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Highly sensitive optical fiber temperature sensor based on the thermal shift of the liquid-air interface

机译:基于液-气界面的热位移的高灵敏度光纤温度传感器

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摘要

A highly sensitive optical fiber temperature sensor based on the thermal shift of the liquid-gas interface is proposed. A section of silica capillary tube (SCT) was spliced to a single mode fiber, and a small quantity of liquid polydimethylsiloxane was filled into the innermost part of SCT by using the offset capillarity method. Then, the end of the SCT was sealed by solidified UV curable adhesive. As a result, a liquid Fabry-Perot (FP) cavity, an air FP cavity, and a liquid-gas interface were formed simultaneously in the SCT. The lengths of the two cavities changed synchronously and complementarily along with the thermal shift of the liquid-air interface, which resulted in the opposite wavelength shifts of the corresponding FP interference fringes. The temperature sensitivities are 1.67 and -0.32 nm/℃, respectively. A differential sensitivity of 1.99 nm/℃ can be achieved by monitoring the two kinds of fringes synchronously.
机译:提出了一种基于液-气界面热位移的高灵敏度光纤温度传感器。将石英毛细管(SCT)的部分拼接到单模光纤上,并使用偏移毛细管法将少量液态聚二甲基硅氧烷填充到SCT的最内部。然后,将SCT的末端用固化的UV固化粘合剂密封。结果,在SCT中同时形成液体法布里-珀罗(FP)腔,空气FP腔和液-气界面。两个空腔的长度随着液-气界面的热位移而同步且互补地变化,这导致了相应的FP干涉条纹的相反波长位移。温度灵敏度分别为1.67和-0.32 nm /℃。同步监测两种条纹可以实现1.99 nm /℃的差分灵敏度。

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