Applied thermal engineering2022,Vol.2159.DOI:10.1016/j.applthermaleng.2022.118968

Determining spatially-resolved thermal radiation from non-intrusive measurements of soot properties

F. Escudero R. Demarco J. J. Cruz I. Verdugo G. Carvajal G. Olivares F. Valenzuela D. Han H. Lin A. Fuentes
Applied thermal engineering2022,Vol.2159.DOI:10.1016/j.applthermaleng.2022.118968

Determining spatially-resolved thermal radiation from non-intrusive measurements of soot properties

F. Escudero 1R. Demarco 1J. J. Cruz 1I. Verdugo 1G. Carvajal 2G. Olivares 1F. Valenzuela 1D. Han 3H. Lin 3A. Fuentes1
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作者信息

  • 1. Departamento de Industrias, Universidad Tecnica Federico Santa Maria
  • 2. Departamento de Electronica, Universidad Tecnica Federico Santa Maria
  • 3. Key Laboratory for Power Machinery and Engineering, Ministry of Education, Shanghai Jiao Tong University
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Abstract

A procedure is presented that uses estimations of soot volume fraction and temperature fields to (i) calculate the spatially-resolved radiative intensity emitted from soot, and (ii) model the incident radiative power released from the flame by soot particles on a surface. The procedure is validated using both experimental and simulated data obtained from a canonical laminar diffusion flame about 5 cm high. First, estimations of soot volume fraction and temperature derived from non-intrusive experimental measurements are used to calculate the reference soot radiative intensity and to simulate the signals captured by radiometers located at different positions relative to the flame. Then, simulated radiometer signals are processed using different viewfactor methodologies to retrieve the values of integrated soot flame radiation, which are then compared to the reference intensity obtained from soot volume fraction and temperature by solving the radiative transfer equation. Results show that point-source methods accurately estimate the reference intensity (within 2% of error) when using simulated signals from radiometers positioned 7 and 10 cm from the flame axis and up to three times the flame height. Moreover, the double cylinder model accurately estimates flame radiation from measurements performed above three times the flame height.

Key words

Flame radiation/Radiative transfer equation/Viewfactor/Radiant fraction

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出版年

2022
Applied thermal engineering

Applied thermal engineering

EISCI
ISSN:1359-4311
被引量7
参考文献量36
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