Return
Phase Noise Effects on Phase-Sensitive OTDR Sensors Using Optical Pulse Compression
DOI:10.1109/JLT.2021.3138249.png)
Abstract
En 中文
We introduce a detailed theoretical, numerical, and experimental study of the effects of laser's phase noise on the performance of phase-sensitive optical time-domain refiectometry (phi-OTDR) sensors that use optical pulse compression (OPC). Pulse compression is a technique that can he used to improve the received signal amplitude by increasing the effective energy of the pulses that are launched into the fiber without degrading the spatial resolution of the measurements. Therefore, it is a valuable tool to extend the range of these sensors and mitigate fiber attenuation constraints. However, it has been observed that the limited coherence of the laser source has a degrading effect on the actual performance enhancement that this method can provide. Here, we derive a theoretical model that can be used to quantify this degradation for any type of OPC such as those based on either linear frequency modulation (LFM) pulses or perfect periodic autocorrelat ion (PPA) bipolar bit sequences. The model facilitates numerical estimation of the sensitivity of the phi-OTDR measurements. It also produces theoretical expressions for the mean and the variance of the phase-noise perturbed backscatter response. These results are validated via numerical simulations and experiments in phi-OTDR setups using LFM as well as PPA OPC. Furthermore, we demonstrate the use of the model to investigate the basic trade-offs involved in the design of OPC phi-OTDR systems.
Keywords:
Phase noise
distributed acoustic sensing
optical pulse compression
optical time domain reflectometry
linear frequency modulation
perfect periodic autocorrelation codes
Journal
IF:
4.8
Papers:
1.7W
Citations:
3.8W


