Research on the Influence of Spectral Response on Radiation Spectroscopy Thermometry
YANG Bin1, GUO Hao-ran1, CHEN Xiao-long2, PAN Ke-wei2, GUI Xin-yang1, CAI Xiao-shu1, LIU Pei-jin3
1. Institute of Particle and Two-phase Flow Measurement/Shanghai Key Laboratory of Multiphase Flow and Heat Transfer in Power Engineering, University of Shanghai for Science and Technology, Shanghai 200093, China
2. Shanghai Space Propulsion Technology Research Institute, Shanghai 201109, China
3. National Key Laboratory of Combustion, Flow and Thermo-Structure, Northwestern Polytechnical University, Xi’an 710072, China
Abstract:In order to comprehend the influence of spectral response coefficients on radiation spectroscopy thermometry, the VIS (visible, 200~1 100 nm) and NIR (near-infrared, 900~1 700 nm) spectrometers were used to measure the blackbody radiation spectrums at different temperature. The spectral characteristics of high temperature blackbody radiation spectrums in different wavebands were analyzed. The appropriate response wavebands of different spectrometers were selected to measure temperature. The changes of spectral response coefficient with temperature in this optimized waveband were obtained. The influence of temperature on response coefficient was analyzed in detail. The wavelength range of temperature fitting of radiation spectroscopy and the selecting criterions of response coefficient were summarized. And the influence of selecting of wavelength and response coefficient on thermometry were analyzed. It provides the important references for improving on measurement accuracy of radiation spectroscopy thermometry.
基金资助: National Key Research and Development Plan of China (2016YFB0600601), Shanghai Academy of Spaceflight Technology (SAST2016099), Shanghai Young University Teachers Training Program (ZZslg15002)
作者简介: YANG Bin, (1985—), Ph Doctor, Lecturer, University of Shanghai for Science and Technology e-mail:
yangbin@usst.edu.cn
引用本文:
杨 斌,郭浩然,陈晓龙,潘科玮,桂欣扬,蔡小舒,刘佩进. 光谱响应对辐射光谱测温法的影响研究[J]. 光谱学与光谱分析, 2018, 38(02): 638-642.
YANG Bin, GUO Hao-ran, CHEN Xiao-long, PAN Ke-wei, GUI Xin-yang, CAI Xiao-shu, LIU Pei-jin. Research on the Influence of Spectral Response on Radiation Spectroscopy Thermometry. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2018, 38(02): 638-642.
[1] Alan C Eckbreth. Laser Diagnostics for Combustion Temperature and Species. London: Taylor & Francis Books, Inc., 1996.
[2] Ronald K Hanson. Proceedings of the Combustion Institute, 2011, 33(1): 1.
[3] Singh S, Musculus M P B, Reitz R D. Combustion and Flame, 2009, 156(10): 1898.
[4] Weikl M C, Seeger T, Wendler M, et al. Proceedings of the Combustion Institute, 2009, 32(1): 745.
[5] Bolshov M A, Kuritsyn Y A, Romanovskii Y V. Spectrochimica Acta Part B: Atomic Spectroscopy, 2015, 106(4): 45.
[6] Liu Jiaxun, Cai Xiaoshu, Zhu Zenghao, et al. Front Energy, 2014, 8(1): 138.
[7] Xu Chaoqi, He Guoqiang, Liu Peijin, et al. Journal of Solid Rocket Technology, 2010, 33(5): 594.
[8] Nie Baisheng, He Xueqiu, Zhang Chen, et al. International Journal of Thermal Sciences, 2014, 78(4): 132.
[9] Fu Tairan, Liu Jiangfan, Tang Jiaqi, et al. Infrared Physics & Technology, 2014, 66(9): 49.
[10] Cheng Zhihai, Cai Xiaoshu, Mao Wanpeng. Journal of Engineering Thermophysics, 2004, 25(3): 519.
[11] Jiang Zhiwei, Luo Zixue, Zhou Huaichun. Fuel, 2009, 88(6): 980.
[12] Niu Chunyang, Qi Hong, Huang Xing, et al. Chinese Physics B, 2015, 24(11): 114401.
[13] Yang Bin, Gui Xinyang, Zhou Wu, et al. Journal of Aerospace Power, 2015, 30(12): 2904.