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High-Temperature Resistance Fiber Bragg Grating Temperature Sensor Fabrication

机译:高温电阻光纤布拉格光栅温度传感器的制造

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摘要

Fiber Bragg grating (FBG) temperature sensor and sensor arrays were applied widespread particularly in harsh environments. Although FBGs are often referring to permanent refractive index modulation in the fiber core, exposure to high-temperature environments usually results in the bleach of the refractive index modulation. The maximum temperature reported for the conventional FBG temperature sensor is around 600 degC due to its weak bonds of germanium and oxygen. In this paper, we report design and development of a novel high-temperature resistance FBG temperature sensor, based on the hydrogen-loaded germanium-doped FBG. The refractive index modulation in the FBG is induced by the molecular water. The results of our experiments have shown that the stability of the device is substantially increased at high temperature range. Due to the high bonds energy of hydroxyl and the low diffusivity of the molecular water, the thermal testing results of this temperature sensor show the thermal stability of hydrogen-loaded FBG can be increased by using annealing treatment; moreover, the highest erasing temperature for the device could reach to 1100 degC or more. The reflectivity of this new FBG depends on the concentration of Si-OH and indirectly related to the reflectivity of hydrogen-loaded FBG. Furthermore, the experimental results have provided a better understanding of the formation of the hydrogen-loaded FBGs and the chemical transfers at elevated temperatures in the fiber core
机译:光纤布拉格光栅(FBG)温度传感器和传感器阵列得到了广泛的应用,尤其是在恶劣的环境中。尽管FBG通常是指纤芯中的永久折射率调制,但暴露于高温环境通常会导致折射率调制变白。传统的FBG温度传感器报告的最高温度约为600℃,这是因为其锗和氧之间的弱键。在本文中,我们报告了一种基于氢掺杂锗掺杂的FBG的新型高温电阻FBG温度传感器的设计和开发。 FBG中的折射率调制是由分子水引起的。我们的实验结果表明,该器件的稳定性在高温范围内大大提高。由于羟基的键能高且分子水的扩散率低,该温度传感器的热测试结果表明,通过退火处理,可以提高含氢FBG的热稳定性。此外,该设备的最高擦除温度可能达到1100摄氏度或更高。这种新型FBG的反射率取决于Si-OH的浓度,并且与含氢FBG的反射率间接相关。此外,实验结果对加氢的FBG的形成以及纤维芯中高温下的化学传递有更好的了解。

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