Zhou Ai, Qin Boyang, Zhu Zheng, Zhang Yaxun, Liu Zhihai, Yang Jun, Yuan Libo
Opt Lett. 2014 Sep 15;39(18):5267-70. doi: 10.1364/OL.39.005267.
We fabricate and experimentally demonstrate a hybrid structured Fabry-Perot interferometer (FPI) embedded in the middle of a fiber line for simultaneous measurement of axial strain and temperature. The FPI is composed of a silica-cavity cascaded to a spheroidal air-cavity, both of which are formed in a hollow annular core fiber (HACF). The fabrication process of the FPI includes only a fusion splice between a single-mode fiber and a HACF and several electrical arc discharges at the HACF near the splice point. Experimental results show that the strain and temperature sensitivities of the air-cavity can be 5.2 pm/με and 1.3 pm/C°, respectively, and those of the silica-cavity can be 1.1 pm/με and 13 pm/C°, respectively. The different sensitivities of silica-cavity and air-cavity to strain and temperature enable us to implement simultaneous sensing in strain and temperature.
我们制造并通过实验证明了一种嵌入在光纤线路中间的混合结构法布里-珀罗干涉仪(FPI),用于同时测量轴向应变和温度。该FPI由一个与球形空气腔级联的二氧化硅腔组成,两者均在空心环形芯光纤(HACF)中形成。FPI的制造过程仅包括单模光纤与HACF之间的熔接以及在熔接点附近的HACF处进行几次电弧放电。实验结果表明,空气腔的应变和温度灵敏度分别可以达到5.2 pm/με和1.3 pm/°C,而二氧化硅腔的应变和温度灵敏度分别可以达到1.1 pm/με和13 pm/°C。二氧化硅腔和空气腔对应变和温度的不同灵敏度使我们能够实现应变和温度的同时传感。