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Real-time positioning technology of train based on optical fiber coherent Rayleigh backscattering北大核心CSCD
引用本文:张訢炜,李俊,张鼎博,严瑞锦,田彪,丁国绅,殷和宜,马天,王伟峰,翟小伟.Real-time positioning technology of train based on optical fiber coherent Rayleigh backscattering北大核心CSCD[J].应用光学,2022,43(5):994-1000.
作者姓名:张訢炜  李俊  张鼎博  严瑞锦  田彪  丁国绅  殷和宜  马天  王伟峰  翟小伟
作者单位:1.西安科技大学 安全科学与工程学院,陕西 西安 710054
摘    要:With the rapid growth of railway mileage in China, the degree of heavy load of railway wagons continues to increase. An interference technology based on Rayleigh backscattering signal in optical fiber was proposed by using existing communication optical cables along railway lines. When the fiber vibrated slightly, the phase and refractive index of the fiber at disturbed position changed, which resulting in the Rayleigh backscattering light. By performing differential calculation on the Rayleigh signal curves before and after the operation, the location of the interference light intensity signal corresponded to the location of the disturbances was obtained. Based on this method, the recognition and positioning of railway vehicles were realized. By collecting and analyzing the time-domain and frequency-domain signal, the signal strength, train length, the number of carriages and other characteristics were extracted, and the model of railway vehicles were accurately recognized. Compared with traditional positioning technologies, this technology could realize long-distance monitoring, and the sensing fiber was buried underground on both sides of the railway, which was conducive to the concealment and protection of optical fiber. Experimental results show that the positioning error of the system is within ±10 m, and the detection of railway speed and position within 25 km can be realized. © 2022 Editorial office of Journal of Applied Optics. All rights reserved.

关 键 词:列车实时跟踪    分布式光纤    瑞利散射    差值运算
收稿时间:2021-09-22

Real-time positioning technology of train based on optical fiber coherent Rayleigh backscattering
Zhang X.,Li J.,Zhang D.,Yan R.,Tian B.,Ding G.,Yin H.,Ma T.,Wang W.,Zhai X..Real-time positioning technology of train based on optical fiber coherent Rayleigh backscattering[J].Journal of Applied Optics,2022,43(5):994-1000.
Authors:Zhang X  Li J  Zhang D  Yan R  Tian B  Ding G  Yin H  Ma T  Wang W  Zhai X
Institution:1.College of Safety Science and Engineering, Xi'an University of Science and Technology, Xi'an 710054, China2.College of Environmental Science and Optoelectronics, University of Science and Technology of China, Hefei 230026, China3.Jinchuang Technology Co.,Ltd., Changzhou 213149, China
Abstract:With the rapid growth of railway mileage in China, the degree of heavy load of railway wagons continues to increase. An interference technology based on Rayleigh backscattering signal in optical fiber was proposed by using existing communication optical cables along railway lines. When the fiber vibrated slightly, the phase and refractive index of the fiber at disturbed position changed, which resulting in the Rayleigh backscattering light. By performing differential calculation on the Rayleigh signal curves before and after the operation, the location of the interference light intensity signal corresponded to the location of the disturbances was obtained. Based on this method, the recognition and positioning of railway vehicles were realized. By collecting and analyzing the time-domain and frequency-domain signal, the signal strength, train length, the number of carriages and other characteristics were extracted, and the model of railway vehicles were accurately recognized. Compared with traditional positioning technologies, this technology could realize long-distance monitoring, and the sensing fiber was buried underground on both sides of the railway, which was conducive to the concealment and protection of optical fiber. Experimental results show that the positioning error of the system is within ±10 m, and the detection of railway speed and position within 25 km can be realized.
Keywords:differential operation  distributed optical fiber  Rayleigh scattering  real-time train tracking
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