Investigation of Hybrid Remote Fiber Optic Sensing Solutions for Railway Applications

Fiber optic sensing (FOS) has become a well-known technology in response to the rising demands of the railway transportation field despite the abundance of electronic sensing systems in the market. FOS application boasts an all-in-one solution that is both efficient and versatile. In order to enhanc...

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Main Authors: Serhat Boynukalin, Selçuk Paker, Ahmad Atieh
Format: Article
Language:English
Published: MDPI AG 2023-07-01
Series:Photonics
Subjects:
Online Access:https://www.mdpi.com/2304-6732/10/8/864
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author Serhat Boynukalin
Selçuk Paker
Ahmad Atieh
author_facet Serhat Boynukalin
Selçuk Paker
Ahmad Atieh
author_sort Serhat Boynukalin
collection DOAJ
description Fiber optic sensing (FOS) has become a well-known technology in response to the rising demands of the railway transportation field despite the abundance of electronic sensing systems in the market. FOS application boasts an all-in-one solution that is both efficient and versatile. In order to enhance the understanding of the capabilities of FOS, this paper presents a hybrid fiber optic sensing system with an improved sensing ability to facilitate transportation applications for primary or secondary security interfaces. The hybrid sensing scheme incorporates two different sensing systems designed for long-distance applications. The first system employs a coding technique for the transmitted pulses, which provide information on train location through cross-correlation with the reflected pulses from fiber Bragg grating (FBG) sensors located along the railway. The proposed system can accurately predict the train’s location up to a precision of one cm. The second system examines the wavelength drift of the reflected signal from the FBG sensor affected by the train using a tunable optical filter and photodetector. It determines essential parameters such as the train’s location, speed, and direction by measuring the Bragg wavelength shift and its direction. The effect of the train movement and speed on the applied strain on the FBG sensor is calculated in this work and applied to the simulation to determine the train’s location, speed, and direction. A calibration table facilitates the correlation between the train speed and the shift in the FBG center wavelength, which helps ensure accurate results. The hybrid fiber optic sensing system is designed to facilitate railway transportation applications’ sustainability and security.
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spelling doaj.art-c476896fbb6844d2ab1703e642994edc2023-11-19T02:38:52ZengMDPI AGPhotonics2304-67322023-07-0110886410.3390/photonics10080864Investigation of Hybrid Remote Fiber Optic Sensing Solutions for Railway ApplicationsSerhat Boynukalin0Selçuk Paker1Ahmad Atieh2Communication Systems, Graduate School, Istanbul Technical University, 34469 Istanbul, TurkeyElectrical, and Electronic Engineering Faculty, Electronics and Communication Engineering Department Istanbul, Istanbul Technical University, 34469 Istanbul, TurkeyOptiwave System Inc., Ottawa, ON K2E 8A7, CanadaFiber optic sensing (FOS) has become a well-known technology in response to the rising demands of the railway transportation field despite the abundance of electronic sensing systems in the market. FOS application boasts an all-in-one solution that is both efficient and versatile. In order to enhance the understanding of the capabilities of FOS, this paper presents a hybrid fiber optic sensing system with an improved sensing ability to facilitate transportation applications for primary or secondary security interfaces. The hybrid sensing scheme incorporates two different sensing systems designed for long-distance applications. The first system employs a coding technique for the transmitted pulses, which provide information on train location through cross-correlation with the reflected pulses from fiber Bragg grating (FBG) sensors located along the railway. The proposed system can accurately predict the train’s location up to a precision of one cm. The second system examines the wavelength drift of the reflected signal from the FBG sensor affected by the train using a tunable optical filter and photodetector. It determines essential parameters such as the train’s location, speed, and direction by measuring the Bragg wavelength shift and its direction. The effect of the train movement and speed on the applied strain on the FBG sensor is calculated in this work and applied to the simulation to determine the train’s location, speed, and direction. A calibration table facilitates the correlation between the train speed and the shift in the FBG center wavelength, which helps ensure accurate results. The hybrid fiber optic sensing system is designed to facilitate railway transportation applications’ sustainability and security.https://www.mdpi.com/2304-6732/10/8/864fiber optic sensing (FOS)railwaytransportationcross-correlationPN-CodingFBG
spellingShingle Serhat Boynukalin
Selçuk Paker
Ahmad Atieh
Investigation of Hybrid Remote Fiber Optic Sensing Solutions for Railway Applications
Photonics
fiber optic sensing (FOS)
railway
transportation
cross-correlation
PN-Coding
FBG
title Investigation of Hybrid Remote Fiber Optic Sensing Solutions for Railway Applications
title_full Investigation of Hybrid Remote Fiber Optic Sensing Solutions for Railway Applications
title_fullStr Investigation of Hybrid Remote Fiber Optic Sensing Solutions for Railway Applications
title_full_unstemmed Investigation of Hybrid Remote Fiber Optic Sensing Solutions for Railway Applications
title_short Investigation of Hybrid Remote Fiber Optic Sensing Solutions for Railway Applications
title_sort investigation of hybrid remote fiber optic sensing solutions for railway applications
topic fiber optic sensing (FOS)
railway
transportation
cross-correlation
PN-Coding
FBG
url https://www.mdpi.com/2304-6732/10/8/864
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AT selcukpaker investigationofhybridremotefiberopticsensingsolutionsforrailwayapplications
AT ahmadatieh investigationofhybridremotefiberopticsensingsolutionsforrailwayapplications