Murray Matthew J, Redding Brandon
Opt Lett. 2020 Sep 15;45(18):5226-5229. doi: 10.1364/OL.400159.
We report an amplitude-measuring Rayleigh-based sensor that uses a series of frequency-shifted pulses to extract quantitative distributed strain measurements. By using frequency multiplexing, we are able to inject a train of 10 pulses into the fiber at once. This allows us to use a higher average input power than standard phase-sensitive optical time domain reflectometry systems, improving the sensitivity. The sensor recovers the strain by tracking the time-dependent amplitude of the Rayleigh backscattered light from all 10 pulses. This approach enables a sensor with a noise floor of 1.5ε/√ over 10 km of fiber with 12 m spatial resolution, a 5 kHz bandwidth, and a dynamic range of 80 dB at 1 kHz. The sensor exhibits a high degree of linearity and is immune to interference fading.
我们报道了一种基于瑞利散射的振幅测量传感器,该传感器使用一系列频移脉冲来提取定量分布式应变测量值。通过使用频率复用,我们能够一次向光纤中注入一列10个脉冲。这使我们能够使用比标准相敏光时域反射仪系统更高的平均输入功率,从而提高了灵敏度。该传感器通过跟踪来自所有10个脉冲的瑞利后向散射光随时间变化的振幅来恢复应变。这种方法能够实现一种传感器,在10公里长的光纤上,其本底噪声为1.5ε/√,空间分辨率为12米,带宽为5千赫兹,在1千赫兹时动态范围为80分贝。该传感器具有高度的线性度,并且不受干扰衰落的影响。