Sampath Umesh, Kim Daegil, Kim Hyunjin, Song Minho
Appl Opt. 2018 Jan 20;57(3):492-497. doi: 10.1364/AO.57.000492.
A polymer-coated fiber Bragg grating (PCFBG) is examined for real-time temperature and strain monitoring in composite materials at cryogenic temperatures. The proposed sensor enables the simultaneous measurement of temperature and strain at extremely low temperatures by tracking the changes in the reflected center wavelengths from a pair of PCFBGs embedded in a composite material. The cryogenic temperature sensing was realized by introducing polymer coatings onto bare FBGs, which resulted in high temperature sensitivity under cryogenic conditions. A comparison of wavelength responses of the Bragg grating with and without a polymer coating toward temperatures ranging from 25°C to -180°C was performed. The polymer-coated FBG exhibited a sensitivity of 48 pm/°C, which is 10 times greater than that of the bare FBGs. In addition, the encapsulation of the FBG in a capillary tube made it possible to evaluate the strain accumulated within the composite during operation under cryogenic conditions.
研究了一种聚合物涂层光纤布拉格光栅(PCFBG)用于在低温下对复合材料进行实时温度和应变监测。所提出的传感器通过跟踪嵌入复合材料中的一对PCFBG反射中心波长的变化,能够在极低温度下同时测量温度和应变。通过在裸光纤布拉格光栅上引入聚合物涂层实现了低温温度传感,这在低温条件下产生了高温度灵敏度。对有和没有聚合物涂层的布拉格光栅在25°C至 -180°C温度范围内的波长响应进行了比较。聚合物涂层光纤布拉格光栅表现出48 pm/°C的灵敏度,这比裸光纤布拉格光栅的灵敏度高10倍。此外,将光纤布拉格光栅封装在毛细管中使得能够评估在低温条件下运行期间复合材料内部积累的应变。