means for transferring the output of a sensing member; Means for converting the output of a sensing member to another variable where the form or nature of the sensing member does not constrain the means for converting; Transducers not specially adapted for a specific variable characterised by optical transfer means, i.e. using infrared, visible, or ultraviolet light with attenuation or whole or partial obturation of beams of light the beams of light being detected by photocells influencing the transmission properties of an optical fibre
    • G01D5/3537Optical fibre sensor using a particular arrangement of the optical fibre itself
    • G01D5/35374Particular layout of the fiber
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01DMEASURING NOT SPECIALLY ADAPTED FOR A SPECIFIC VARIABLE; ARRANGEMENTS FOR MEASURING TWO OR MORE VARIABLES NOT COVERED IN A SINGLE OTHER SUBCLASS; TARIFF METERING APPARATUS; MEASURING OR TESTING NOT OTHERWISE PROVIDED FOR
    • G01D5/00Mechanical means for transferring the output of a sensing member; Means for converting the output of a sensing member to another variable where the form or nature of the sensing member does not constrain the means for converting; Transducers not specially adapted for a specific variable
    • G01D5/26Mechanical means for transferring the output of a sensing member; Means for converting the output of a sensing member to another variable where the form or nature of the sensing member does not constrain the means for converting; Transducers not specially adapted for a specific variable characterised by optical transfer means, i.e. using infrared, visible, or ultraviolet light
    • G01D5/32Mechanical means for transferring the output of a sensing member; Means for converting the output of a sensing member to another variable where the form or nature of the sensing member does not constrain the means for converting; Transducers not specially adapted for a specific variable characterised by optical transfer means, i.e. using infrared, visible, or ultraviolet light with attenuation or whole or partial obturation of beams of light
    • G01D5/34Mechanical means for transferring the output of a sensing member; Means for converting the output of a sensing member to another variable where the form or nature of the sensing member does not constrain the means for converting; Transducers not specially adapted for a specific variable characterised by optical transfer means, i.e. using infrared, visible, or ultraviolet light with attenuation or whole or partial obturation of beams of light the beams of light being detected by photocells
    • G01D5/353Mechanical means for transferring the output of a sensing member; Means for converting the output of a sensing member to another variable where the form or nature of the sensing member does not constrain the means for converting; Transducers not specially adapted for a specific variable characterised by optical transfer means, i.e. using infrared, visible, or ultraviolet light with attenuation or whole or partial obturation of beams of light the beams of light being detected by photocells influencing the transmission properties of an optical fibre
    • G01D5/3537Optical fibre sensor using a particular arrangement of the optical fibre itself
    • G01D5/3538Optical fibre sensor using a particular arrangement of the optical fibre itself using a particular type of fiber, e.g. fibre with several cores, PANDA fiber, fiber with an elliptic core or the like
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B6/00Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings
    • G02B6/02Optical fibres with cladding with or without a coating
    • G02B6/028Optical fibres with cladding with or without a coating with core or cladding having graded refractive index
    • G02B6/0288Multimode fibre, e.g. graded index core for compensating modal dispersion
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B6/00Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings
    • G02B6/10Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings of the optical waveguide type
    • G02B6/12Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings of the optical waveguide type of the integrated circuit kind
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B6/00Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings
    • G02B6/10Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings of the optical waveguide type
    • G02B6/12Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings of the optical waveguide type of the integrated circuit kind
    • G02B2006/12083Constructional arrangements
    • G02B2006/1209Multimode
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B6/00Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings
    • G02B6/10Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings of the optical waveguide type
    • G02B6/12Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings of the optical waveguide type of the integrated circuit kind
    • G02B2006/12133Functions
    • G02B2006/12138Sensor
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B6/00Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings
    • G02B6/24Coupling light guides
    • G02B6/26Optical coupling means
    • G02B6/262Optical details of coupling light into, or out of, or between fibre ends, e.g. special fibre end shapes or associated optical elements

Definitions

  • the present disclosure relates to optical fiber sensors. More specifically, the present
  • disclosure relates to optical fiber sensors with enhanced microbend sensitivity.
  • Optical fiber sensors are often deployed in environments where electrical sensors are not practical due to the presence of electromagnetic fields or corrosive chemicals.
  • the optical fiber sensors may be utilized to measure changes in thermal or mechanical properties in the environments where they are deployed.
  • an active monitoring unit is employed that transmits light from a light source into a passive fiber sensor.
  • the light source is often either a laser with a tunable output wavelength or a broadband light source.
  • Backscattered, transmitted, or reflected light is then collected by a detector in the monitoring unit and processed or converted into data that provides information relating to strain and/or temperature variations experienced by the optical fiber sensor in the environment where the fiber sensor is deployed.
  • an optical fiber sensor includes a first single mode fiber, a second single mode fiber, and a multimode fiber positioned between, and coupled to, the first single mode fiber and the second single mode fiber.
  • the multimode fiber includes a graded-index core with an outer diameter between about 35 pm and about 45 pm.
  • a numerical aperture of the core of the multimode fiber is between about 0.15 and about 0.25.
  • the multimode fiber includes a cladding with an outer diameter between about 70 pm and about 90 pm.
  • a coupling strength of an LPoi mode of the first single mode fiber to each of an LP02 mode and an LP03 mode of the multimode fiber is at least about 0.25.
  • an optical fiber sensor includes a first single mode fiber, a second single mode fiber, and a multimode fiber positioned between, and coupled to, the first single mode fiber and the second single mode fiber.
  • the multimode fiber includes a graded-index core with an outer radius of about 20 pm.
  • a numerical aperture of the core of the multimode fiber is about 0.20 at a wavelength of 1550 nm.
  • a cladding of the multimode fiber has an outer radius of about 40 pm.
  • An LPoi mode of the first single mode fiber is closely matched to a central positive lobe of an LP02 mode of the multimode fiber such that a coupling strength of the LP01 mode of the first single mode fiber to each of an LP02 mode and an LP03 mode of the multimode fiber is at least about 0.25 at a wavelength of 1550 nm.
  • the coupling strength of the LP01 mode of the first single mode fiber to the LP02 mode of the multimode fiber is at least about 0.35.
  • the coupling strength of the LP01 mode of the first single mode fiber to the LP03 mode of the multimode fiber is at least about 0.28.
  • the LP02 and the LP03 modes of the multimode fiber coherently interfere as light propagates through the multimode fiber.
  • a coupling strength of an LP01 mode of the second single mode fiber to the LP02 mode of the multimode fiber is at least about 0.40.
  • the coupling strength of the LP01 mode of the first single mode fiber to the LP03 mode of the multimode fiber is at least about 0.30.
  • the coupling strength of the LP01 mode of the first single mode fiber to an LP01 mode of the multimode fiber is less than about 0.90.
  • the coupling strength of the LP01 mode of the first single mode fiber to an LP01 mode of the multimode fiber is less than about 0.85.
  • the coupling strength of the LP01 mode of the first single mode fiber to the LP03 mode of the multimode fiber is at least about 0.30.
  • the first single mode fiber has a core having an outer diameter between about 4 pm and about 8 pm and a maximum relative refractive index between about 0.4% and about 1.2%, and a cladding diameter between about 70 pm and about 90 pm.
  • the second single mode fiber has a core having an outer diameter between about 4 pm and about 8 pm and a maximum relative refractive index between about 0.4% and about 1.2%, and a cladding diameter between about 70 pm and about 90 pm.
  • F1G. 1 is a front elevated view of a section of an optical fiber, illustrating a core, a cladding, and a coating;
  • F1G. 2 is a schematic representation of an optical fiber sensor, according to one
  • F1G. 3 A is a plot of relative refractive index versus radius for a multimode fiber, according to one embodiment
  • F1G. 3B is a plot of relative refractive index versus radius for a single mode fiber, according to one embodiment
  • F1G. 4A is a plot depicting electric fields for various modes of a first example single mode fiber and a multimode fiber;
  • F1G. 4B is a plot depicting electric fields for various modes of a second example single mode fiber and the multimode fiber;
  • F1G. 4C is a plot depicting a coupling strength between a fundamental mode of the first example single mode fiber and various modes of the multimode fiber.
  • F1G. 4D is a plot depicting a coupling strength between a fundamental mode of the second example single mode fiber and various modes of the multimode fiber.
