TY - JOUR
T1 - Band optimization of passive methane gas leak detection based on uncooled infrared focal plane array
AU - Xu, Zhang
AU - Jin, Weiqi
AU - Li, Li
AU - Wang, Xia
AU - Chen, Ji
AU - Jia, Yuchao
N1 - Publisher Copyright:
© 2018 Optical Society of America.
PY - 2018/5/20
Y1 - 2018/5/20
N2 - Current methane gas leak detection technology uses infrared imaging in the medium wave (MW) or long wave (LW) bands, essentially applying cooled infrared detectors. In this study, a simplified three-layer radiative transfer model is adopted based on methane gas detection theory, considering background radiation, atmospheric infrared absorption, gas absorption, and emission characteristics to analyze the contrast of methane gas thermography in different infrared bands. The analysis results suggest that under certain conditions, the 6.6-8.6 μm LW band provides higher contrast compared to the 3-5 μm MW band. The optimal imaging wavelength band is selected according to imaging contrast advantages and disadvantages, and infrared optical systems and infrared filters are designed and optimized. We build a passive methane gas leak detection system based on uncooled infrared focal plane array detectors. By collecting gas images under different conditions, the imaging detection capabilities for methane gas leaks in the MW and LW bands in a laboratory environment are compared. Finally, the developing trends in methane gas detection technology are analyzed.
AB - Current methane gas leak detection technology uses infrared imaging in the medium wave (MW) or long wave (LW) bands, essentially applying cooled infrared detectors. In this study, a simplified three-layer radiative transfer model is adopted based on methane gas detection theory, considering background radiation, atmospheric infrared absorption, gas absorption, and emission characteristics to analyze the contrast of methane gas thermography in different infrared bands. The analysis results suggest that under certain conditions, the 6.6-8.6 μm LW band provides higher contrast compared to the 3-5 μm MW band. The optimal imaging wavelength band is selected according to imaging contrast advantages and disadvantages, and infrared optical systems and infrared filters are designed and optimized. We build a passive methane gas leak detection system based on uncooled infrared focal plane array detectors. By collecting gas images under different conditions, the imaging detection capabilities for methane gas leaks in the MW and LW bands in a laboratory environment are compared. Finally, the developing trends in methane gas detection technology are analyzed.
UR - http://www.scopus.com/inward/record.url?scp=85047614292&partnerID=8YFLogxK
U2 - 10.1364/AO.57.003991
DO - 10.1364/AO.57.003991
M3 - Article
C2 - 29791370
AN - SCOPUS:85047614292
SN - 1559-128X
VL - 57
SP - 3991
EP - 4001
JO - Applied Optics
JF - Applied Optics
IS - 15
ER -