首页> 外文期刊>Indian Journal of Science and Technology >Fault Detection in Fiber Optic Communication Cable by Coherent Anti-Stokes Raman Scattering using Superconducting Nanowire Single-Photon Detectork
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Fault Detection in Fiber Optic Communication Cable by Coherent Anti-Stokes Raman Scattering using Superconducting Nanowire Single-Photon Detectork

机译:超导纳米线单光子探测器通过相干反斯托克斯拉曼散射检测光纤通信电缆中的故障

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Objective: In this paper, the author has used the coherent anti-stokes Raman scattering and the time correlated single photon count technique to locate the fault position and fault in fiber optic communication cable. Method/Statistical Analysis: The coherent anti-stokes Raman scattering where used to measure the single photon count and the counts are correlated with time to measure the position of the fault in fiber optical cable. The proposed method is experimented on a 4 meter length fiber optic cable which is under test. The experiment is performed by considering prefixed faults at different length of the fiber optic cable under test. The author has done one of its kinds of experimentation to measure the faults and fault position in the fiber optical cables, lay underneath the ground. Findings: The experimented results have shown a clear cut edge with the technique that the photon count rate is decreased at the fault position of the optical fiber cable under test. The sharp increase of counts after the fault position and sharp decrease of counts before the fault position strongly supports the proposed method for fault finding in fiber optic cable. Application/Improvement: The proposed method is much more accurate in finding faults which is not possible by the pervious technology or devices. The proposed method can be applied to lengthy fiber optic cables by selecting high range pump lasers and advanced filters.
机译:目的:本文利用相干抗斯托克斯拉曼散射和时间相关单光子计数技术来定位光纤通信电缆中的故障位置和故障。方法/统计分析:相干抗斯托克斯拉曼散射用于测量单光子计数,并且计数与时间相关,以测量光缆中故障的位置。所提出的方法在正在测试的4米长的光缆上进行了实验。通过考虑被测光缆不同长度上的前缀故障来进行实验。作者进行了其中的一种实验,以测量位于地下的光缆中的故障和故障位置。结果:实验结果显示出清晰的切割边缘,该技术可以降低被测光纤电缆故障位置的光子计数率。故障位置之后计数的急剧增加和故障位置之前计数的急剧减少有力地支持了所提出的光缆故障查找方法。应用/改进:所提出的方法可以更加准确地发现故障,而这是以前的技术或设备无法实现的。通过选择高范围泵浦激光器和高级滤光片,该方法可应用于较长的光缆。

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