  • the term“and/or,” when used in a list of two or more items, means that any one of the listed items can be employed by itself, or any combination of two or more of the listed items can be employed.
  • the composition can contain A alone; B alone; C alone; A and B in combination; A and C in combination; B and C in combination; or A, B, and C in combination.
  • Coupled in all of its forms: couple
  • coupling, coupled, etc. generally means the joining of two components directly or indirectly to one another. Such joining may be stationary in nature or movable in nature. Such joining may be achieved with the two components and any additional intermediate members being integrally formed as a single unitary body with one another or with the two components.
  • Such joining may be permanent in nature, or may be removable or releasable in nature, unless otherwise stated.
  • a“substantially planar” surface is intended to denote a surface that is planar or approximately planar.
  • “substantially” is intended to denote that two values are equal or approximately equal ln some embodiments,“substantially” may denote values within about 10% of each other, such as within about 5% of each other, or within about 2% of each other.
  • the abbreviation“pm” stands for micron or micrometer.
  • The“relative refractive index” as used herein is defined as: n 2 (r)— n c 2 l
  • n(r) is the refractive index of the fiber at a radial distance, r, from the fiber’s centerline, unless otherwise specified
  • n ci is the index of the outer cladding.
  • the relative refractive index percent is represented by D (or“delta”), D% (or“delta %”), or %, all of which are used interchangeably herein, and its values are given in units of percent or %, unless otherwise specified.
  • Relative refractive index may also be expressed as D(G) or D(G)%.
  • the refractive index profile for the core of an optical fiber may often be represented by
  • D% D 0 -Q
  • Do is the maximum relative refractive index of the core, a, is the radius of the core and a, or alpha, is a curvature parameter.
  • Cores that have refractive index profiles with alpha values less than about 5 are referred to as graded-index cores
  • cores with refractive index profiles with alpha values greater than about 20 are referred to as step-index cores
  • cores with refractive index profiles with alpha values between about 5 and about 20 are referred to as rounded step-index cores.
  • the numerical aperture (NA) of an optical fiber is related to the maximum relative refractive index of the core, Do, by:
  • the effective group index b, makeup favoring and electric field ETM of each of the linearly polarized (LP mn ) modes supported by a given single mode or multimode fiber can be found numerically (e.g. T. A. Lenahan,“Calculation of modes in an optical fiber using the finite element method and E1SPACK,” Bell System Technical Journal, v 62, n 9, ptl, Nov. 1983, 2663-94), where m and n designate azimuthal and radial indices, respectively.
  • the electric field E mn is normalized such that:
  • a fiber 10 is generically shown and may be a single mode fiber (SMF) or a multimode fiber (MMF).
  • the fiber 10 has an outer diameter and a centerline 14.
  • the fiber 10 is cylindrically symmetric about the centerline 14.
  • the fiber 10 typically is provided with a core 18, a cladding 22, and a coating 26. ln some examples of the present disclosure, the fiber 10 may be provided with the core 18 and the cladding 22 while omitting the coating 26.
  • an optical fiber sensor 30 is schematically shown ln the depicted example, the optical fiber sensor 30 includes a first single mode fiber 34, a second single mode fiber 38, and a multimode fiber 42.
  • the multimode fiber 42 is positioned between the first single mode fiber 34 and the second single mode fiber 38.
  • the multimode fiber 42 may be coupled to the first and second single mode fibers 34, 38 by any method known to one skilled in the art, such as splicing or with coupling fittings ln some examples, the multimode fiber 42 is provided with a graded-index core.
  • the core of the multimode fiber 42 may have an outer radius 46 that is at least about 10 pm, at least about 15 pm, at least about 20 pm, at least about 25 pm, at least about 30 pm, and/or combinations or ranges thereof.
  • an outer radius 46 that is at least about 10 pm, at least about 15 pm, at least about 20 pm, at least about 25 pm, at least about 30 pm, and/or combinations or ranges thereof.
  • the core of the multimode fiber 42 can have a diameter of between about 35 pm and about 45 pm.
  • the core of the multimode fiber 42 may have a numerical aperture at a wavelength of 1550 nm that is about 0.14, about 0.16, about 0.18, about 0.20, about 0.22, about 0.24, about 0.26, about 0.28, about 0.30, about 0.32, and/or combinations or ranges thereof.
  • the graded-index core of the multimode fiber 42 may have a curvature parameter, alpha, that is about 1.8, about 1.9, about 2.0, about 2.1 , about 2.2, and/or combinations or ranges thereof.
  • the cladding 22 may have an outer radius 50 that is at least about 30 pm, at least about 35 pm, at least about 40 pm, at least about 45 pm, at least about 50 pm, and/or combinations or ranges thereof.
  • the cladding 22 may have an outer radius 50 that is less than about 65 pm, less than about 55 pm, less than about 45 pm, less than about 40 pm, and/or combinations or ranges thereof.
  • an outer diameter of the cladding 22 can be between about 70 pm and about 90 pm.
  • a concatenated span of optical fibers is presented that can be used for single-point or distributed sensing.
  • the concatenated span of optical fibers includes the first single mode fiber 34, the second single mode fiber 38, and the multimode fiber 42.
  • a light source 54 is coupled to a first end 58 of the first single mode fiber 34 to direct light into the first end 58 of the first single mode fiber 34.
  • the first single mode fiber 34 may be referred to as an input fiber and propagates light from the light source 54 to the multimode fiber 42.
  • the multimode fiber 42 is coupled to a second end 62 of the first single mode fiber 34.
  • the light that propagates through the first single mode fiber 34 enters into the multimode fiber 42 and excites at least two discrete modes in the multimode fiber 42.
  • the light traveling through the first single mode fiber 34 may excite the fundamental mode, LPoi, of the first single mode fiber 34, and upon entering into the multimode fiber 42, the light may excite two or more modes in the multimode fiber 42.
  • the fundamental mode of the single mode fiber 34 excites the LPoi mode and one or more higher order modes in the multimode fiber 42, such as the LP02 and LP03 modes of the multimode fiber 42.
  • the multimode fiber 42 is configured as a microbend sensor fiber (MSF). Changes in a degree of interference between the excited modes in the multimode fiber 42 result in fluctuations in an amount of power that is coupled into the fundamental LPoi mode of the second single mode fiber 38.
  • the second single mode fiber 38 may also be referred to as an output fiber.
  • microbend sensing fiber such as the multimode fiber
  • the optical fiber sensor 30 maybe utilized in conjunction with optical frequency domain reflectometry (OFDR) techniques, which increases a spatial resolution of the optical fiber sensor 30 to fractions of a meter and enables locating microbend-induced perturbations in the optical fiber sensor 30 more precisely than when optical time domain reflectometry (OTDR) techniques are employed ln
  • OFDDR optical frequency domain reflectometry
  • the optical fiber sensor 30 may be deployed in building structures and utilized to locate cracks, breaks, and/or stresses within the structure with greater precision ln such an example, the optical fiber sensor 30 is utilized as a structural monitor where perturbations in the deployment environment induce elevated power losses in the optical fiber sensor 30. The specific locations of the elevated power
  • the optical fiber sensor 30 may be referred to as a single mode-multimode-single mode (SMS) fiber.
  • SMS single mode-multimode-single mode
  • an input single mode fiber e.g., the first single mode fiber 34
  • the light then propagates through the input single mode fiber and couples into the microbend sensing fiber (e.g., the multimode fiber 42), after the light propagates along the microbend sensing fiber, then light couples into an output single mode fiber (e.g., the second single mode fiber 38) where the light propagates to a detector 66 (e.g., OFDR or OTDR equipment).
  • a detector 66 e.g., OFDR or OTDR equipment
  • the optical fiber sensor 30 of the present disclosure may be incorporated into an optical system that includes a light source, such as a laser or broadband optical source, which excites the fundamental LPoi mode of the first single mode fiber 34.
  • the first single mode fiber 34 may be configured to sacrifice a coupling strength between the excited fundamental LPoi mode of the first single mode fiber 34 and the LPoi mode of the multimode fiber 42 in favor of a greater coupling strength between the excited fundamental LPoi mode of the first single mode fiber 34 and the higher order modes (e.g., LP 02 and/or LP 03 ) of the multimode fiber 42.
