Chen Dian, Liu Qingwen, He Zuyuan
Opt Express. 2017 Apr 3;25(7):8315-8325. doi: 10.1364/OE.25.008315.
For a distributed fiber-optic vibration sensor (DFVS), the vibration signal extracted from the phase of backscattering has a linear response to the applied vibration, and is more attractive than that from the intensity term. However, the large phase noise at a random weak-fading-point seriously limits the sensor's credibility. In this paper, a novel phase-detection DFVS is developed, which effectively eliminates the weak-fading-point. The relationship between phase noise and the intensity of backscattering is analyzed, and the inner-pulse frequency-division method and rotated-vector-sum method are introduced to effectively suppress phase noise. In experiments, two simultaneous vibrations along the 35-kilometer-long fiber are clearly detected by phase detection with the signal-to-noise ratio (SNR) over 26 dB. The spatial resolution approaches 5 m and the vibration response bandwidth is 1.25 kHz.
对于分布式光纤振动传感器(DFVS),从背向散射相位中提取的振动信号对施加的振动具有线性响应,并且比从强度项提取的信号更具吸引力。然而,随机弱衰落点处的大相位噪声严重限制了传感器的可靠性。本文开发了一种新型的相位检测DFVS,它有效地消除了弱衰落点。分析了相位噪声与背向散射强度之间的关系,并引入了内脉冲分频法和旋转矢量求和法来有效抑制相位噪声。在实验中,通过相位检测清晰地检测到了沿35公里长光纤同时发生的两次振动,信噪比(SNR)超过26 dB。空间分辨率接近5米,振动响应带宽为1.25 kHz。