Kim Sunduck, Kwon Oh-Jang, Lee Hyeong-Seok, Kim Chang-Seok, Han Young-Geun
Department of Physics and Research Institute for Natural Sciences, Hanyang University, Seongdong-gu, Seoul, South Korea.
Opt Express. 2013 Jun 3;21(11):13402-7. doi: 10.1364/OE.21.013402.
We propose a novel fiber Bragg grating (FBG) sensor interrogation using a Raman-based Fourier-domain mode locking (FDML) fiber laser for a high speed and long distance measurement. A residual Raman pump after the generation of the Raman-based FDML fiber laser is recycled for secondary signal amplification in a 2-m erbium-doped fiber (EDF) to further enhance the output power. The chromatic dispersion is precisely controlled to suppress the phase noise in the FDML laser cavity, resulting in the improvement of an R-number of 1.43 mm/dB. After recycling residual pump, we achieve the 40-km round trip transmission of the sensing probe signal with a high scan rate of 30.8 kHz. With 205-mW residual pump power, the bandwidth and the maximum gain are measured to be more than 50 nm, 10.3 dB at 1550 nm, respectively. The sensitivity of the proposed Raman-based FDML fiber laser to strain is also measured, which are 0.81 pm/μstrain in the spectral domain and 0.19 ns/μstrain in the time domain, respectively.
我们提出了一种新颖的光纤布拉格光栅(FBG)传感器询问方法,该方法使用基于拉曼的傅里叶域模式锁定(FDML)光纤激光器进行高速长距离测量。基于拉曼的FDML光纤激光器产生后剩余的拉曼泵浦被循环利用,用于在2米掺铒光纤(EDF)中进行二次信号放大,以进一步提高输出功率。精确控制色散以抑制FDML激光腔中的相位噪声,使得R数提高到1.43毫米/分贝。在循环利用剩余泵浦后,我们以30.8千赫兹的高扫描速率实现了传感探头信号40公里的往返传输。在剩余泵浦功率为205毫瓦时,测得带宽和最大增益分别在1550纳米处大于50纳米和10.3分贝。还测量了所提出的基于拉曼的FDML光纤激光器对应变的灵敏度,在光谱域为0.81皮米/微应变,在时域为0.19纳秒/微应变。