  • the excited fundamental LPoi mode of the first single mode fiber 34 may excite two or more modes (e.g., the LPoi mode and at least one higher-order mode) of the multimode fiber 42.
  • the two or more modes that are excited in the multimode fiber 42 e.g., the LPoi mode and the LP0 2 mode
  • This interference changes the level of power that is coupled into the LPoi mode of the second single mode fiber 38 and ultimately detected by the detector 66.
  • the first and second single mode fibers 34, 38 may be identically configured such that what is discussed herein relative to the first single mode fiber 34 may likewise apply to the second single mode fiber 38.
  • the detector 66 may be an optical spectrum analyzer (OSA). Accordingly, there is a baseline level of power loss present in the optical fiber sensor 30 that increases when the environment where the optical fiber sensor 30 is deployed induces elevated attenuation due to microbending or macrobending.
  • OSA optical spectrum analyzer
  • the first single mode fiber 34, the second single mode fiber 38, and the multimode fiber 42 have been co-optimized with one another to provide the enhanced microbend sensor discussed herein.
  • An advantage of the present disclosure is that a coupling strength from the first single mode fiber 34 into the higher order modes of the multimode fiber 42 has been improved and prioritized.
  • the multimode fiber 42 has been configured or manufactured to enhance the multimode fibers 42 sensitivity to microbending perturbations.
  • Microbend-induced loss, in dB, for the multimode fiber 42 with a core diameter, a, and a cladding diameter, b may scale as shown in Equation 1, where NA is the numerical aperture of the multimode fiber 42.
  • a comparative multimode fiber that meets the standards set forth for an OM3 fiber typically has a core diameter of about 50 pm, a cladding diameter of about 125 pm, and a numerical aperture of 0.20, which result in relatively low microbend sensitivity. While these parameters may make this comparative multimode fiber suitable for telecommunication applications, such a comparative multimode fiber alone is not well suited for use as a microbend sensing fiber ln an attempt to utilize alternative comparative multimode fibers, a multimode fiber may be chosen that has a relatively small cladding diameter. As a specific example, Equation 1 predicts that decreasing the cladding diameter from 125 pm to 80 pm increases the microbend-induced loss by a factor of about 14.5.
  • the higher order modes supported by the cores of such an alternative comparative multimode fiber generally do not couple well (e.g., weak coupling strengths) to most input fibers, such as the first single mode fiber 34.
  • the core 18 of the multimode fiber 42 in the present disclosure has been designed to support higher order modes that couple well (e.g., greater coupling strength) with input fibers, such as the first single mode fiber 34.
  • the core 18 of the multimode fiber 42 is provided with a graded-index core that has a numerical aperture of 0.20, a core diameter of 40 pm, and a cladding diameter of 80 pm.
  • the resultant multimode fiber 42 has an enhanced or elevated microbend sensitivity and sufficiently low attenuation to enable deployment in lengths of up to several kilometers.
  • Equation 2 the intensity, /, received by the detector 66 (e.g., the optical sensor analyzer) is given by Equation 2.
  • Equation 2 h and 12 are the intensities in the first order mode and the second order mode, respectively, L is the length of the multimode fiber 42, l is the wavelength of light, and An g is the difference between the effective group indices of the two lowest order modes.
  • Equation 3 A wavelength spacing of an interference spectrum that is generated between the propagating modes is given by Equation 3.
  • the wavelength spacing, Dl is inversely proportional to the product of the length, L, of the multimode fiber 42 and the difference between the effective group indices of the two lowest order modes, An g .
  • the nominal value of An g is determined by the core parameters of the multimode fiber 42 that is utilized. Accordingly, the length, L, of the multimode fiber 42 can be adjusted to tune Al to practical values that can be measured by the detector 66.
  • a power distribution of the interference spectrum depends on the relative intensities in the two propagating modes lncreasing a ratio of 12 to h such that the ratio is closer to, or even approaches, unity (i.e., h ⁇ h) increases the amplitude, 2- T ⁇ , of the interference term in Equation 2 and enhances the response of the optical fiber sensor 30.
  • the optical fiber sensor 30 is subjected to environmental changes (e.g., strain or temperature changes)
  • the product of An g and L changes.
  • the change in the product of An g and L results in a change in the wavelength spacing of the interference spectrum, which may be given by Equation 4.
  • the first single mode fiber 34 is configured to guide only the fundamental LPoi mode, which has a cylindrical symmetry and a Gaussian or near-Gaussian intensity-versus-radius profile.
  • the core 18 of the first single mode fiber 34 and the core 18 of the multimode fiber 42 are well aligned (i.e., without significant lateral offset) and the numerical apertures (NA) of the first single mode fiber 34 and the multimode fiber 42 are matched, then the LPoi mode of the first single mode fiber 34 only excites the cylindrically symmetric LPom modes of the multimode fiber 42.
  • Coupling coefficients between the LPoi of the first single mode fiber 34 and the LPo m modes of the multimode fiber 42 are given by Equation 5.
  • ELP O I and Eo m are the radial intensities of the LPoi and the LPo m modes in the first single mode fiber 34 and the multimode fiber 42, respectively.
  • the sensitivity of the optical fiber sensor 30 is enhanced when there is a relatively strong coupling from the LPoi mode of the first single mode fiber 34 into the higher order LPom modes of the multimode fiber 42, where m is greater than 1.
  • F1GS. 3A and 3B plots of relative refractive index, A%, versus radius, r, are shown for the multimode fiber 42 and a single mode fiber (e.g., the first single mode fiber 34 and/or the second single mode fiber 38), according to some examples.
  • Relative refractive index is measured relative to pure silica glass.
  • F1G. 3A shows the refractive index profile of the multimode fiber 42, according to one non-limiting example, that includes a graded-index core with an outer radius, n, a maximum relative refractive index, A , and a curvature parameter, a.
  • the cladding 22 extends from the radial position, n, to a radial position, r_ and has a relative refractive index, A 2.
  • the fiber 10 of F1G. 3A includes the coating 26, however, only the glass section of the fiber 10 is shown in the profile.
  • F1G. 3B is similar to F1G. 3A and shows the refractive index profile of a single mode fiber, such as the first single mode fiber 34 and/or the second single mode fiber 38, according to one non-limiting example.
  • the refractive index profile is a step-index profile with an outer radius, r ? , and a maximum refractive index, A3.
  • the cladding 22 extends from the radial position, r ? , to a radial position, 4.
  • the fiber 10 of F1G. 3B includes the coating 26, however, only the glass section of the fiber 10 is shown in the profile.
  • An amplitude of the LP 01 mode of the first example single mode fiber is plotted as SMFI -LP 01 in F1G. 4A.
  • An amplitude of the LP 01 mode of the second example single mode fiber is plotted as SMF2-LPoi in F1G. 4B.
  • the electric fields for all fibers were calculated at 1550 nm.
  • the diameter of the cores for the first and second example single mode fibers may be about 3.0 pm, about 3.5 pm, about 4.0 pm, about 4.5 pm, about 5.0 pm, about 5.5 pm, about 6.0 pm, about 6.5 pm, about 7.0 pm, about 8.0 pm, about 8.5 pm, about 9.0 pm, about 9.5 pm, and/or combinations or ranges thereof.
  • the diameter of the cores of the first and second example single mode fibers may be values between those specifically recited.
  • the diameter of the core of the first single mode fiber may be about 9.2 pm and the diameter of the core of the second single mode fiber maybe about 5.4 pm.
  • the LP 01 mode of the first example single mode fiber has a slightly smaller diameter than the LP 01 mode of the multimode fiber 42.
  • the LP 01 mode of the first example single mode fiber overlaps regions of positive and negative amplitude of the LP 02 and LP 03 modes of the multimode fiber 42, as can be seen in F1G. 4A. As shown in F1G.
  • Equation 5 can be used to show that the coupling strength from the LP0 1 mode of the first example single mode fiber into the LP 01 mode of the multimode fiber 42 is greater than about 0.90, but the coupling strengths from the LPoi mode of the first example single mode fiber into the LP02 and LP03 modes of the multimode fiber 42 are less than about 0.30 and less than about 0.20, respectively ln contrast, and as shown by F1G.
