Li Yi, Qian Li, Zhou Ciming, Fan Dian, Xu Qiannan, Pang Yandong, Chen Xi, Tang Jianguan
National Engineering Laboratory for Fiber Optic Sensing Technology, Wuhan University of Technology, Wuhan 430070, China.
School of Science, Wuhan University of Technology, Wuhan 430070, China.
Sensors (Basel). 2018 Jan 12;18(1):210. doi: 10.3390/s18010210.
Multi-point vibration sensing at the low frequency range of 0.5-100 Hz is of vital importance for applications such as seismic monitoring and underwater acoustic imaging. Location-resolved multi-point sensing using a single fiber and a single demodulation system can greatly reduce system deployment and maintenance costs. We propose and demonstrate the demodulation of a fiber-optic system consisting of 500 identical ultra-weak Fiber Bragg gratings (uwFBGs), capable of measuring the amplitude, frequency and phase of acoustic signals from 499 sensing fibers covering a total range of 2.5 km. For demonstration purposes, we arbitrarily chose six consecutive sensors and studied their performance in detail. Using a passive demodulation method, we interrogated the six sensors simultaneously, and achieved a high signal-to-noise ratio of 22.1 dB, excellent linearity, phase sensitivity of around 0.024 rad/Pa, and a dynamic range of about 38 dB. We demonstrated a frequency response flatness of <1.2 dB in the range of 0.5-100 Hz. Compared to the prior state-of-the-art demonstration using a similar method, we have increased the sensing range from 1 km to 2.5 km, and increased the frequency range from 0.4 octaves to 7.6 octaves, in addition to achieving sensing in the very challenging low-frequency range of 0.5-100 Hz.
在0.5 - 100Hz的低频范围内进行多点振动传感对于地震监测和水下声学成像等应用至关重要。使用单根光纤和单个解调系统进行位置分辨的多点传感可以大大降低系统部署和维护成本。我们提出并演示了一种由500个相同的超弱光纤布拉格光栅(uwFBG)组成的光纤系统的解调,该系统能够测量来自499根传感光纤的声信号的幅度、频率和相位,总覆盖范围为2.5公里。为了进行演示,我们任意选择了六个连续的传感器并详细研究了它们的性能。使用被动解调方法,我们同时对这六个传感器进行询问,实现了22.1dB的高信噪比、出色的线性度、约0.024rad/Pa的相位灵敏度和约38dB的动态范围。我们展示了在0.5 - 100Hz范围内<1.2dB的频率响应平坦度。与使用类似方法的先前最先进演示相比,我们将传感范围从1公里增加到2.5公里,将频率范围从0.4倍频程增加到7.6倍频程,此外还实现了在极具挑战性的0.5 - 100Hz低频范围内的传感。