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Fiber-optic sensor for simultaneous strain and temperature monitoring in composite materials at cryogenic condition

机译:光纤传感器,可在低温条件下同时监测复合材料的应变和温度

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Low thermal sensitivity and cross sensitivity of Fiber Bragg Grating (FBG) towards the applied strain, temperature make FBG implementation complicated in composite materials at cryogenic conditions. In order to alleviate this problem, our work focuses on simultaneous strain and temperature monitoring inside the composite material at cryogenic temperatures. The temperature sensitive polymer coating on an FBG sensor makes it a suitable candidate for cryogenic temperature measurement. The average temperature sensitivity of 48 pm °C~(-1) was obtained in -180 ~ 25 °C. In addition, the cross sensitivity problem has been adjusted by introducing a glass capillary tube to encapsulate the FBG. The thermal expansion of capillary material was compensated by cleaving the one end of FBG free and the other end with the temperature resistant epoxy resins. Experiments results validate that the proposed method can successfully monitor the strain and temperature factors that can be applied to composite material at cryogenic temperatures.
机译:光纤布拉格光栅(FBG)对所施加的应变,温度的低热敏性和交叉敏感性使得在低温条件下复合材料中FBG的实现变得复杂。为了减轻这个问题,我们的工作重点是在低温下同时监测复合材料内部的应变和温度。 FBG传感器上的温度敏感聚合物涂层使其成为低温温度测量的合适候选者。在-180〜25°C下获得48 pm°C〜(-1)的平均温度灵敏度。此外,通过引入玻璃毛细管来封装FBG,可以解决交叉灵敏度问题。毛细管材料的热膨胀通过将FBG的一端游离而另一端用耐热的环氧树脂裂解来补偿。实验结果证明,该方法可以成功地监测在低温下可应用于复合材料的应变和温度因子。

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