A multi-component discrete Boltzmann model for nonequilibrium reactive flows

被引:0
作者
Chuandong Lin
Kai Hong Luo
Linlin Fei
Sauro Succi
机构
[1] Center for Combustion Energy,
[2] Key Laboratory for Thermal Science and Power Engineering of Ministry of Education,undefined
[3] Department of Thermal Engineering,undefined
[4] Tsinghua University,undefined
[5] Department of Mechanical Engineering,undefined
[6] University College London,undefined
[7] Torrington Place,undefined
[8] Istituto Applicazioni Calcolo,undefined
[9] CNR,undefined
[10] Via dei Taurini 19,undefined
来源
Scientific Reports | / 7卷
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摘要
We propose a multi-component discrete Boltzmann model (DBM) for premixed, nonpremixed, or partially premixed nonequilibrium reactive flows. This model is suitable for both subsonic and supersonic flows with or without chemical reaction and/or external force. A two-dimensional sixteen-velocity model is constructed for the DBM. In the hydrodynamic limit, the DBM recovers the modified Navier-Stokes equations for reacting species in a force field. Compared to standard lattice Boltzmann models, the DBM presents not only more accurate hydrodynamic quantities, but also detailed nonequilibrium effects that are essential yet long-neglected by traditional fluid dynamics. Apart from nonequilibrium terms (viscous stress and heat flux) in conventional models, specific hydrodynamic and thermodynamic nonequilibrium quantities (high order kinetic moments and their departure from equilibrium) are dynamically obtained from the DBM in a straightforward way. Due to its generality, the developed methodology is applicable to a wide range of phenomena across many energy technologies, emissions reduction, environmental protection, mining accident prevention, chemical and process industry.
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