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Simultaneous Measurement of Microdisplacement and Temperature Based on Balloon-Shaped Structure

An optical fiber sensor for the simultaneous measurement of microdisplacement and temperature based on balloon-shaped single-mode fibers cascaded with a fiber Bragg grating with two core-offset joints is proposed. The interference between the core mode and cladding mode is caused by the stimulation...

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Autores principales: Zhang, Yaxun, Liu, Yuxin, Huang, Zhiliang, Huang, Pingbang, Tang, Xiaoyun, Liu, Zhihai, Zhang, Yu, Yuan, Libo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10610746/
https://www.ncbi.nlm.nih.gov/pubmed/37896612
http://dx.doi.org/10.3390/s23208521
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author Zhang, Yaxun
Liu, Yuxin
Huang, Zhiliang
Huang, Pingbang
Tang, Xiaoyun
Liu, Zhihai
Zhang, Yu
Yuan, Libo
author_facet Zhang, Yaxun
Liu, Yuxin
Huang, Zhiliang
Huang, Pingbang
Tang, Xiaoyun
Liu, Zhihai
Zhang, Yu
Yuan, Libo
author_sort Zhang, Yaxun
collection PubMed
description An optical fiber sensor for the simultaneous measurement of microdisplacement and temperature based on balloon-shaped single-mode fibers cascaded with a fiber Bragg grating with two core-offset joints is proposed. The interference between the core mode and cladding mode is caused by the stimulation of the cladding mode by the core-offset joints’ structure. The cladding of the core has a distinct refractive index, which causes optical path differences and interference. The balloon-shaped structure realizes mode selection by bending. As the displacement increases, the radius of the balloon-shaped interferometer changes, resulting in a change in the interference fringes of the interferometer, while the Bragg wavelength of the fiber grating remains unchanged. Temperature changes will cause the interference fringes of the interferometer and the Bragg wavelength of the fiber grating to shift. The proposed optical fiber sensor allows for the simultaneous measurement of microdisplacement and temperature. The results of the experiment indicate that the sensitivity of the interferometer to microdisplacement is 0.306 nm/µm in the sensing range of 0 to 200 μm and that the temperature sensitivity is 0.165 nm/°C, respectively. The proposed curvature sensor has the advantages of a compact structure, extensive spectrum of dynamic measurement, high sensitivity, and simple preparation, and has a wide range of potential applications in the fields of structural safety monitoring, aviation industry, and resource exploration.
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spelling pubmed-106107462023-10-28 Simultaneous Measurement of Microdisplacement and Temperature Based on Balloon-Shaped Structure Zhang, Yaxun Liu, Yuxin Huang, Zhiliang Huang, Pingbang Tang, Xiaoyun Liu, Zhihai Zhang, Yu Yuan, Libo Sensors (Basel) Communication An optical fiber sensor for the simultaneous measurement of microdisplacement and temperature based on balloon-shaped single-mode fibers cascaded with a fiber Bragg grating with two core-offset joints is proposed. The interference between the core mode and cladding mode is caused by the stimulation of the cladding mode by the core-offset joints’ structure. The cladding of the core has a distinct refractive index, which causes optical path differences and interference. The balloon-shaped structure realizes mode selection by bending. As the displacement increases, the radius of the balloon-shaped interferometer changes, resulting in a change in the interference fringes of the interferometer, while the Bragg wavelength of the fiber grating remains unchanged. Temperature changes will cause the interference fringes of the interferometer and the Bragg wavelength of the fiber grating to shift. The proposed optical fiber sensor allows for the simultaneous measurement of microdisplacement and temperature. The results of the experiment indicate that the sensitivity of the interferometer to microdisplacement is 0.306 nm/µm in the sensing range of 0 to 200 μm and that the temperature sensitivity is 0.165 nm/°C, respectively. The proposed curvature sensor has the advantages of a compact structure, extensive spectrum of dynamic measurement, high sensitivity, and simple preparation, and has a wide range of potential applications in the fields of structural safety monitoring, aviation industry, and resource exploration. MDPI 2023-10-17 /pmc/articles/PMC10610746/ /pubmed/37896612 http://dx.doi.org/10.3390/s23208521 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 Communication
Zhang, Yaxun
Liu, Yuxin
Huang, Zhiliang
Huang, Pingbang
Tang, Xiaoyun
Liu, Zhihai
Zhang, Yu
Yuan, Libo
Simultaneous Measurement of Microdisplacement and Temperature Based on Balloon-Shaped Structure
title Simultaneous Measurement of Microdisplacement and Temperature Based on Balloon-Shaped Structure
title_full Simultaneous Measurement of Microdisplacement and Temperature Based on Balloon-Shaped Structure
title_fullStr Simultaneous Measurement of Microdisplacement and Temperature Based on Balloon-Shaped Structure
title_full_unstemmed Simultaneous Measurement of Microdisplacement and Temperature Based on Balloon-Shaped Structure
title_short Simultaneous Measurement of Microdisplacement and Temperature Based on Balloon-Shaped Structure
title_sort simultaneous measurement of microdisplacement and temperature based on balloon-shaped structure
topic Communication
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10610746/
https://www.ncbi.nlm.nih.gov/pubmed/37896612
http://dx.doi.org/10.3390/s23208521
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