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Demonstration of distributed fiber-optic temperature sensing with PM fiber using polarization crosstalk analysis technique

机译:利用极化串扰分析技术演示PM光纤分布式光纤温度检测

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Polarization crosstalk is a phenomenon that the powers of two orthogonal polarization modes propagating in a polarization maintaining (PM) fiber couple into each other. Because there is certain mathematical relationship between the polarization crosstalk signals and external perturbations such as stress and temperature variations, stress and temperature sensing in PM fiber can be simultaneously achieved by measuring the strengths and locations of polarization crosstalk signals. In this paper, we report what we believe the first distributed temperature sensing demonstration using polarization crosstalk analysis in PM fibers. Firstly, by measuring the spacing changes between two crosstalk peaks at different fiber length locations, we obtained the temperature sensing coefficient (TSC) of approximately -0.73 μm/(°C·m), which means that the spacing between two crosstalk peaks induced at two locations changes by 0.73 μm when the temperature changes by 1 °C over a fiber length of 1 meter. Secondly, in order to bring different temperature values at different axial locations along a PM fiber to verify the distributed temperature sensing, four heating-strips are used to heat different fiber sections of the PM fiber under test, and the temperatures measured by the proposed fiber sensing method according to the obtained TSC are almost consistent with those of heating-strips measured by a thermoelectric thermometer. As a new type of distributed fiber temperature sensing technique, we believe that our method will find broad applications in the near future.
机译:偏振串扰是一种现象,即在偏振维持(PM)纤维中传播的两个正交偏振模式的功率彼此相互作用。因为在偏振串扰信号和外部扰动之间存在某些数学关系,例如应力和温度变化,可以通过测量极化串扰信号的强度和位置来同时实现PM光纤中的应力和温度感测。在本文中,我们报告了我们认为在PM纤维中使用偏振串扰分析的第一分布式温度感测示范。首先,通过测量不同光纤长度位置的两个串扰峰之间的间距变化,我们获得了约-0.73μm/(°C·m)的温度传感系数(TSC),这意味着在诱导的两个串扰峰之间的间距当温度在1米的纤维长度上变化1°C时,两个位置会在0.73μm变化0.73μm。其次,为了沿PM光纤在不同的轴向位置处带来不同的温度值以验证分布式温度感测,使用四个加热条用于热被测PM光纤的不同光纤部分,并通过所提出的纤维测量的温度根据所获得的TSC的感测方法几乎一致地与通过热电量温度计测量的加热条。作为一种新型的分布式光纤温度传感技术,我们认为我们的方法将在不久的将来找到广泛的应用。

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