Dang Yunli, Zhao Zhiyong, Tang Ming, Zhao Can, Gan Lin, Fu Songnian, Liu Tongqing, Tong Weijun, Shum Perry Ping, Liu Deming
Opt Express. 2017 Aug 21;25(17):20183-20193. doi: 10.1364/OE.25.020183.
Featuring a dependence of Brillouin frequency shift (BFS) on temperature and strain changes over a wide range, Brillouin distributed optical fiber sensors are however essentially subjected to the relatively poor temperature/strain measurement resolution. On the other hand, phase-sensitive optical time-domain reflectometry (Φ-OTDR) offers ultrahigh temperature/strain measurement resolution, but the available frequency scanning range is normally narrow thereby severely restricts its measurement dynamic range. In order to achieve large dynamic range and high measurement resolution simultaneously, we propose to employ both the Brillouin optical time domain analysis (BOTDA) and Φ-OTDR through space-division multiplexed (SDM) configuration based on the multicore fiber (MCF), in which the two sensors are spatially separately implemented in the central core and a side core, respectively. As a proof of concept, the temperature sensing has been performed for validation with 2.5 m spatial resolution over 1.565 km MCF. Large temperature range (10 °C) has been measured by BOTDA and the 0.1 °C small temperature variation is successfully identified by Φ-OTDR with ~0.001 °C resolution. Moreover, the temperature changing process has been recorded by continuously performing the measurement of Φ-OTDR with 80 s frequency scanning period, showing about 0.02 °C temperature spacing at the monitored profile. The proposed system enables the capability to see finer and/or farther upon requirement in distributed optical fiber sensing.
布里渊频移(BFS)在很大范围内依赖于温度和应变变化,然而布里渊分布式光纤传感器本质上存在温度/应变测量分辨率相对较差的问题。另一方面,相敏光时域反射仪(Φ-OTDR)提供超高的温度/应变测量分辨率,但可用的频率扫描范围通常较窄,从而严重限制了其测量动态范围。为了同时实现大动态范围和高测量分辨率,我们建议通过基于多芯光纤(MCF)的空分复用(SDM)配置同时采用布里渊光时域分析(BOTDA)和Φ-OTDR,其中两个传感器分别在中心纤芯和一个边纤芯中空间分离实现。作为概念验证,已在1.565 km的MCF上以2.5 m的空间分辨率进行了温度传感验证。BOTDA测量了较大的温度范围(10°C),Φ-OTDR成功识别出0.1°C的小温度变化,分辨率约为0.001°C。此外,通过以80 s的频率扫描周期连续进行Φ-OTDR测量记录了温度变化过程,在监测剖面处显示出约0.02°C的温度间隔。所提出的系统能够根据分布式光纤传感的需求实现更精细和/或更远距离的监测。