Fernández-Ruiz Maria R, Martins Hugo F, Pastor-Graells Juan, Martin-Lopez Sonia, Gonzalez-Herraez Miguel
Opt Lett. 2016 Dec 15;41(24):5756-5759. doi: 10.1364/OL.41.005756.
Typical phase-sensitive optical time-domain reflectometry (ϕOTDR) schemes rely on the use of coherent rectangular-shaped probe pulses. In these systems, there is a trade-off between the signal-to-noise ratio (SNR), spatial resolution, and operating range of the ϕOTDR system. To increase any of these parameters, an increase in the pulse peak power is usually indispensable. However, as it is well known, there is a limit in the allowable increase in probe power due to the onset of undesired nonlinear effects such as modulation instability. In this Letter, we perform an analysis of the effect of the probe pulse shape on the visibility fading due to modulation instability. In particular, four different temporal profiles are chosen: rectangular, Gaussian, triangular, and super-Gaussian (order 2). Our numerical and experimental analyses reveal that the use of triangular or Gaussian-like pulses can significantly inhibit the visibility fading issues. As such, an increase in the range up to twofold for the same pulse energy (i.e., SNR) and nominal spatial resolution can be achieved, as compared with the results obtained when using rectangular pulses. This is due to a more robust behavior of the Gaussian and triangular pulses against the Fermi-Pasta-Ulam recurrence occurring in modulation instability.
典型的相敏光时域反射仪(ϕOTDR)方案依赖于使用相干矩形探测脉冲。在这些系统中,ϕOTDR系统的信噪比(SNR)、空间分辨率和工作范围之间存在权衡。为了提高这些参数中的任何一个,通常都需要增加脉冲峰值功率。然而,众所周知,由于诸如调制不稳定性等不期望的非线性效应的出现,探测功率的允许增加是有限的。在本信函中,我们对探测脉冲形状对由于调制不稳定性导致的可见度衰落的影响进行了分析。具体而言,选择了四种不同的时间轮廓:矩形、高斯、三角形和超高斯(二阶)。我们的数值和实验分析表明,使用三角形或类高斯脉冲可以显著抑制可见度衰落问题。因此,与使用矩形脉冲时获得的结果相比,在相同脉冲能量(即SNR)和标称空间分辨率的情况下,范围可以增加两倍。这是由于高斯和三角形脉冲对调制不稳定性中出现的费米 - 帕斯塔 - 乌拉姆递归具有更强的鲁棒性。