论文标题

使用反卷积算法改善BOTDA传感器的空间分辨率

Improving the spatial resolution of a BOTDA sensor using deconvolution algorithm

论文作者

Shen, Li, Zhao, Zhiyong, Zhao, Can, Wu, Hao, Lu, Chao, Tang, Ming

论文摘要

使用长脉冲从可获得的测量中改进了空间分辨率,以基于总变异反卷积算法为Brillouin光学时域分析(BOTDA)系统开发。通过模拟研究了布里鲁因增益时间包膜的频率依赖性,并彻底分析了其对反卷积算法的恢复结果的影响。为了实现可靠的反卷积过程,利用差分脉冲宽度对(DPP)技术有效消除了源于时间包膜的频率依赖性的系统BFS失真。脉冲对的宽度应大于40 ns,如理论上和实验验证。已经证明,提出的方法可以从建立的长泵脉冲的确定测量值中实现具有增强的信噪比(SNR)的空间分辨率的灵活调整。在实验中,通过使用从60/40 NS DPP信号的测量中使用反卷积算法,空间分辨率以高测量精度增加到0.5 m和1 m。与具有相同空间分辨率的原始DPP结果相比,分别为0.5 m和1 m的空间分辨率获得了9.2 dB和8.4 dB SNR的改进,这要归功于总变化反卷积算法的能力。还研究了采样率对恢复结果的影响。所提出的传感系统允许使用较高空间分辨率的无失真布里群分布式传感,并通过长脉冲对进行了传统的DPP设置增强的SNR。

Spatial resolution improvement from an acquired measurement using long pulse is developed for Brillouin optical time domain analysis (BOTDA) systems based on the total variation deconvolution algorithm. The frequency dependency of Brillouin gain temporal envelope is investigated by simulation, and its impact on the recovered results of deconvolution algorithm is thoroughly analyzed. To implement a reliable deconvolution process, differential pulse-width pair (DPP) technique is utilized to effectively eliminate the systematic BFS distortion stemming from the frequency dependency of temporal envelope. The width of the pulse pairs should be larger than 40 ns as is analyzed theoretically and verified experimentally. It has been demonstrated that the proposed method can realize flexible adjustment of spatial resolution with enhanced signal-to-noise ratio (SNR) from an established measurement with long pump pulse. In the experiment, the spatial resolution is increased to 0.5 m and 1 m with high measurement accuracy by using the deconvolution algorithm from the measurement of 60/40 ns DPP signals. Compared with the raw DPP results with the same spatial resolution, 9.2 dB and 8.4 dB SNR improvements are obtained for 0.5 m and 1 m spatial resolution respectively, thanks to the denoising capability of the total variation deconvolution algorithm. The impact of sampling rate on the recovery results is also studied. The proposed sensing system allows for distortion-free Brillouin distributed sensing with higher spatial resolution and enhanced SNR from the conventional DPP setup with long pulse pairs.

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