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Differential-pressure-based fiber-optic temperature sensor using Fabry-Perot interferometry

机译:使用Fabry-Perot干涉仪的基于差压的光纤温度传感器

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We propose a novel fiber-optic Fabry-Perot interferometric (FFPI) temperature sensor based on differential pressure resulting from thermal expansion of sealed air. A thin silicon diaphragm is sandwiched between two micro-circular cavity-structured Pyrex plates to construct a FP and an air cavity. The thermal expansion of sealed air induces differential pressure variation between cavities and thus the deformation of thin diaphragm, which transfers temperature change into cavity length shift of FP interferometer. Theory analysis results indicate that the temperature-sensitivity can be designed flexibly by choosing the parameters of radius and thickness of silicon diaphragm, and the differential pressure between two cavities. Experimental results demonstrate that the temperature sensitivity of 6.07 nm/degrees C is achieved with the resolution of 0.10 degrees C under the range of -50 degrees C to 100 degrees C, and the response time is around 1.3 s with temperature change from 28 degrees C to 100 degrees C. (C) 2015 Optical Society of America
机译:我们基于密封空气的热膨胀产生的压差,提出了一种新型的光纤法布里-珀罗干涉式(FFPI)温度传感器。一块薄的硅膜片夹在两个微圆形空腔结构的Pyrex板之间,以构造FP和空气腔。密封空气的热膨胀会引起型腔之间的压差变化,从而引起薄膜的变形,从而将温度变化转换为FP干涉仪的型腔长度偏移。理论分析结果表明,通过选择硅膜片的半径和厚度以及两个腔体之间的压差参数,可以灵活地设计温度敏感性。实验结果表明,在-50摄氏度至100摄氏度范围内,分辨率为0.10摄氏度时,可实现6.07 nm /摄氏度的温度灵敏度,并且温度从28摄氏度变化时,响应时间约为1.3 s到100摄氏度。(C)2015年美国光学学会

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