Electrical and Computer Engineering Department, Michigan State University, East Lansing, MI 48824, USA.
Sensors (Basel). 2023 Mar 21;23(6):3302. doi: 10.3390/s23063302.
We report a high-resolution fiber optic temperature sensor system based on an air-filled Fabry-Pérot (FP) cavity, whose spectral fringes shift due to a precise pressure variation in the cavity. The absolute temperature can be deduced from the spectral shift and the pressure variation. For fabrication, a fused-silica tube is spliced with a single-mode fiber at one end and a side-hole fiber at the other to form the FP cavity. The pressure in the cavity can be changed by passing air through the side-hole fiber, causing the spectral shift. We analyzed the effect of sensor wavelength resolution and pressure fluctuation on the temperature measurement resolution. A computer-controlled pressure system and sensor interrogation system were developed with miniaturized instruments for the system operation. Experimental results show that the sensor had a high wavelength resolution (<0.2 pm) with minimal pressure fluctuation (~0.015 kPa), resulting in high-resolution (±0.32 ℃) temperature measurement. It shows good stability from the thermal cycle testing with the maximum testing temperature reaching 800 ℃.
我们报告了一种基于充空气法布里-珀罗(FP)腔的高分辨率光纤温度传感器系统,其光谱条纹由于腔中的精确压力变化而发生位移。绝对温度可以从光谱位移和压力变化中推断出来。为了制造,将熔融硅管在一端与单模光纤熔接,在另一端与侧孔光纤熔接,形成 FP 腔。通过侧孔光纤通入空气来改变腔中的压力,从而引起光谱位移。我们分析了传感器波长分辨率和压力波动对温度测量分辨率的影响。为了系统操作,开发了一个带有小型仪器的计算机控制压力系统和传感器询问系统。实验结果表明,该传感器具有较高的波长分辨率(<0.2 pm)和较小的压力波动(~0.015 kPa),从而实现了高分辨率(±0.32 ℃)的温度测量。从最高测试温度达到 800 ℃的热循环测试来看,它表现出良好的稳定性。