Discrete Boltzmann model with split collision for nonequilibrium reactive flows*

IF 2.4 3区 物理与天体物理 Q2 PHYSICS, MULTIDISCIPLINARY
Chuandong Lin, Kai H Luo and Huilin Lai
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引用次数: 0

Abstract

A multi-relaxation-time discrete Boltzmann model (DBM) with split collision is proposed for both subsonic and supersonic compressible reacting flows, where chemical reactions take place among various components. The physical model is based on a unified set of discrete Boltzmann equations that describes the evolution of each chemical species with adjustable acceleration, specific heat ratio, and Prandtl number. On the right-hand side of discrete Boltzmann equations, the collision, force, and reaction terms denote the change rates of distribution functions due to self- and cross-collisions, external forces, and chemical reactions, respectively. The source terms can be calculated in three ways, among which the matrix inversion method possesses the highest physical accuracy and computational efficiency. Through Chapman–Enskog analysis, it is proved that the DBM is consistent with the reactive Navier–Stokes equations, Fick's law and the Stefan–Maxwell diffusion equation in the hydrodynamic limit. Compared with the one-step-relaxation model, the split collision model offers a detailed and precise description of hydrodynamic, thermodynamic, and chemical nonequilibrium effects. Finally, the model is validated by six benchmarks, including multicomponent diffusion, mixture in the force field, Kelvin–Helmholtz instability, flame at constant pressure, opposing chemical reaction, and steady detonation.
非平衡态反应流的分裂碰撞离散玻尔兹曼模型*
针对各种成分之间发生化学反应的亚音速和超音速可压缩反应流,提出了一种具有分裂碰撞的多松弛时间离散玻尔兹曼模型(DBM)。该物理模型基于一组统一的离散玻尔兹曼方程,描述了每种化学物质在可调加速度、比热比和普朗特尔数条件下的演变过程。在离散玻尔兹曼方程的右侧,碰撞项、力项和反应项分别表示自碰撞和交叉碰撞、外力和化学反应导致的分布函数变化率。源项有三种计算方法,其中矩阵反演法具有最高的物理精度和计算效率。通过 Chapman-Enskog 分析,证明了 DBM 与反应 Navier-Stokes 方程、Fick 定律和流体力学极限下的 Stefan-Maxwell 扩散方程是一致的。与一步松弛模型相比,分裂碰撞模型能详细而精确地描述流体力学、热力学和化学非平衡态效应。最后,该模型通过六个基准进行了验证,包括多组分扩散、力场中的混合物、开尔文-赫尔姆霍兹不稳定性、恒压火焰、对立化学反应和稳定引爆。
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来源期刊
Communications in Theoretical Physics
Communications in Theoretical Physics 物理-物理:综合
CiteScore
5.20
自引率
3.20%
发文量
6110
审稿时长
4.2 months
期刊介绍: Communications in Theoretical Physics is devoted to reporting important new developments in the area of theoretical physics. Papers cover the fields of: mathematical physics quantum physics and quantum information particle physics and quantum field theory nuclear physics gravitation theory, astrophysics and cosmology atomic, molecular, optics (AMO) and plasma physics, chemical physics statistical physics, soft matter and biophysics condensed matter theory others Certain new interdisciplinary subjects are also incorporated.
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