首页> 外文期刊>Optics Communications: A Journal Devoted to the Rapid Publication of Short Contributions in the Field of Optics and Interaction of Light with Matter >Compensation for temperature dependence of Stokes signal and dynamic self-calibration of a Raman distributed temperature sensor
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Compensation for temperature dependence of Stokes signal and dynamic self-calibration of a Raman distributed temperature sensor

机译:补偿斯托克斯信号的温度依赖性以及拉曼分布式温度传感器的动态自校准

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This article discusses a powerful calibration technique that compensates for the temperature dependence of the Stokes signal in a Raman distributed temperature sensor. The Stokes signal is conventionally used for normalization since its scattering cross-section is a weaker function of temperature than that of the anti-Stokes signal. The potential of this temperature dependence of the Stokes signal to introduce errors in measurements has received only cursory mention in the literature. We show that this effect degrades the temperature accuracy by as much as 90%. Additionally the heavy fiber attenuation at the operating wavelength also makes calibration non-trivial. The technique described implements a corrective mechanism for this temperature dependence, offers the additional benefit of self-referencing of a heated curve rather than referencing to the fiber at room temperature, and demonstrates the viability of such a system despite the heavy fiber attenuation at the operating wavelength. This obviates the impractical and erroneous approach of storing an initial room temperature profile for subsequent temperature calculation. This dynamic self-referencing adds substantial immunity to the tolerances in the actual numerical values of the Raman wavelengths thereby making the system robust
机译:本文讨论了一种强大的校准技术,该技术可以补偿拉曼分布式温度传感器中斯托克斯信号的温度依赖性。斯托克斯信号通常用于归一化,因为它的散射截面比反斯托克斯信号的散射函数的温度函数弱。斯托克斯信号的这种温度依赖性在测量中引入误差的可能性在文献中仅被粗略提及。我们表明,这种影响使温度精度降低了多达90%。另外,光纤在工作波长处的沉重衰减也使校准变得不容易。所描述的技术为这种温度依赖性实现了一种校正机制,提供了自动参考加热曲线的优势,而不是参考室温下的光纤,并且证明了这种系统的可行性,尽管在操作过程中光纤的衰减很大。波长。这消除了存储初始室温曲线以用于随后的温度计算的不切实际和错误的方法。这种动态自参考极大地提高了拉曼波长实际数值容差的抵抗力,从而使系统坚固耐用

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