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A fiber optic temperature sensor based on multi-core microstructured fiber with coupled cores for a high temperature environment

机译:基于多芯微结构光纤和耦合纤芯的光纤温度传感器,用于高温环境

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Sensors based on fiber optics are irreplaceable wherever immunity to strong electro-magnetic fields or safe operation in explosive atmospheres is needed. Furthermore, it is often essential to be able to monitor high temperatures of over 500℃ in such environments (e.g. in cooling systems or equipment monitoring in power plants). In order to meet this demand, we have designed and manufactured a fiber optic sensor with which temperatures up to 900℃ can be measured. The sensor utilizes multi-core fibers which are recognized as the dedicated medium for telecommunication or shape sensing, but as we show may be also deployed advantageously in new types of fiber optic temperature sensors. The sensor presented in this paper is based on a dual-core microstructured fiber Michelson interferometer. The fiber is characterized by strongly coupled cores, hence it acts as an all-fiber coupler, but with an outer diameter significantly wider than a standard fused biconical taper coupler, which significantly increases the coupling region's mechanical reliability. Owing to the proposed interferometer imbalance, effective operation and high-sensitivity can be achieved. The presented sensor is designed to be used at high temperatures as a result of the developed low temperature chemical process of metal (copper or gold) coating. The hermetic metal coating can be applied directly to the silica cladding of the fiber or the fiber component. This operation significantly reduces the degradation of sensors due to hydrolysis in uncontrolled atmospheres and high temperatures.
机译:基于光纤的传感器在需要抗强电磁场干扰或在爆炸性环境中安全运行的地方都是不可替代的。此外,在这种环境下(例如,在冷却系统或发电厂中的设备监控中),能够监控超过500℃的高温通常很重要。为了满足这一需求,我们设计并制造了一种光纤传感器,可以测量高达900℃的温度。该传感器使用多芯光纤,该多芯光纤被认为是用于电信或形状感测的专用介质,但是正如我们所展示的,它也可以有利地部署在新型光纤温度传感器中。本文介绍的传感器基于双芯微结构光纤迈克尔逊干涉仪。光纤的特点是纤芯牢固地耦合在一起,因此它起着全光纤耦合器的作用,但其外径明显比标准的熔融双锥锥形耦合器宽,从而显着提高了耦合区域的机械可靠性。由于提出的干涉仪不平衡,可以实现有效的操作和高灵敏度。由于开发了金属(铜或金)涂层的低温化学工艺,因此提出的传感器设计用于高温。气密金属涂层可以直接施加到纤维或纤维组分的二氧化硅包层上。该操作显着减少了由于不受控制的大气和高温下的水解而导致的传感器退化。

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