Laboratory Calibration and Comparison Verification of Multi-channel Self-calibration Infrared Radiation Thermometer
SUN Yan-dong1,2,HAO Xiao-peng2,XIE Chen-yü2,ZHOU Jing-jing2,ZENG Bing1,SONG Jian2,LING Ling1,2
1. College of Mechanic and Electronic Engineering, Chengdu University of Technology, Chengdu, Sichuan 610059, China
2. Remote Sensing Laboratory, Devision of Thermal Metrology Science, National Institute of Metrology, Beijing 100029, China
Abstract:The thermal infrared radiometer is critical for gathering field data and validating remote sensing satellite observation data. The accuracy of its calibration has a direct impact on the accuracy and application level of remote sensing data analysis. The design concept of a multi-channel self-calibration infrared radiation thermometer is primarily discussed. The laboratory calibration and repeatability experiments are performed to validate the level of instrument measurement data under long-term operation, and the uncertainty of instrument radiation brightness temperature is 0.27K. The mainstream radiometer is used for the laboratory test analysis, and the accuracy of the calibration results are compared. The maximum deviation of the multi-channel self-calibration infrared radiation thermometer is 0.26℃, and the overall deviation is within 0.3℃. The measurement level of the instrument is verified through outdoor grassland testing experiments. The results show that the multi-channel self-calibration infrared radiation thermometer has a high level of accuracy, and can meet the requirements of long-term, multi-channel and high-precision work in the field, providing data support for the field calibration.
Czapla-Myers J S. Automated ground-based methodology in support of vicarious calibration [D]. Tucson: The University of Arizona, 2006.
[1]
Li Z L, Tang B H, Wu H, et al. Satellite-derived land surface temperature: Current status and perspectives [J].Remote Sensing of Environment,2013,131:14-37.
Lü B, Hao X P, Sun J P, et al. Development of water profile temperature measuring instrument [J]. Acta Metrologica Sinica, 2019, 40(3): 440-446.
Yang Y L, Hao X P, Song J, et al. Development of vacuum standard blackbody radiation source at medium temperature [J]. Acta Metrologica Sinica, 2021, 42(2): 129-136.
Wang M, Zhou S D, He M Y, et al. Comparative analysis of radiation calibration site characteristics of satellite remote sensors at home and abroad [J]. Geomatics and Spatial Information Technology, 2015, 38(7): 24-27.
Li X, Zheng X B, Yin Y P. Advances in site automatic calibration technology [J]. Journal of Atmospheric and Environmental Optics, 2014, 9(1): 17-21.
[11]
Donlon C, Robinson I S, Wimmer W, et al. An infrared sea surface temperature autonomous radiometer (ISAR) for deployment aboard volunteer observing ships (VOS) [J]. Journal of Atmospheric and Oceanic Technology, 2008, 25(1): 93-113.
Wang F, Zhang J, Fan Z Y, et al. Optical system of ocean four-band infrared radiometer [J]. Infrared and laser engineering, 2013, 42(S2): 368-373.
Song J, Hao X P, Yuan Z D, et al. Research on emissivity measurement method of blackbody radiation source based on controlling environmental radiation [J]. Chinese Journal of Lasers, 2015, 42(9): 277-283.
Yin Y P, Li X, Zheng X B, et al. Design and implementation of site automatic observation radiometer [J]. Journal of Atmospheric and Environmental Optics, 2016, 11(1): 44-50.
Yi B, Zhang J, Qu E S, et al. Electronic design and implementation of infrared four-band thermometry radiometer [J]. Infrared and laser engineering, 2013, 42(10): 2630-2635.
Chang J Q, Hao X P, Lü B, et al. Development of self-calibrated surface/water surface infrared radiation thermometer [J]. Acta Metrologica Sinica, 2019, 40(2): 240-245.
Xie C Y, Liu Y, Xie L L, et al. Development and field application of multi-channel self-calibrating thermal infrared radiometer [J]. Metrological Science and Technology, 2022, 66(4): 80-88.
Ling L,Hao X P,Xie C Y, et al. Radiometric Calibration and Field Application of Self-calibrating Infrared Spectrometer[J]. Acta Metrologica Sinica, 2023, 44(9): 1395-1401.
Liu L, Gu X F, Yu T, et. al. Analysis and evaluation of calibration method for ground-based CE312 thermal infrared radiometer [J]. Spectroscopy and spectral analysis, 2012, 32 (2): 343-348.
[19]
Sicard M, Spyak P R, Brogniez G, et al. Thermal-infrared field radiometer for vicarious cross-calibration: characterization and comparisons with other field instruments [J]. Optical Engineering, 1999, 38(2): 345-356.
Minnett P J, Knuteson R O, Best F A, et al. The marine-atmospheric emitted radiance interferometer: A high-accuracy, seagoing infrared spectroradiometer [J]. Journal of Atmospheric and Oceanic Technology, 2001, 18(6): 994-1013.
[16]
Xie C Y, Song J, Liu Y, et al. Design and research on calibration method of multi-channel self-calibration infrared radiation thermometer [C]//AOPC 2021: Infrared Device and Infrared Technology. Beijing, 2021.