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Young’s Modulus-Independent Determination of Fibre Parameters for Rayleigh-Based Optical Frequency Domain Reflectometry from Cryogenic Temperatures up to 353 K

The magnetic spectrometer AMS-100, which includes a superconducting coil, is designed to measure cosmic rays and detect cosmic antimatter in space. This extreme environment requires a suitable sensing solution to monitor critical changes in the structure such as the beginning of a quench in the supe...

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Autores principales: Girmen, Caroline, Dittmar, Clemens, Siedenburg, Thorsten, Gastens, Markus, Wlochal, Michael, König, Niels, Schröder, Kai-Uwe, Schael, Stefan, Schmitt, Robert H.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10221979/
https://www.ncbi.nlm.nih.gov/pubmed/37430520
http://dx.doi.org/10.3390/s23104607
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author Girmen, Caroline
Dittmar, Clemens
Siedenburg, Thorsten
Gastens, Markus
Wlochal, Michael
König, Niels
Schröder, Kai-Uwe
Schael, Stefan
Schmitt, Robert H.
author_facet Girmen, Caroline
Dittmar, Clemens
Siedenburg, Thorsten
Gastens, Markus
Wlochal, Michael
König, Niels
Schröder, Kai-Uwe
Schael, Stefan
Schmitt, Robert H.
author_sort Girmen, Caroline
collection PubMed
description The magnetic spectrometer AMS-100, which includes a superconducting coil, is designed to measure cosmic rays and detect cosmic antimatter in space. This extreme environment requires a suitable sensing solution to monitor critical changes in the structure such as the beginning of a quench in the superconducting coil. Rayleigh-scattering-based distributed optical fibre sensors (DOFS) fulfil the high requirements for these extreme conditions but require precise calibration of the temperature and strain coefficients of the optical fibre. Therefore, the fibre-dependent strain and temperature coefficients [Formula: see text] and [Formula: see text] for the temperature range from 77 K to 353 K were investigated in this study. The fibre was integrated into an aluminium tensile test sample with well-calibrated strain gauges to determine the fibre’s [Formula: see text] independently of its Young’s modulus. Simulations were used to validate that the strain caused by changes in temperature or mechanical conditions was the same in the optical fibre as in the aluminium test sample. The results indicated a linear temperature dependence of [Formula: see text] and a non-linear temperature dependence of [Formula: see text]. With the parameters presented in this work, it was possible to accurately determine the strain or temperature of an aluminium structure over the entire temperature range from 77 K to 353 K using the DOFS.
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spelling pubmed-102219792023-05-28 Young’s Modulus-Independent Determination of Fibre Parameters for Rayleigh-Based Optical Frequency Domain Reflectometry from Cryogenic Temperatures up to 353 K Girmen, Caroline Dittmar, Clemens Siedenburg, Thorsten Gastens, Markus Wlochal, Michael König, Niels Schröder, Kai-Uwe Schael, Stefan Schmitt, Robert H. Sensors (Basel) Article The magnetic spectrometer AMS-100, which includes a superconducting coil, is designed to measure cosmic rays and detect cosmic antimatter in space. This extreme environment requires a suitable sensing solution to monitor critical changes in the structure such as the beginning of a quench in the superconducting coil. Rayleigh-scattering-based distributed optical fibre sensors (DOFS) fulfil the high requirements for these extreme conditions but require precise calibration of the temperature and strain coefficients of the optical fibre. Therefore, the fibre-dependent strain and temperature coefficients [Formula: see text] and [Formula: see text] for the temperature range from 77 K to 353 K were investigated in this study. The fibre was integrated into an aluminium tensile test sample with well-calibrated strain gauges to determine the fibre’s [Formula: see text] independently of its Young’s modulus. Simulations were used to validate that the strain caused by changes in temperature or mechanical conditions was the same in the optical fibre as in the aluminium test sample. The results indicated a linear temperature dependence of [Formula: see text] and a non-linear temperature dependence of [Formula: see text]. With the parameters presented in this work, it was possible to accurately determine the strain or temperature of an aluminium structure over the entire temperature range from 77 K to 353 K using the DOFS. MDPI 2023-05-09 /pmc/articles/PMC10221979/ /pubmed/37430520 http://dx.doi.org/10.3390/s23104607 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Girmen, Caroline
Dittmar, Clemens
Siedenburg, Thorsten
Gastens, Markus
Wlochal, Michael
König, Niels
Schröder, Kai-Uwe
Schael, Stefan
Schmitt, Robert H.
Young’s Modulus-Independent Determination of Fibre Parameters for Rayleigh-Based Optical Frequency Domain Reflectometry from Cryogenic Temperatures up to 353 K
title Young’s Modulus-Independent Determination of Fibre Parameters for Rayleigh-Based Optical Frequency Domain Reflectometry from Cryogenic Temperatures up to 353 K
title_full Young’s Modulus-Independent Determination of Fibre Parameters for Rayleigh-Based Optical Frequency Domain Reflectometry from Cryogenic Temperatures up to 353 K
title_fullStr Young’s Modulus-Independent Determination of Fibre Parameters for Rayleigh-Based Optical Frequency Domain Reflectometry from Cryogenic Temperatures up to 353 K
title_full_unstemmed Young’s Modulus-Independent Determination of Fibre Parameters for Rayleigh-Based Optical Frequency Domain Reflectometry from Cryogenic Temperatures up to 353 K
title_short Young’s Modulus-Independent Determination of Fibre Parameters for Rayleigh-Based Optical Frequency Domain Reflectometry from Cryogenic Temperatures up to 353 K
title_sort young’s modulus-independent determination of fibre parameters for rayleigh-based optical frequency domain reflectometry from cryogenic temperatures up to 353 k
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10221979/
https://www.ncbi.nlm.nih.gov/pubmed/37430520
http://dx.doi.org/10.3390/s23104607
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