  • the LP01 mode of the second example single mode fiber is closely matched to the central positive lobe of the LP02 and LP03 modes of the multimode fiber 42, resulting in coupling strengths from the LP01 mode of the second example single mode fiber into the LP02 and LP03 modes of the multimode fiber 42 that are both greater than about 0.30, while also reducing the coupling strength from the LP01 mode of the second example single mode fiber into the LP01 mode of the multimode fiber 42 to less than about 0.85.
  • a coupling strength of the LP01 mode of the first example single mode fiber into the LP01, LP02, and LP03 modes of the multimode fiber 42 (see F1G. 4C) and a coupling strength of the LP01 mode of the second example single mode fiber into the LP01, LP02, and LP03 modes of the multimode fiber 42 (see F1G. 4D) are shown for comparative purposes ln both examples, the multimode fiber 42 is provided with a numerical aperture of about 0.20 and a core diameter that ranges from about 30 pm to about 50 pm.
  • the coupling strength does not have as strong of a dependence on the core diameter of the multimode fiber 42 for coupling into the LP02 and LP03 modes of the multimode fiber 42.
  • a coupling strength into the LP02 and LP03 modes of the multimode fiber 42 from the LP01 mode of the second example single mode fiber does not significantly decrease when the multimode fiber 42 core diameter is decreased from 50 pm to 40 pm.
  • the second example single mode fiber may be utilized with a reduced cladding diameter to simplify splicing into the multimode fiber 42.
  • the cladding diameter of the multimode fiber 42 maybe reduced to about 80 pm in an effort to enhance the microbend sensitivity and the second example single mode fiber may similarly be provided with a reduced cladding diameter of about 80 pm.
  • the coupling strength of the LPoi mode of the first single mode fiber 34 to the LP0 2 mode of the multimode fiber 42 can be at least about 0.20, at least about 0.25, at least about 0.30, at least about 0.35, at least about 0.40, at least about 0.45, and/or combinations or ranges thereof.
  • the coupling strength of the LP 01 mode of the first single mode fiber 34 to the LP 03 mode of the multimode fiber 42 can be at least about 0.20, at least about 0.24, at least about 0.28, at least about 0.32, and/or combinations or ranges thereof.
  • a coupling strength of an LP 01 mode of the second single mode fiber 38 to the LP0 2 mode of the multimode fiber 42 can be at least about 0.30, at least about 0.35, at least about 0.40, at least about 0.45, and/or combinations or ranges thereof.
  • the coupling strength of the LP01 mode of the first single mode fiber 34 to the LP03 mode of the multimode fiber 42 can be at least about 0.20, at least about 0.25, at least about 0.30, and/or combinations or ranges thereof.
  • the coupling strength of the LP01 mode of the first single mode fiber 34 to an LP01 mode of the multimode fiber 42 can be less than about 1.00, less than about 0.95, less than about 0.90, less than about 0.85, less than about 0.80, less than about 0.75, and/or combinations or ranges thereof.
  • the core of the first single mode fiber 34 can have an outer diameter of about 3 pm, about 4 pm, about 6 pm, about 8 pm, about 9 pm, and/or combinations or ranges thereof.
  • the core of the first single mode fiber 34 can have a maximum relative refractive index of about 0.3%, about 0.4%, about 0.6%, about 0.8%, about 1.0%, about 1.2%, about 1.4%, about 1.6%, and/or combinations or ranges thereof.
  • a diameter of the cladding 22 on the first single mode fiber 34 can be about 50 pm, about 60 pm, about 70 pm, about 80 pm, about 90 pm, about 100 pm, and/or combinations or ranges thereof.
  • the core of the second single mode fiber 38 can have an outer diameter of about 2 pm, about 4 pm, about 6 pm, about 8 pm, about 10 pm, about 12 pm, and/or combinations or ranges thereof.
  • the core of the second single mode fiber 38 can have a maximum relative refractive index of about 0.3%, about 0.4%, about 0.6%, about 0.8%, about 1.0%, about 1.2%, about 1.4%, about 1.6%, and/or combinations or ranges thereof.
  • a diameter of the cladding 22 on the second single mode fiber 38 can be about 50 pm, about 60 mih, about 70 mih, about 80 mhi, about 90 mhi, about 100 mhi, and/or combinations or ranges thereof.
  • an optical fiber sensor 30 that has a multimode fiber 42 with enhanced microbend sensitivity. Additionally, the input and output fibers that are coupled to either end of the multimode fiber 42 are configured to improve coupling between the higher order modes of the multimode fiber 42 and the fundamental mode of the input and output fibers.
  • the resultant optical fiber sensor 30 is capable of greater spatial resolution and sensitivity to environmental perturbations.

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Abstract

An optical fiber sensor includes a first single mode fiber, a second single mode fiber, and a multimode fiber positioned between, and coupled to, the first single mode fiber and the second single mode fiber. The multimode fiber includes a graded-index core with an outer diameter between about 35 µm and about 45 µm. A numerical aperture of the core is between about 0.15 and about 0.25. The multimode fiber includes a cladding with an outer diameter between about 70 µm and about 90 µm. A coupling strength of an LP01 mode of the first single mode fiber to each of an LP02 mode and an LP03 mode of the multimode fiber is at least about 0.25.

Description

ENHANCED MICROBEND SENSOR
[0001] This application claims the benefit of priority to U.S. Provisional Application Serial No.
62/691340 filed on June 28, 2018, the content of which is relied upon and incorporated herein by reference in its entirety.
FIELD OF THE DISCLOSURE
[0002] The present disclosure relates to optical fiber sensors. More specifically, the present
disclosure relates to optical fiber sensors with enhanced microbend sensitivity.
BACKGROUND
[0003] Optical fiber sensors are often deployed in environments where electrical sensors are not practical due to the presence of electromagnetic fields or corrosive chemicals. The optical fiber sensors may be utilized to measure changes in thermal or mechanical properties in the environments where they are deployed. In some of these optical fiber sensors, an active monitoring unit is employed that transmits light from a light source into a passive fiber sensor. The light source is often either a laser with a tunable output wavelength or a broadband light source. Backscattered, transmitted, or reflected light is then collected by a detector in the monitoring unit and processed or converted into data that provides information relating to strain and/or temperature variations experienced by the optical fiber sensor in the environment where the fiber sensor is deployed.
SUMMARY OF THE DISCLOSURE
[0004] According to one aspect of the present disclosure, an optical fiber sensor includes a first single mode fiber, a second single mode fiber, and a multimode fiber positioned between, and coupled to, the first single mode fiber and the second single mode fiber. The multimode fiber includes a graded-index core with an outer diameter between about 35 pm and about 45 pm. A numerical aperture of the core of the multimode fiber is between about 0.15 and about 0.25. The multimode fiber includes a cladding with an outer diameter between about 70 pm and about 90 pm. A coupling strength of an LPoi mode of the first single mode fiber to each of an LP02 mode and an LP03 mode of the multimode fiber is at least about 0.25. [0005] According to another aspect of the present disclosure, an optical fiber sensor includes a first single mode fiber, a second single mode fiber, and a multimode fiber positioned between, and coupled to, the first single mode fiber and the second single mode fiber. The multimode fiber includes a graded-index core with an outer radius of about 20 pm. A numerical aperture of the core of the multimode fiber is about 0.20 at a wavelength of 1550 nm. A cladding of the multimode fiber has an outer radius of about 40 pm. An LPoi mode of the first single mode fiber is closely matched to a central positive lobe of an LP02 mode of the multimode fiber such that a coupling strength of the LP01 mode of the first single mode fiber to each of an LP02 mode and an LP03 mode of the multimode fiber is at least about 0.25 at a wavelength of 1550 nm.
