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Hydrodynamic resolved simulation of a char particle combustion by immersed boundary-lattice Boltzmann method.

Authors :
Jiang, Maoqiang
Ma, Kuang
Li, Jing
Liu, Zhaohui
Source :
International Communications in Heat & Mass Transfer. Mar2022, Vol. 132, pN.PAG-N.PAG. 1p.
Publication Year :
2022

Abstract

A Lattice-Boltzmann model coupled with boundary method is proposed for the hydrodynamic resolved simulation of a single char particle combustion. A pure lattice Boltzmann scheme with multi distribution functions is presented for this low Mach reactive flows. Real varying thermodynamic and transport properties are considered, and the fluid density can bear significant change depending on the varying temperature and species concentrations. The recently proposed boundary-thickening based direct forcing-immersed boundary method is extended to implement the boundary conditions of velocity, temperature, and species concentrations at the char particle surface. Two heterogeneous reactions at particle surface and one homogeneous reaction in fluid are adopted to describe the combustion. The Stefan flow near the particle surface caused by the heterogeneous reactions is also considered. A satisfactory agreement can be found between the present simulation results and the previous experimental and numerical results. Three flame modes of a char particle combustion and the transition mechanisms between them are investigated. Furthermore, the effect of hydrodynamic interaction and the oxygen concentration in O 2 /CO 2 atmosphere on particle combustion behavior are explored in detail. The present work establishes the foundation for the efficient simulations of particle combustion with size change and motion. • IB-LBM is developed for particle combustion with varying thermodynamic and transport properties. • Results are validated by comparing with previous experiments and simulations. • Particle combustion behaviors in O 2 /N 2 and in O 2 /CO 2 atmosphere are compared. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
07351933
Volume :
132
Database :
Academic Search Index
Journal :
International Communications in Heat & Mass Transfer
Publication Type :
Academic Journal
Accession number :
155363757
Full Text :
https://doi.org/10.1016/j.icheatmasstransfer.2022.105915