Volume 66 Issue 11
Jan.  2023
Turn off MathJax
Article Contents
CHEN Jinlong, JIANG hongyu, YI fangzheng, WANG Dongying, LIU Tao, HU Xiaohe. Improved Visible Near-Infrared Colorimetric Thermometry System and Performance Evaluation[J]. Metrology Science and Technology, 2022, 66(11): 53-58. doi: 10.12338/j.issn.2096-9015.2022.0211
Citation: CHEN Jinlong, JIANG hongyu, YI fangzheng, WANG Dongying, LIU Tao, HU Xiaohe. Improved Visible Near-Infrared Colorimetric Thermometry System and Performance Evaluation[J]. Metrology Science and Technology, 2022, 66(11): 53-58. doi: 10.12338/j.issn.2096-9015.2022.0211

Improved Visible Near-Infrared Colorimetric Thermometry System and Performance Evaluation

doi: 10.12338/j.issn.2096-9015.2022.0211
  • Available Online: 2022-12-01
  • Publish Date: 2023-01-17
  • Visible near-infrared colorimetric thermometry system instruments have been widely used in scientific research and industrial high-temperature monitoring. Since the gray value range of the instrument is limited, the existing research usually splices the temperature measurement bandwidth under different system parameters (exposure time, aperture) to extend the temperature measurement range. However, the fitted curves of grayscale values and temperature of the two channels of the system are exponential functions, and the growth rate of the two curves differs significantly, which will lead to the problems of narrowing the temperature measurement bandwidth and poor linearity of the system sensitivity. In addition, the existing evaluation and analysis methods for the performance of colorimetric thermometry system are not perfect. Given the above problems, a set of visible light near-infrared colorimetric thermometry system is developed, and a method of gray value attenuation is proposed to expand the temperature measurement bandwidth of the system. After the calibration experiment with the blackbody furnace is carried out, the channel sensitivity, temperature measurement bandwidth and system sensitivity of the improved and the original systems are compared and analyzed. It is found that this method extends the temperature measurement bandwidth of the instrument by more than two times, and effectively improves the linearity of the system sensitivity. Finally, the system's overall performance is compared with other instruments to verify the practicability of the instrument.
  • loading
  • [1]
    ZHANG Y Z, XIE Z H, ZHAO Z W, et al. Online surface temperature measurement of billets in secondary cooling zone end-piece based on data fusion[J]. IEEE Transactions on Instrumentation and Measurement, 2014, 63(3): 612-619. doi: 10.1109/TIM.2013.2253894
    [2]
    THEVENET J, SIROUX M, DESMET B, et al. Measurements of brake disc surface temperature and emissivity by two-color pyrometry[J]. Applied Thermal Engineering, 2010, 30(6-7): 753-759. doi: 10.1016/j.applthermaleng.2009.12.005
    [3]
    LIU G, LIU D. Direct simultaneous reconstruction for temperature and concentration profiles of soot and metal-oxide nanoparticles in nanofluid fuel flames by a CCD camera[J]. International Journal of Heat and Mass Transfer, 2018, 124: 564-575. doi: 10.1016/j.ijheatmasstransfer.2018.03.064
    [4]
    ZOLTAN P. Mathematical analysis of transient temperature changes in the chip root during milling[J]. The International Journal of Advanced Manufacturing Technology, 2017, 91(9-12): 4219-4232. doi: 10.1007/s00170-017-0042-6
    [5]
    MONIER R. Liquid metals surface temperature fields measurements with a two-colour pyrometer[J]. Measurement, 2017, 101: 72-80. doi: 10.1016/j.measurement.2016.12.031
    [6]
    ZHANG Y. Development of a CCD-based pyrometer for surface temperature measurement of casting billets[J]. Measurement Science & Technology, 2017, 28(6): 65903.
    [7]
    ANTONIO J M, Araújo M. Multi-spectral pyrometry - a review[J]. Measurement Science & Technology, 2017, 28(8): 082002.
    [8]
    FU T, YANG Z, WANG L, et al. Measurement performance of an optical CCD-based pyrometer system[J]. Optics & Laser Technology, 2010, 42(4): 586-593.
    [9]
    ZHANG Y, ZHANG W, DONG Z, et al. Calibration and measurement performance analysis for a spectral band charge-coupled-device-based pyrometer[J]. Review of Scientific Instruments, 2020, 91(6): 064904. doi: 10.1063/1.5129758
    [10]
    MA B. Intensity-ratio and color-ratio thin-filament pyrometry: Uncertainties and accuracy[J]. Combustion and Flame, 2014, 161(4): 908-916. doi: 10.1016/j.combustflame.2013.10.014
    [11]
    ZHANG Y. Noise characterization and compensation for a charge-coupled-device-based pyrometer[J]. Review of Scientific Instruments, 2021, 92(5): 054902. doi: 10.1063/5.0046410
    [12]
    KELLY D L, SCARBOROUGH D E, THUROW B S, et al. A novel multi-band plenoptic pyrometer for high-temperature applications[J]. Measurement science & technology, 2021, 32(10): 105901.
    [13]
    ZHANG Y. Measurement performance analysis for a charge-coupled-device-based near-infrared multi-spectral pyrometer[J]. Infrared Physics & Technology, 2020, 106: 103273.
    [14]
    翟洋, 沈华, 朱日宏, 等. 多光谱辐射瞬态高温测温计的研制[J]. 光谱学与光谱分析, 2010, 30(11): 3161-3165. doi: 10.3964/j.issn.1000-0593(2010)11-3161-05
    [15]
    JIMENEZ S. Two-color, two-dimensional pyrometers based on monochrome and color cameras for high-temperature (>1000 K) planar measurements[J]. Review of Scientific Instruments, 2020, 91(11): 114901. doi: 10.1063/5.0021784
    [16]
    CHRZANOWSKI K. Evaluation of commercial thermal cameras in quality systems[J]. Optical Engineering, 2002, 41(10): 2556-2567. doi: 10.1117/1.1499972
    [17]
    FU T, LIU J, TIAN J, et al. VIS-NIR multispectral synchronous imaging pyrometer for high-temperature measurements[J]. Review of Scientific Instruments, 2017, 88(6): 1522-1530.
    [18]
    HUANG Y, LONG M, CHEN D, et al. A New Wavelength Selection Criterion for Two-color Pyrometer Interfered with Participating Media[J]. Infrared Physics & Technology, 2018, 93: 136-143.
    [19]
    张华, 廖宝剑, 潘际銮, 等. ICCD双色热图像温度场检测系统的波长选择[J]. 红外与毫米波学报, 1996, 35(6): 433-438.
    [20]
    SHU Z, YU Y. Temperature and emissivity measurements from combustion of pine wood, rice husk and fir wood using flame emission spectrum-ScienceDirect[J]. Fuel Processing Technology, 2020, 204: 106423. doi: 10.1016/j.fuproc.2020.106423
    [21]
    倪育才. 实用测量不确定度评定[M]. 北京: 中国计量出版社, 2008.
  • 加载中

Catalog

    通讯作者: 陈斌, bchen63@163.com
    • 1. 

      沈阳化工大学材料科学与工程学院 沈阳 110142

    1. 本站搜索
    2. 百度学术搜索
    3. 万方数据库搜索
    4. CNKI搜索

    Figures(5)  / Tables(2)

    Article Metrics

    Article views (227) PDF downloads(30) Cited by()
    Proportional views
    Related

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return