Underwater Pressure and Temperature Sensor Based on a Special Dual-Mode Optical Fiber

In this paper, an all fiber optic sensor based on a Mach-Zehnder interferometer (MZI) has been proposed for the simultaneous measurement of underwater pressure and temperature, utilizing a dual-mode fiber (DMF) which has been specially designed, and supporting only the LP<sub>01</sub> an...

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Main Authors: Xueqin Lei, Xiaopeng Dong, Chenxu Lu, Tong Sun, Kenneth T. V. Grattan
Format: Article
Language:English
Published: IEEE 2020-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/9163121/
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spelling doaj-0e62c9c22dc04c868a71aaff796bec9f2021-03-30T04:13:21ZengIEEEIEEE Access2169-35362020-01-01814646314647110.1109/ACCESS.2020.30151959163121Underwater Pressure and Temperature Sensor Based on a Special Dual-Mode Optical FiberXueqin Lei0https://orcid.org/0000-0002-4354-5102Xiaopeng Dong1https://orcid.org/0000-0002-2071-0734Chenxu Lu2https://orcid.org/0000-0001-8786-356XTong Sun3Kenneth T. V. Grattan4https://orcid.org/0000-0003-2250-3832School of Electronic Science and Engineering, Institute of Lightwave Technology, Xiamen University, Xiamen, ChinaSchool of Electronic Science and Engineering, Institute of Lightwave Technology, Xiamen University, Xiamen, ChinaSchool of Electronic Science and Engineering, Institute of Lightwave Technology, Xiamen University, Xiamen, ChinaSchool of Mathematics, Computer Science and Engineering, City, University of London, London, U.K.School of Electronic Science and Engineering, Institute of Lightwave Technology, Xiamen University, Xiamen, ChinaIn this paper, an all fiber optic sensor based on a Mach-Zehnder interferometer (MZI) has been proposed for the simultaneous measurement of underwater pressure and temperature, utilizing a dual-mode fiber (DMF) which has been specially designed, and supporting only the LP<sub>01</sub> and LP<sub>02</sub> modes propagating in the fiber. In this design, an in-line MZI sensor that was constructed by splicing a DMF between two pieces of single mode fibers, shows a critical wavelength (CWL) which exists in the transmission spectrum of the LP<sub>01</sub>-LP<sub>02</sub> mode interference. Since the two peaks, located closest to the CWL (and from both lower and higher wavelengths), shift in opposite directions and show different sensitivities under temperature and water pressure variations, the DMF-MZI sensor is capable of measuring both the water pressure and the temperature simultaneously. The CWL-based interference spectrum is stable with the variation of underwater salinity or impurities seen around the fiber surface and independent of the polarization states of the transmission light. As a result, in the operation of the DMF-MZI sensor, underwater pressure and temperature sensitivities increase significantly, when the peak wavelengths are close to that of the CWL. A theoretical analysis has been developed and used to predict that the sensitivities of this specific DMF-MZI structure which can be further improved by increasing the physical length of the DMF and by adjusting the position of the first left/right peak to be closer to the critical wavelength. This co-located, multi-parameter all-fiber sensor developed in this way and showing relatively high sensitivity is easy to implement in the underwater environment. It does not require a complex shell design and the peaks nearest to a CWL are convenient, allowing easy identification and detection, thereby providing a large measurement range to satisfy the requirements of practical marine and fresh water measurements.https://ieeexplore.ieee.org/document/9163121/Fiber sensortemperaturepressuredual mode fiberMach-Zehnder interferometer
collection DOAJ
language English
format Article
sources DOAJ
author Xueqin Lei
Xiaopeng Dong
Chenxu Lu
Tong Sun
Kenneth T. V. Grattan
spellingShingle Xueqin Lei
Xiaopeng Dong
Chenxu Lu
Tong Sun
Kenneth T. V. Grattan
Underwater Pressure and Temperature Sensor Based on a Special Dual-Mode Optical Fiber
IEEE Access
Fiber sensor
temperature
pressure
dual mode fiber
Mach-Zehnder interferometer
author_facet Xueqin Lei
Xiaopeng Dong
Chenxu Lu
Tong Sun
Kenneth T. V. Grattan
author_sort Xueqin Lei
title Underwater Pressure and Temperature Sensor Based on a Special Dual-Mode Optical Fiber
title_short Underwater Pressure and Temperature Sensor Based on a Special Dual-Mode Optical Fiber
title_full Underwater Pressure and Temperature Sensor Based on a Special Dual-Mode Optical Fiber
title_fullStr Underwater Pressure and Temperature Sensor Based on a Special Dual-Mode Optical Fiber
title_full_unstemmed Underwater Pressure and Temperature Sensor Based on a Special Dual-Mode Optical Fiber
title_sort underwater pressure and temperature sensor based on a special dual-mode optical fiber
publisher IEEE
series IEEE Access
issn 2169-3536
publishDate 2020-01-01
description In this paper, an all fiber optic sensor based on a Mach-Zehnder interferometer (MZI) has been proposed for the simultaneous measurement of underwater pressure and temperature, utilizing a dual-mode fiber (DMF) which has been specially designed, and supporting only the LP<sub>01</sub> and LP<sub>02</sub> modes propagating in the fiber. In this design, an in-line MZI sensor that was constructed by splicing a DMF between two pieces of single mode fibers, shows a critical wavelength (CWL) which exists in the transmission spectrum of the LP<sub>01</sub>-LP<sub>02</sub> mode interference. Since the two peaks, located closest to the CWL (and from both lower and higher wavelengths), shift in opposite directions and show different sensitivities under temperature and water pressure variations, the DMF-MZI sensor is capable of measuring both the water pressure and the temperature simultaneously. The CWL-based interference spectrum is stable with the variation of underwater salinity or impurities seen around the fiber surface and independent of the polarization states of the transmission light. As a result, in the operation of the DMF-MZI sensor, underwater pressure and temperature sensitivities increase significantly, when the peak wavelengths are close to that of the CWL. A theoretical analysis has been developed and used to predict that the sensitivities of this specific DMF-MZI structure which can be further improved by increasing the physical length of the DMF and by adjusting the position of the first left/right peak to be closer to the critical wavelength. This co-located, multi-parameter all-fiber sensor developed in this way and showing relatively high sensitivity is easy to implement in the underwater environment. It does not require a complex shell design and the peaks nearest to a CWL are convenient, allowing easy identification and detection, thereby providing a large measurement range to satisfy the requirements of practical marine and fresh water measurements.
topic Fiber sensor
temperature
pressure
dual mode fiber
Mach-Zehnder interferometer
url https://ieeexplore.ieee.org/document/9163121/
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