[0006] ln various examples of the foregoing aspects, the coupling strength of the LP01 mode of the first single mode fiber to the LP02 mode of the multimode fiber is at least about 0.35. The coupling strength of the LP01 mode of the first single mode fiber to the LP03 mode of the multimode fiber is at least about 0.28. The LP02 and the LP03 modes of the multimode fiber coherently interfere as light propagates through the multimode fiber. A coupling strength of an LP01 mode of the second single mode fiber to the LP02 mode of the multimode fiber is at least about 0.40. The coupling strength of the LP01 mode of the first single mode fiber to the LP03 mode of the multimode fiber is at least about 0.30. The coupling strength of the LP01 mode of the first single mode fiber to an LP01 mode of the multimode fiber is less than about 0.90. The coupling strength of the LP01 mode of the first single mode fiber to an LP01 mode of the multimode fiber is less than about 0.85. The coupling strength of the LP01 mode of the first single mode fiber to the LP03 mode of the multimode fiber is at least about 0.30. The first single mode fiber has a core having an outer diameter between about 4 pm and about 8 pm and a maximum relative refractive index between about 0.4% and about 1.2%, and a cladding diameter between about 70 pm and about 90 pm. The second single mode fiber has a core having an outer diameter between about 4 pm and about 8 pm and a maximum relative refractive index between about 0.4% and about 1.2%, and a cladding diameter between about 70 pm and about 90 pm.
BRJEF DESCR1PTION OF THE DRAW1NGS [0007] The following is a description of the figures in the accompanying drawings. The figures are not necessarily to scale, and certain features and certain views of the figures may be shown exaggerated in scale or in schematic in the interest of clarity and conciseness.
[0008] ln the drawings:
[0001] F1G. 1 is a front elevated view of a section of an optical fiber, illustrating a core, a cladding, and a coating;
[0002] F1G. 2 is a schematic representation of an optical fiber sensor, according to one
embodiment;
[0003] F1G. 3 A is a plot of relative refractive index versus radius for a multimode fiber, according to one embodiment;
[0004] F1G. 3B is a plot of relative refractive index versus radius for a single mode fiber, according to one embodiment;
[0005] F1G. 4A is a plot depicting electric fields for various modes of a first example single mode fiber and a multimode fiber;
[0006] F1G. 4B is a plot depicting electric fields for various modes of a second example single mode fiber and the multimode fiber;
[0007] F1G. 4C is a plot depicting a coupling strength between a fundamental mode of the first example single mode fiber and various modes of the multimode fiber; and
[0008] F1G. 4D is a plot depicting a coupling strength between a fundamental mode of the second example single mode fiber and various modes of the multimode fiber.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0009] Additional features and advantages will be set forth in the detailed description that follows and will be apparent to those skilled in the art from the description, or recognized by practicing the embodiments as described in the following description, together with the claims and appended drawings.
[0010] As used herein, the term“and/or,” when used in a list of two or more items, means that any one of the listed items can be employed by itself, or any combination of two or more of the listed items can be employed. For example, if a composition is described as containing components A, B, and/or C, the composition can contain A alone; B alone; C alone; A and B in combination; A and C in combination; B and C in combination; or A, B, and C in combination. [0011] ln this document, relational terms, such as first and second, top and bottom, and the like, are used solely to distinguish one entity or action from another entity or action, without necessarily requiring or implying any actual such relationship or order between such entities or actions.
[0012] Modifications of the disclosure will occur to those skilled in the art and to those who make or use the disclosure. Therefore, it is understood that the embodiments shown in the drawings and described above are merely for illustrative purposes and not intended to limit the scope of the disclosure, which is defined by the following claims, as interpreted according to the principles of patent law, including the doctrine of equivalents.
[0013] For purposes of this disclosure, the term "coupled" (in all of its forms: couple,
coupling, coupled, etc.) generally means the joining of two components directly or indirectly to one another. Such joining may be stationary in nature or movable in nature. Such joining may be achieved with the two components and any additional intermediate members being integrally formed as a single unitary body with one another or with the two components.
Such joining may be permanent in nature, or may be removable or releasable in nature, unless otherwise stated.
[0014] As used herein, the term“about” means that amounts, sizes, formulations, parameters, and other quantities and characteristics are not and need not be exact, but may be
approximate and/or larger or smaller, as desired, reflecting tolerances, conversion factors, rounding off, measurement error and the like, and other factors known to those of skill in the art. When the term“about” is used in describing a value or an end-point of a range, the disclosure should be understood to include the specific value or end-point referred to.
Whether or not a numerical value or end-point of a range in the specification recites“about,” the numerical value or end-point of a range is intended to include two embodiments: one modified by“about,” and one not modified by“about.” lt will be further understood that the end-points of each of the ranges are significant both in relation to the other end-point, and independently of the other end-point.
[0015] The terms“substantial,”“substantially,” and variations thereof as used herein are intended to note that a described feature is equal or approximately equal to a value or description. For example, a“substantially planar” surface is intended to denote a surface that is planar or approximately planar. Moreover,“substantially” is intended to denote that two values are equal or approximately equal ln some embodiments,“substantially” may denote values within about 10% of each other, such as within about 5% of each other, or within about 2% of each other.
[0016] Directional terms as used herein— for example up, down, right, left, front, back, top, bottom— are made only with reference to the figures as drawn and are not intended to imply absolute orientation.
[0017] As used herein the terms "the," "a," or "an," mean "at least one," and should not be limited to "only one" unless explicitly indicated to the contrary. Thus, for example, reference to "a component" includes embodiments having two or more such components unless the context clearly indicates otherwise.
[0018] The abbreviation“pm” stands for micron or micrometer.
[0019] The“relative refractive index” as used herein is defined as: n2 (r)— n c2l
D% = 100
2n2(r)
where n(r) is the refractive index of the fiber at a radial distance, r, from the fiber’s centerline, unless otherwise specified, and nci is the index of the outer cladding. When the outer cladding is essentially pure silica, nci = 1.444 at a wavelength of 1550 run. As used herein, the relative refractive index percent (also referred to herein as the relative refractive index) is represented by D (or“delta”), D% (or“delta %”), or %, all of which are used interchangeably herein, and its values are given in units of percent or %, unless otherwise specified. Relative refractive index may also be expressed as D(G) or D(G)%.
[0020] The refractive index profile for the core of an optical fiber may often be represented by
D% = D0 -Q where Do is the maximum relative refractive index of the core, a, is the radius of the core and a, or alpha, is a curvature parameter. Cores that have refractive index profiles with alpha values less than about 5 are referred to as graded-index cores, cores with refractive index profiles with alpha values greater than about 20 are referred to as step-index cores, and cores with refractive index profiles with alpha values between about 5 and about 20 are referred to as rounded step-index cores. [0021] The numerical aperture (NA) of an optical fiber is related to the maximum relative refractive index of the core, Do, by:
Figure imgf000007_0001
[0022] The effective group index b,„„ and electric field E™ of each of the linearly polarized (LP mn ) modes supported by a given single mode or multimode fiber can be found numerically (e.g. T. A. Lenahan,“Calculation of modes in an optical fiber using the finite element method and E1SPACK,” Bell System Technical Journal, v 62, n 9, ptl, Nov. 1983, 2663-94), where m and n designate azimuthal and radial indices, respectively. The electric field Emn is normalized such that:
Figure imgf000007_0002
[0023] With reference to F1G. 1, a fiber 10 is generically shown and may be a single mode fiber (SMF) or a multimode fiber (MMF). The fiber 10 has an outer diameter and a centerline 14. The fiber 10 is cylindrically symmetric about the centerline 14. The fiber 10 typically is provided with a core 18, a cladding 22, and a coating 26. ln some examples of the present disclosure, the fiber 10 may be provided with the core 18 and the cladding 22 while omitting the coating 26.
[0024] Referring now to F1GS. 1 and 2, an optical fiber sensor 30 is schematically shown ln the depicted example, the optical fiber sensor 30 includes a first single mode fiber 34, a second single mode fiber 38, and a multimode fiber 42. The multimode fiber 42 is positioned between the first single mode fiber 34 and the second single mode fiber 38. The multimode fiber 42 may be coupled to the first and second single mode fibers 34, 38 by any method known to one skilled in the art, such as splicing or with coupling fittings ln some examples, the multimode fiber 42 is provided with a graded-index core. The core of the multimode fiber 42 may have an outer radius 46 that is at least about 10 pm, at least about 15 pm, at least about 20 pm, at least about 25 pm, at least about 30 pm, and/or combinations or ranges thereof. One of skill in the art will recognize that when radii are discussed, diameters may be alternatively discussed by doubling the radius being discussed without departing from the concepts disclosed herein. For example, the core of the multimode fiber 42 can have a diameter of between about 35 pm and about 45 pm. The core of the multimode fiber 42 may have a numerical aperture at a wavelength of 1550 nm that is about 0.14, about 0.16, about 0.18, about 0.20, about 0.22, about 0.24, about 0.26, about 0.28, about 0.30, about 0.32, and/or combinations or ranges thereof. The graded-index core of the multimode fiber 42 may have a curvature parameter, alpha, that is about 1.8, about 1.9, about 2.0, about 2.1 , about 2.2, and/or combinations or ranges thereof. The cladding 22 may have an outer radius 50 that is at least about 30 pm, at least about 35 pm, at least about 40 pm, at least about 45 pm, at least about 50 pm, and/or combinations or ranges thereof. The cladding 22 may have an outer radius 50 that is less than about 65 pm, less than about 55 pm, less than about 45 pm, less than about 40 pm, and/or combinations or ranges thereof. For example, an outer diameter of the cladding 22 can be between about 70 pm and about 90 pm.
