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Ultimate Spatial Resolution Realisation in Optical Frequency Domain Reflectometry with Equal Frequency Resampling

机译:具有等倍重采样的光学频域反射测量中的最终空间分辨率实现

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摘要

A method based on equal frequency resampling is proposed to suppress laser nonlinear frequency sweeping for the ultimate spatial resolution in optical frequency domain reflectometry. Estimation inaccuracy of the sweeping frequency distribution caused by the finite sampling rate in the auxiliary interferometer can be efficiently compensated by the equal frequency resampling method. With the sweeping range of 130 nm, a 12.1 µm spatial resolution is experimentally obtained. In addition, the sampling limitation of the auxiliary interferometer-based correction is discussed. With a 200 m optical path delay in the auxiliary interferometer, a 21.3 µm spatial resolution is realised at the 191 m fibre end. By employing the proposed resampling and a drawing tower FBG array to enhance the Rayleigh backscattering, a distributed temperature sensing over a 105 m fibre with a sensing resolution of 1 cm is achieved. The measured temperature uncertainty is limited to ±0.15 °C.
机译:提出了一种基于等倍重采样的方法来抑制光学频域反射仪中最终空间分辨率的激光非线性频率。估计由辅助干涉仪中的有限采样率引起的扫描频率分布的不准确性可以通过等倍重采样方法有效地补偿。随着130nm的扫描范围,实验获得12.1μm的空间分辨率。另外,讨论了辅助干涉仪的校正的采样限制。在辅助干涉仪中具有200米的光路延迟,在191M光纤端实现了21.3μm的空间分辨率。通过采用所提出的重采样和绘图塔FBG阵列来增强瑞利反向散射,实现了105米纤维的分布式温度,具有1cm的感测分辨率。测量的温度不确定性限制在±0.15°C。

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