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Absolute phase measurement with extrinsic Fabry-Perot optical fiber sensors

机译:具有外在法布里 - 珀罗光纤传感器的绝对相位测量

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This paper describes the use of the first and second optical return paths in a moderate to high finesse Fabry-Perot sensor to measure the absolute phase in extrinsic Fabry-Perot interferometric (EFPI) sensors. Path-matched differential interferometry (PMDI) using high finesse EFPI sensors, a low finesse Fabry-Perot read-out interferometer, and a broadband light source consisting of amplified spontaneous emission (ASE) from an erbium-doped fiber amplifier (EDFA) is used to illustrate the idea. The first and second multiple paths in the Fabry-Perot read-out sensor are used to provide two distinct path-match conditions from the same scanning Fabry-Perot read-out interferometer. The difference in fringe numbers between the centers of two orders of interference fringe packets formed by the distinct path-match conditions makes possible a simple method of measuring the cavity length of EFPI sensors, which in turn can be used to measure absolute phase and the corresponding strain. Sensor cavity length measurement using the multiple return paths in the high finesse Fabry-Perot sensor is compared with measurements made using the modulation transfer function found using an optical spectrum analyzer. Then the multiple return path technique is then used to make strain measurements on a cantilever beam. Comparisons with resistance strain gate measurements are favorable. Characterization tests indicate that the proposed technique has a cavity length measurement resolution on the order of 1.1. micrometer, which translates to a strain resolution of 28 $mu$epsilon for a 4 cm gage length sensor.
机译:本文介绍了在中等至高性能法布里 - 珀罗传感器中的第一和第二光学返回路径的用途,以测量外部法布里 - 珀罗干涉干涉(EFPI)传感器中的绝对相。使用高技能EFPI传感器的路径匹配的差分干涉测量法(PMDI),低技巧法布里 - 珀罗读出干涉干涉仪和由来自掺铒光纤放大器(EDFA)的放大的自发发射(ASE)组成的宽带光源说明这个想法。法布里 - 珀罗读出传感器中的第一和第二多条路径用于提供来自相同扫描法布里 - 珀罗读出干涉干涉仪的两个不同的路径匹配条件。由不同路径匹配条件形成的两个干涉条纹分组的中心之间的边缘数的差异使得能够测量EFPI传感器的空腔长度的简单方法,这又可以用于测量绝对相位和相应的拉紧。使用使用光谱分析仪发现的调制传递函数进行的测量比较了使用高度返回路径的传感器腔长度测量。然后,使用多返回路径技术在悬臂梁上进行应变测量。具有电阻应变栅极测量的比较是有利的。表征测试表明,该技术的腔体长度测量分辨率约为1.1。千分尺,转化为4厘米计量长度传感器的280万美元$ epsilon的应变分辨率。

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