[0025] ln the present disclosure, a concatenated span of optical fibers is presented that can be used for single-point or distributed sensing. The concatenated span of optical fibers includes the first single mode fiber 34, the second single mode fiber 38, and the multimode fiber 42.
A light source 54 is coupled to a first end 58 of the first single mode fiber 34 to direct light into the first end 58 of the first single mode fiber 34. The first single mode fiber 34 may be referred to as an input fiber and propagates light from the light source 54 to the multimode fiber 42. The multimode fiber 42 is coupled to a second end 62 of the first single mode fiber 34. The light that propagates through the first single mode fiber 34 enters into the multimode fiber 42 and excites at least two discrete modes in the multimode fiber 42. For example, the light traveling through the first single mode fiber 34 may excite the fundamental mode, LPoi, of the first single mode fiber 34, and upon entering into the multimode fiber 42, the light may excite two or more modes in the multimode fiber 42. ln one example, the fundamental mode of the single mode fiber 34 excites the LPoi mode and one or more higher order modes in the multimode fiber 42, such as the LP02 and LP03 modes of the multimode fiber 42. The multimode fiber 42 is configured as a microbend sensor fiber (MSF). Changes in a degree of interference between the excited modes in the multimode fiber 42 result in fluctuations in an amount of power that is coupled into the fundamental LPoi mode of the second single mode fiber 38. The second single mode fiber 38 may also be referred to as an output fiber.
[0026] ln general, presented herein is a microbend sensing fiber, such as the multimode fiber
42, that has enhanced microbend sensitivity. Additionally, the coupling of the multimode fiber 42 to the first single mode fiber 34 and the second single mode fiber 38 has been improved or optimized. The resulting microbend sensing fiber is an extremely sensitive probe of changes in strain, temperature, and/or refractive index imparted on the optical fiber sensor 30 by the environment in which the optical fiber sensor 30 is deployed ln various examples, the optical fiber sensor 30 maybe utilized in conjunction with optical frequency domain reflectometry (OFDR) techniques, which increases a spatial resolution of the optical fiber sensor 30 to fractions of a meter and enables locating microbend-induced perturbations in the optical fiber sensor 30 more precisely than when optical time domain reflectometry (OTDR) techniques are employed ln one example, the optical fiber sensor 30 may be deployed in building structures and utilized to locate cracks, breaks, and/or stresses within the structure with greater precision ln such an example, the optical fiber sensor 30 is utilized as a structural monitor where perturbations in the deployment environment induce elevated power losses in the optical fiber sensor 30. The specific locations of the elevated power losses can then be pinpointed using OFDR or OTDR.
[0027] The optical fiber sensor 30 may be referred to as a single mode-multimode-single mode (SMS) fiber. As explained above, in one example, light is launched into an input single mode fiber (e.g., the first single mode fiber 34), the light then propagates through the input single mode fiber and couples into the microbend sensing fiber (e.g., the multimode fiber 42), after the light propagates along the microbend sensing fiber, then light couples into an output single mode fiber (e.g., the second single mode fiber 38) where the light propagates to a detector 66 (e.g., OFDR or OTDR equipment). The optical fiber sensor 30 of the present disclosure may be incorporated into an optical system that includes a light source, such as a laser or broadband optical source, which excites the fundamental LPoi mode of the first single mode fiber 34. ln various examples, the first single mode fiber 34 may be configured to sacrifice a coupling strength between the excited fundamental LPoi mode of the first single mode fiber 34 and the LPoi mode of the multimode fiber 42 in favor of a greater coupling strength between the excited fundamental LPoi mode of the first single mode fiber 34 and the higher order modes (e.g., LP02 and/or LP03) of the multimode fiber 42. The excited fundamental LPoi mode of the first single mode fiber 34 may excite two or more modes (e.g., the LPoi mode and at least one higher-order mode) of the multimode fiber 42. The two or more modes that are excited in the multimode fiber 42 (e.g., the LPoi mode and the LP02 mode) may coherently interfere with one another as the excited modes propagate through the multimode fiber 42. This interference changes the level of power that is coupled into the LPoi mode of the second single mode fiber 38 and ultimately detected by the detector 66.
The first and second single mode fibers 34, 38 may be identically configured such that what is discussed herein relative to the first single mode fiber 34 may likewise apply to the second single mode fiber 38. ln various examples, the detector 66 may be an optical spectrum analyzer (OSA). Accordingly, there is a baseline level of power loss present in the optical fiber sensor 30 that increases when the environment where the optical fiber sensor 30 is deployed induces elevated attenuation due to microbending or macrobending.
[0028] The first single mode fiber 34, the second single mode fiber 38, and the multimode fiber 42 have been co-optimized with one another to provide the enhanced microbend sensor discussed herein. An advantage of the present disclosure is that a coupling strength from the first single mode fiber 34 into the higher order modes of the multimode fiber 42 has been improved and prioritized. Additionally, the multimode fiber 42 has been configured or manufactured to enhance the multimode fibers 42 sensitivity to microbending perturbations. Microbend-induced loss, in dB, for the multimode fiber 42 with a core diameter, a, and a cladding diameter, b, may scale as shown in Equation 1, where NA is the numerical aperture of the multimode fiber 42.
Figure imgf000010_0001
[0029] A comparative multimode fiber that meets the standards set forth for an OM3 fiber typically has a core diameter of about 50 pm, a cladding diameter of about 125 pm, and a numerical aperture of 0.20, which result in relatively low microbend sensitivity. While these parameters may make this comparative multimode fiber suitable for telecommunication applications, such a comparative multimode fiber alone is not well suited for use as a microbend sensing fiber ln an attempt to utilize alternative comparative multimode fibers, a multimode fiber may be chosen that has a relatively small cladding diameter. As a specific example, Equation 1 predicts that decreasing the cladding diameter from 125 pm to 80 pm increases the microbend-induced loss by a factor of about 14.5. However, in choosing such an alternative comparative multimode fiber, another issue arises. Specifically, the higher order modes supported by the cores of such an alternative comparative multimode fiber generally do not couple well (e.g., weak coupling strengths) to most input fibers, such as the first single mode fiber 34. Accordingly, the core 18 of the multimode fiber 42 in the present disclosure has been designed to support higher order modes that couple well (e.g., greater coupling strength) with input fibers, such as the first single mode fiber 34.
[0030] ln one specific example, the core 18 of the multimode fiber 42 is provided with a graded-index core that has a numerical aperture of 0.20, a core diameter of 40 pm, and a cladding diameter of 80 pm. The resultant multimode fiber 42 has an enhanced or elevated microbend sensitivity and sufficiently low attenuation to enable deployment in lengths of up to several kilometers.
[0031] lf only the two lowest-order modes in the multimode fiber 42 of the optical fiber sensor 30 are considered (e.g., the LPoi and LP02 modes), then the intensity, /, received by the detector 66 (e.g., the optical sensor analyzer) is given by Equation 2.
Figure imgf000011_0001
[0032] ln Equation 2, h and 12 are the intensities in the first order mode and the second order mode, respectively, L is the length of the multimode fiber 42, l is the wavelength of light, and Ang is the difference between the effective group indices of the two lowest order modes. A wavelength spacing of an interference spectrum that is generated between the propagating modes is given by Equation 3.
