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混沌拉曼分布式光纤传感

Chaos Raman distributed optical fiber sensing.

作者信息

Wang Chenyi, Li Jian, Zhou Xinxin, Cheng Zijia, Qiao Lijun, Xue Xiaohui, Zhang Mingjiang

机构信息

College of Physics, Taiyuan University of Technology, Taiyuan, 030024, Shanxi, China.

Key Laboratory of Advanced Transducers and Intelligent Control System of Ministry of Education, Taiyuan University of Technology, Taiyuan, 030024, Shanxi, China.

出版信息

Light Sci Appl. 2023 Aug 31;12(1):213. doi: 10.1038/s41377-023-01267-3.

Abstract

The physics principle of pulse flight positioning is the main theoretical bottleneck that restricts the spatial resolution of the existing Raman distributed optical fiber sensing scheme. Owing to the pulse width of tens of nanoseconds, the spatial resolution of the existing Raman distributed optical fiber sensing scheme with kilometer-level sensing distance is limited to the meter level, which seriously restricts the development of the optical time-domain reflection system. In this paper, a chaos laser is proposed in the context of the physical principle of the Raman scattering effect, and a novel theory of chaos Raman distributed optical fiber sensing scheme is presented. The scheme reveals the characteristics of chaos Raman scattering light excited by a chaotic signal on the sensing fiber. Further, the chaos time-domain compression demodulation mechanism between the temperature variation information and chaos correlation peak is demonstrated. Then, the position of the temperature variation signal is precisely located using the delay time of the chaos correlation peak combined with the chaos pulse flight time. Based on this novel optical sensing mechanism, an experiment with 10 cm spatial resolution and 1.4 km sensing distance was conducted, and the spatial resolution was found to be independent of the sensing distance. Within the limit of the existing spatial resolution theory, the spatial resolution of the proposed scheme is 50 times higher than that of the traditional scheme. The scheme also provides a new research direction for optical chaos and optical fiber sensing.

摘要

脉冲飞行定位的物理原理是制约现有拉曼分布式光纤传感方案空间分辨率的主要理论瓶颈。由于脉冲宽度为几十纳秒,现有传感距离达千米级的拉曼分布式光纤传感方案的空间分辨率被限制在米级,这严重制约了光时域反射系统的发展。本文基于拉曼散射效应的物理原理提出了一种混沌激光,并给出了一种新颖的混沌拉曼分布式光纤传感方案理论。该方案揭示了传感光纤上混沌信号激发的混沌拉曼散射光的特性。进一步地,论证了温度变化信息与混沌相关峰之间的混沌时域压缩解调机制。然后,结合混沌脉冲飞行时间,利用混沌相关峰的延迟时间精确确定温度变化信号的位置。基于这种新颖的光学传感机制,开展了空间分辨率为10 cm、传感距离为1.4 km的实验,发现空间分辨率与传感距离无关。在现有空间分辨率理论的限制范围内,所提方案的空间分辨率比传统方案高50倍。该方案还为光学混沌和光纤传感提供了一个新的研究方向。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6ecf/10471599/eda06843620c/41377_2023_1267_Fig1_HTML.jpg

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