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首页> 外文期刊>IEEE Photonics Technology Letters >Fiber-Optic Temperature Sensor Using a Fabry–Pérot Cavity Filled With Gas of Variable Pressure
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Fiber-Optic Temperature Sensor Using a Fabry–Pérot Cavity Filled With Gas of Variable Pressure

机译:光纤温度传感器,使用充满可变压力气体的法布里-珀罗腔进行测量

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We report a high-temperature fiber-optic sensor based on measuring the spectral fringes of a Fabry–Pérot (FP) cavity on a microstructure fiber (MF) when the gas pressure in the cavity is varied through the holes in the MF. Theoretical analysis shows that the absolute temperature can be deduced from the slope of the spectral shift versus pressure curve, which requires no calibration and is insensitive to the FP cavity length variations. For demonstration, we fabricated a miniature sensor whose FP cavity is formed by sandwiching a fuse-silica tube between a side-hole MF and a solid-core fiber. Using the holes in the MF as gas channels, the pressure in the FP cavity is controlled. The sensor was tested for operation above 1000$^{circ}{rm C}$. Strain-insensitive temperature measurement was demonstrated at ambient temperature for a strain range up to 3600 $muvarepsilon$.
机译:我们报告了一种高温光纤传感器,该传感器基于测量腔中的气压通过MF中的孔而变化时在微结构纤维(MF)上测量Fabry-Pérot(FP)腔的光谱条纹的情况。理论分析表明,绝对温度可以从光谱偏移与压力曲线的斜率推导出,这不需要校准并且对FP腔长度的变化不敏感。为了演示,我们制造了一个微型传感器,该传感器的FP腔是通过将熔融石英管夹在侧孔MF和实芯光纤之间而形成的。使用MF中的孔作为气体通道,可控制FP腔中的压力。对传感器进行了1000 $ ^ {circ} {rm C} $以上的操作测试。在环境温度下,对应变不敏感的温度测量结果表明,应变范围高达3600μvarepsilon。

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