Al =
i(A Tig) (3)
[0033] ln Equation 3, the wavelength spacing, Dl, is inversely proportional to the product of the length, L, of the multimode fiber 42 and the difference between the effective group indices of the two lowest order modes, Ang. The nominal value of Ang is determined by the core parameters of the multimode fiber 42 that is utilized. Accordingly, the length, L, of the multimode fiber 42 can be adjusted to tune Al to practical values that can be measured by the detector 66.
[0034] A power distribution of the interference spectrum depends on the relative intensities in the two propagating modes lncreasing a ratio of 12 to h such that the ratio is closer to, or even approaches, unity (i.e., h ~ h) increases the amplitude, 2- T ^, of the interference term in Equation 2 and enhances the response of the optical fiber sensor 30. When the optical fiber sensor 30 is subjected to environmental changes (e.g., strain or temperature changes), the product of Ang and L changes. The change in the product of Ang and L results in a change in the wavelength spacing of the interference spectrum, which may be given by Equation 4. ln Equation 4, the applied strain, e, is given by e = 1.
Figure imgf000012_0001
[0035] The first single mode fiber 34 is configured to guide only the fundamental LPoi mode, which has a cylindrical symmetry and a Gaussian or near-Gaussian intensity-versus-radius profile. When the core 18 of the first single mode fiber 34 and the core 18 of the multimode fiber 42 are well aligned (i.e., without significant lateral offset) and the numerical apertures (NA) of the first single mode fiber 34 and the multimode fiber 42 are matched, then the LPoi mode of the first single mode fiber 34 only excites the cylindrically symmetric LPom modes of the multimode fiber 42. Coupling coefficients between the LPoi of the first single mode fiber 34 and the LPom modes of the multimode fiber 42 are given by Equation 5. r Ip ELPo l (r)Eom (r)rdr
m fp Eom (r)Eom (r)rdr
Figure imgf000012_0002
[0036] ln Equation 5, ELPOI and Eom are the radial intensities of the LPoi and the LPom modes in the first single mode fiber 34 and the multimode fiber 42, respectively. The sensitivity of the optical fiber sensor 30 is enhanced when there is a relatively strong coupling from the LPoi mode of the first single mode fiber 34 into the higher order LPom modes of the multimode fiber 42, where m is greater than 1.
[0037] Referring to F1GS. 3A and 3B, plots of relative refractive index, A%, versus radius, r, are shown for the multimode fiber 42 and a single mode fiber (e.g., the first single mode fiber 34 and/or the second single mode fiber 38), according to some examples. Relative refractive index is measured relative to pure silica glass. F1G. 3A shows the refractive index profile of the multimode fiber 42, according to one non-limiting example, that includes a graded-index core with an outer radius, n, a maximum relative refractive index, A , and a curvature parameter, a. The cladding 22 extends from the radial position, n, to a radial position, r_ and has a relative refractive index, A 2. The fiber 10 of F1G. 3A includes the coating 26, however, only the glass section of the fiber 10 is shown in the profile. F1G. 3B is similar to F1G. 3A and shows the refractive index profile of a single mode fiber, such as the first single mode fiber 34 and/or the second single mode fiber 38, according to one non-limiting example. The refractive index profile is a step-index profile with an outer radius, r?, and a maximum refractive index, A3. The cladding 22 extends from the radial position, r?, to a radial position, 4. The fiber 10 of F1G. 3B includes the coating 26, however, only the glass section of the fiber 10 is shown in the profile.
[0038] With specific reference to F1GS. 4A-4D, plots comparing an electric field (E-Field) for the multimode fiber 42 (left vertical axis in F1GS. 4A and 4B), an electric field of a first example single mode fiber (right vertical axis in F1G. 4A), and an electric field of a second example single mode fiber (right vertical axis in F1G. 4B) are shown as a function of a radial position within the fiber 10. An amplitude of the electric field for the LP01, LP02, and LP03 modes of the multimode fiber 42 are plotted as MMF-LP01, MMF-LP02, and MMF-LP03, respectively. An amplitude of the LP01 mode of the first example single mode fiber is plotted as SMFI -LP01 in F1G. 4A. An amplitude of the LP01 mode of the second example single mode fiber is plotted as SMF2-LPoi in F1G. 4B. The electric fields for all fibers were calculated at 1550 nm. The diameter of the cores for the first and second example single mode fibers may be about 3.0 pm, about 3.5 pm, about 4.0 pm, about 4.5 pm, about 5.0 pm, about 5.5 pm, about 6.0 pm, about 6.5 pm, about 7.0 pm, about 8.0 pm, about 8.5 pm, about 9.0 pm, about 9.5 pm, and/or combinations or ranges thereof. These values are exemplary in nature and are not intended to limit the present disclosure and it is intended that the diameter of the cores of the first and second example single mode fibers may be values between those specifically recited. For example, the diameter of the core of the first single mode fiber may be about 9.2 pm and the diameter of the core of the second single mode fiber maybe about 5.4 pm.
[0039] Referring again to F1GS. 4A-4D, the LP01 mode of the first example single mode fiber has a slightly smaller diameter than the LP01 mode of the multimode fiber 42. The LP01 mode of the first example single mode fiber overlaps regions of positive and negative amplitude of the LP02 and LP03 modes of the multimode fiber 42, as can be seen in F1G. 4A. As shown in F1G. 4C, Equation 5 can be used to show that the coupling strength from the LP01 mode of the first example single mode fiber into the LP01 mode of the multimode fiber 42 is greater than about 0.90, but the coupling strengths from the LPoi mode of the first example single mode fiber into the LP02 and LP03 modes of the multimode fiber 42 are less than about 0.30 and less than about 0.20, respectively ln contrast, and as shown by F1G. 4D, the LP01 mode of the second example single mode fiber is closely matched to the central positive lobe of the LP02 and LP03 modes of the multimode fiber 42, resulting in coupling strengths from the LP01 mode of the second example single mode fiber into the LP02 and LP03 modes of the multimode fiber 42 that are both greater than about 0.30, while also reducing the coupling strength from the LP01 mode of the second example single mode fiber into the LP01 mode of the multimode fiber 42 to less than about 0.85. lncreasing the coupling strength from the LP01 mode of the second example single mode fiber into the LP02 and LP03 modes of the multimode fiber 42 and reducing the coupling strength from the LP01 mode of the second example single mode fiber into the LP01 mode of the multimode fiber 42 each result in a positive impact on the efficiency of the optical fiber sensor 30 with regard to increasing the amplitude, 2-Jl1 l2 , of the interference term in Equation 2.
[0040] With specific reference to F1GS. 4C and 4D, a coupling strength of the LP01 mode of the first example single mode fiber into the LP01, LP02, and LP03 modes of the multimode fiber 42 (see F1G. 4C) and a coupling strength of the LP01 mode of the second example single mode fiber into the LP01, LP02, and LP03 modes of the multimode fiber 42 (see F1G. 4D) are shown for comparative purposes ln both examples, the multimode fiber 42 is provided with a numerical aperture of about 0.20 and a core diameter that ranges from about 30 pm to about 50 pm. When the first example single mode fiber is used as the input fiber for the multimode fiber 42, there is a stronger dependence on the core diameter of the multimode fiber 42. However, when the second example single mode fiber is utilized as the input fiber for the multimode fiber 42, the coupling strength does not have as strong of a dependence on the core diameter of the multimode fiber 42 for coupling into the LP02 and LP03 modes of the multimode fiber 42. For example, when the second example single mode fiber is utilized, a coupling strength into the LP02 and LP03 modes of the multimode fiber 42 from the LP01 mode of the second example single mode fiber does not significantly decrease when the multimode fiber 42 core diameter is decreased from 50 pm to 40 pm. The data presented in F1GS. 4C and 4D indicate that using the second example single mode fiber as an input and output fiber on either side of a multimode fiber 42 with a reduced core diameter of, for example, 40 pm, in the optical fiber sensor 30 provides superior coupling from the LP01 mode of the input fiber into the higher order modes of the multimode fiber 42. Additionally, it is contemplated that the second example single mode fiber may be utilized with a reduced cladding diameter to simplify splicing into the multimode fiber 42. For example, the cladding diameter of the multimode fiber 42 maybe reduced to about 80 pm in an effort to enhance the microbend sensitivity and the second example single mode fiber may similarly be provided with a reduced cladding diameter of about 80 pm.
