The infrared spectral emissivity measurement of a graphite material in a high temperature range of 1000~1500℃ using integrated blackbody principle
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Affiliation:

Heat Division, National Institute of Metrology, Beijing 100029, China

Clc Number:

TB942

Fund Project:

Supported by National Natural Science Foundation of China (11772318)

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    Abstract:

    A theoretical model of the infrared spectral emissivity measurement of materials using the integrated blackbody principle was established. The effects of the effective emissivity of the non-isothermal integrated blackbody cavity, the observation coefficient and the temperature drop during the sample material push-out were investigated. The device of the infrared spectral emissivity measurement using the integrated blackbody principle was set up which used a Fourier-Transform infrared spectrometer as the infrared radiation detection instrument. The effective emissivity of the integrated blackbody cavity was simulated using Monte-Carlo ray tracing method and the associated validation experiments were carried out. The effects of non-ideal factors, including the size-of-source effect and linearity of the spectral responsivity, on the infrared spectral emissivity measurement using the integrated blackbody principle were investigated. The experimental measurements of the infrared spectral emissivity of a graphite material were carried out at 1000℃, 1300℃ and 1500℃, respectively. The results in this article are in good agreement with the literature data better than 5%, which verifies the feasibility of the emissivity measurement method using the integrated blackbody principle at high temperatures.

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SONG Xu-Yao, DONG Wei, PAN Yi-Jie, YUAN Zun-Dong, LU Xiao-Feng. The infrared spectral emissivity measurement of a graphite material in a high temperature range of 1000~1500℃ using integrated blackbody principle[J]. Journal of Infrared and Millimeter Waves,2021,40(2):204~213

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History
  • Received:June 23,2020
  • Revised:April 05,2021
  • Adopted:September 04,2020
  • Online: March 30,2021
  • Published: