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Fabry–Perot Cavity Sensing Probe with High Thermal Stability for an Acoustic Sensor by Structure Compensation

机译:通过结构补偿为声传感器提供高热稳定性的法布里-珀罗腔感应探头

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摘要

Fiber Fabry–Perot cavity sensing probes with high thermal stability for dynamic signal detection which are based on a new method of structure compensation by a proposed thermal expansion model, are presented here. The model reveals that the change of static cavity length with temperature only depends on the thermal expansion coefficient of the materials and the structure parameters. So, fiber Fabry–Perot cavity sensing probes with inherent temperature insensitivity can be obtained by structure compensation. To verify the method, detailed experiments were carried out. The experimental results reveal that the static cavity length of the fiber Fabry–Perot cavity sensing probe with structure compensation hardly changes in the temperature range of −20 to 60 °C and that the method is highly reproducible. Such a method provides a simple approach that allows the as-fabricated fiber Fabry–Perot cavity acoustic sensor to be used for practical applications, exhibiting the great advantages of its simple architecture and high reliability.
机译:本文介绍了一种具有高热稳定性的Fabry-Perot光纤腔感测探头,用于动态信号检测,该探头基于通过拟议的热膨胀模型进行结构补偿的新方法。该模型表明,静腔长度随温度的变化仅取决于材料的热膨胀系数和结构参数。因此,可以通过结构补偿获得具有固有温度不敏感性的光纤Fabry-Perot腔传感探头。为了验证该方法,进行了详细的实验。实验结果表明,具有结构补偿的光纤Fabry-Perot腔传感探头的静态腔长度在-20至60°C的温度范围内几乎不变,并且该方法具有高度可重复性。这种方法提供了一种简单的方法,可以将制成的光纤Fabry-Perot腔体声学传感器用于实际应用,其结构简单,可靠性高等优点非常明显。

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