[0041] ln various examples of the foregoing aspects, the coupling strength of the LPoi mode of the first single mode fiber 34 to the LP02 mode of the multimode fiber 42 can be at least about 0.20, at least about 0.25, at least about 0.30, at least about 0.35, at least about 0.40, at least about 0.45, and/or combinations or ranges thereof. The coupling strength of the LP01 mode of the first single mode fiber 34 to the LP03 mode of the multimode fiber 42 can be at least about 0.20, at least about 0.24, at least about 0.28, at least about 0.32, and/or combinations or ranges thereof. A coupling strength of an LP01 mode of the second single mode fiber 38 to the LP02 mode of the multimode fiber 42 can be at least about 0.30, at least about 0.35, at least about 0.40, at least about 0.45, and/or combinations or ranges thereof.
The coupling strength of the LP01 mode of the first single mode fiber 34 to the LP03 mode of the multimode fiber 42 can be at least about 0.20, at least about 0.25, at least about 0.30, and/or combinations or ranges thereof. The coupling strength of the LP01 mode of the first single mode fiber 34 to an LP01 mode of the multimode fiber 42 can be less than about 1.00, less than about 0.95, less than about 0.90, less than about 0.85, less than about 0.80, less than about 0.75, and/or combinations or ranges thereof. The core of the first single mode fiber 34 can have an outer diameter of about 3 pm, about 4 pm, about 6 pm, about 8 pm, about 9 pm, and/or combinations or ranges thereof. The core of the first single mode fiber 34 can have a maximum relative refractive index of about 0.3%, about 0.4%, about 0.6%, about 0.8%, about 1.0%, about 1.2%, about 1.4%, about 1.6%, and/or combinations or ranges thereof. A diameter of the cladding 22 on the first single mode fiber 34 can be about 50 pm, about 60 pm, about 70 pm, about 80 pm, about 90 pm, about 100 pm, and/or combinations or ranges thereof. The core of the second single mode fiber 38 can have an outer diameter of about 2 pm, about 4 pm, about 6 pm, about 8 pm, about 10 pm, about 12 pm, and/or combinations or ranges thereof. The core of the second single mode fiber 38 can have a maximum relative refractive index of about 0.3%, about 0.4%, about 0.6%, about 0.8%, about 1.0%, about 1.2%, about 1.4%, about 1.6%, and/or combinations or ranges thereof. A diameter of the cladding 22 on the second single mode fiber 38 can be about 50 pm, about 60 mih, about 70 mih, about 80 mhi, about 90 mhi, about 100 mhi, and/or combinations or ranges thereof.
[0042] Provided herein is an optical fiber sensor 30 that has a multimode fiber 42 with enhanced microbend sensitivity. Additionally, the input and output fibers that are coupled to either end of the multimode fiber 42 are configured to improve coupling between the higher order modes of the multimode fiber 42 and the fundamental mode of the input and output fibers. The resultant optical fiber sensor 30 is capable of greater spatial resolution and sensitivity to environmental perturbations.
[0043] While exemplary embodiments and examples have been set forth for the purpose of illustration, the foregoing description is not intended in any way to limit the scope of disclosure and appended claims. Accordingly, variations and modifications maybe made to the above-described embodiments and examples without departing substantially from the spirit and various principles of the disclosure. All such modifications and variations are intended to be included herein within the scope of this disclosure and protected by the following claims.

Claims

What is claimed is:
1. An optical fiber sensor (30), comprising:
a first single mode fiber (34) comprising a core and a cladding;
a second single mode fiber (38) comprising a core and a cladding; and
a multimode fiber (42) positioned between, and coupled to, the first single mode fiber (34) and the second single mode fiber (38), the multimode fiber (42) comprising:
a graded-index core having an outer diameter between about 35 pm and about 45 pm, wherein a numerical aperture of the graded-index core is between about 0.15 and about 0.25;
a multimode fiber cladding having an outer diameter between about 70 pm and about 90 pm; and
wherein a coupling strength of an LPoi mode of the first single mode fiber (34) to each of an LP02 mode and an LP03 mode of the multimode fiber (42) is at least about 0.25.
2. The optical fiber sensor (30) of claim 1, wherein the coupling strength of the LP01 mode of the first single mode fiber (34) to the LP02 mode of the multimode fiber (42) is at least about 0.35.
3. The optical fiber sensor (30) of claims 1 or 2, wherein the coupling strength of the LP01 mode of the first single mode fiber (34) to the LP03 mode of the multimode fiber (42) is at least about 0.28.
4. The optical fiber sensor (30) of claims 1 -3, wherein the LP02 and the LP03 modes of the multimode fiber (42) coherently interfere as light propagates through the multimode fiber (42).
5. The optical fiber sensor (30) of claims 1 or 2, wherein a coupling strength of an LP01 mode of the second single mode fiber (34) to the LP02 mode of the multimode fiber (42) is at least about 0.40.
6. The optical fiber sensor (30) of any of the preceding claims, wherein the coupling strength of the LPoi mode of the first single mode fiber (34) to the LP03 mode of the multimode fiber (42) is at least about 0.30.
7. The optical fiber sensor (30) of any of the preceding claims, wherein the coupling strength of the LP01 mode of the first single mode fiber (34) to an LP01 mode of the multimode fiber (42) is less than about 0.90.
8. The optical fiber sensor (30) of any one of the preceding claims, wherein the coupling strength of the LP01 mode of the first single mode fiber (34) to the LP03 mode of the multimode fiber (42) is at least about 0.30.
9. The optical fiber sensor (30) of any of the preceding claims, wherein the core (18) of the first single mode fiber (34) has an outer diameter between about 4 pm and about 8 pm a maximum relative refractive index between about 0.4% and about 1.2%, and a cladding diameter of the first single mode fiber (34) is between about 70 pm and about 90 pm.
10. The optical fiber sensor (30) of any of the preceding claims, wherein the core (18) of the second single mode fiber (38) has an outer diameter between about 4 pm and about 8 pm a maximum relative refractive index between about 0.4% and about 1.2%, and a cladding diameter of the second single mode fiber (38) is between about 70 pm and about 90 pm.
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Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2003054603A1 (en) * 2001-12-07 2003-07-03 Corning Incorporated Optical transmission link with low bending loss
WO2013003016A1 (en) * 2011-06-30 2013-01-03 Corning Incorporated Multimode optical fiber and system incorporating such

Family Cites Families (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6429421B1 (en) 2000-01-21 2002-08-06 Luna Innovations, Inc. Flexible fiber optic microbend device, with interlocking flexible fibers, sensors, and method use
US20090260501A1 (en) 2008-04-18 2009-10-22 Raman Kashyap Multi-mode optical fiber sensor
CN105910633B (en) 2009-05-27 2019-10-29 希里克萨有限公司 Optical sensor and application method
US9007227B2 (en) 2012-01-04 2015-04-14 The Boeing Company Multimode fiber interrogator
US9581489B2 (en) 2013-01-26 2017-02-28 Halliburton Energy Services, Inc. Distributed acoustic sensing with multimode fiber
WO2017040105A1 (en) 2015-08-31 2017-03-09 Corning Incorporated Two-piece enclosure

Patent Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2003054603A1 (en) * 2001-12-07 2003-07-03 Corning Incorporated Optical transmission link with low bending loss
WO2013003016A1 (en) * 2011-06-30 2013-01-03 Corning Incorporated Multimode optical fiber and system incorporating such

Non-Patent Citations (2)

* Cited by examiner, † Cited by third party
Title
T. A. LENAHAN: "Calculation of modes in an optical fiber using the finite element method and EISPACK", BELL SYSTEM TECHNICAL JOURNAL, vol. 62, no. 9, November 1983 (1983-11-01), pages 2663 - 94, XP011630755, DOI: doi:10.1002/j.1538-7305.1983.tb03199.x
YUAN GONG ET AL: "All-Fiber Curvature Sensor Based on Multimode Interference", IEEE PHOTONICS TECHNOLOGY LETTERS, IEEE SERVICE CENTER, PISCATAWAY, NJ, US, vol. 23, no. 11, 1 June 2011 (2011-06-01), pages 679 - 681, XP011321625, ISSN: 1041-1135, DOI: 10.1109/LPT.2011.2123086 *

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