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An Improved Full-Spectrum Correlated-k-Distribution Model for Non-Gray Radiative Heat Transfer in Combustion Gas Mixtures

  • Shu Zheng
  • , Ran Sui
  • , Yu Yang
  • , Yujia Sun
  • , Huaichun Zhou
  • , Qiang Lu

Research output: Contribution to journalArticlepeer-review

Abstract

To improve the efficiency of full-spectrum correlated-k-distribution (FSCK), a new method FSCK-RSM has been proposed based on response surface methodology (RSM) in this paper. The k-distributions of FSCK was used to fit the response surface model based on radial basis function and the radiative calculation efficiency was improved by avoiding multiple computations and interpolation in the FSCK-RSM. The thermal radiation heat transfer of five combustion gases (H 2 O, CO 2 , CO, C 2 H 2 and C 2 H 4 ) in a one-dimensional layer was investigated and the radiative sources calculated by the LBL, SNB, FSCK and FSCK-RSM methods were given at different distributions of temperature and gas concentration. The results showed that the needed amount of input data was reduced by 677 times using FSCK-RSM comparing to the FSCK and the maximum of the average normalized deviation for FSCK-RSM was 2.46% in the non-isothermal homogeneous medium. The model was finally used for radiation reabsorption calculations in planar C 2 H 4 /O 2 /N 2 /CO 2 flames with full coupling to heat transfer and multi-species chemistry. The computational time using the FSCK-RSM was found to be at most half of that using the FSCK method. This FSCK-RSM model was an effective method for addressing the radiation problems that occur in combustion systems.

Original languageAmerican English
JournalInternational Communications in Heat and Mass Transfer
Volume114
DOIs
StatePublished - May 1 2020

Keywords

  • Efficiency improvement
  • Full-spectrum correlated-k-distribution (FSCK)
  • Planar flames
  • Radiative heat transfer

Disciplines

  • Mechanical Engineering

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