Department of Electrical and Computer Engineering, US Naval Academy, 105 Maryland Ave., Annapolis, MD 21402, USA.
Department of Mechanical Engineering, US Naval Academy, 590 Holloway Rd., Annapolis, MD 21402, USA.
Sensors (Basel). 2019 Mar 23;19(6):1432. doi: 10.3390/s19061432.
As the applications of fiber Bragg gratings (FBGs) continue to grow and become more advanced, it becomes necessary to understand their behavior when exposed to high temperatures in unique situations. In these experiments, uniform 1530-nm fiber Bragg gratings and Type K Cr-Al thermocouples were embedded in three-ply carbon fiber composites. A 100 W high energy laser (HEL) heated the composites to high temperatures over timespans less than one second, and FBG spectral data and thermocouple temperature data were collected during each HEL heating test. The data from three high energy laser tests that represent different levels of damage to the FBG are analyzed to explore the spectral response and thermal decay of embedded FBG sensors when exposed to high temperatures over short timespans. Results are compared to a previously proposed power-law model describing the decay of FBGs in bare fiber when held at constant temperatures over much longer timespans.
随着光纤布拉格光栅(FBG)的应用不断发展和变得更加先进,有必要了解它们在特殊情况下暴露于高温时的行为。在这些实验中,均匀的 1530nm 光纤布拉格光栅和 K 型 Cr-Al 热电偶被嵌入到三层碳纤维复合材料中。一个 100W 的高能激光(HEL)在不到一秒的时间内将复合材料加热到高温,并且在每次 HEL 加热测试期间收集 FBG 光谱数据和热电偶温度数据。对三个代表 FBG 不同损伤程度的高能激光测试的数据进行分析,以研究在短时间内暴露于高温下嵌入 FBG 传感器的光谱响应和热衰减。结果与之前提出的描述在恒温下保持更长时间的裸光纤中 FBG 衰减的幂律模型进行了比较。