Modeling rarefied gas chemistry with QuiPS, a novel quasi-particle method

被引:0
作者
Yasvanth Poondla
David Goldstein
Philip Varghese
Peter Clarke
Christopher Moore
机构
[1] The University of Texas at Austin,Department of Aerospace Engineering & Engineering Mechanics
[2] Sandia National Laboratories,undefined
[3] Albuquerque,undefined
来源
Theoretical and Computational Fluid Dynamics | 2022年 / 36卷
关键词
Boltzmann equation; Quasi-Particle; Chemistry; Hypersonic reentry;
D O I
暂无
中图分类号
学科分类号
摘要
The goal of this work is to build up the capability of quasi-particle simulation (QuiPS), a novel flow solver, such that it can adequately model the rarefied portion of an atmospheric reentry trajectory. Direct simulation Monte Carlo (DSMC) is the conventional solver for such conditions, but struggles to resolve transient flows, trace species, and high-level internal energy states due to stochastic noise. Quasi-particle simulation (QuiPS) is a novel Boltzmann solver that describes a system with a discretized, truncated velocity distribution function. The resulting fixed-velocity, variable weight quasi-particles enable smooth variation of macroscopic properties. The distribution function description enables the use of a variance-reduced collision model, greatly minimizing expense near equilibrium. This work presents the addition of a neutral air chemistry model to QuiPS and some demonstrative 0D simulations. The explicit representation of internal distributions in QuiPS reveals some of the flaws in existing physics models. Variance reduction, a key feature of QuiPS, can greatly reduce expense of multi-dimensional calculations, but is only cheaper when the gas composition is near chemical equilibrium.
引用
收藏
页码:81 / 116
页数:35
相关论文
共 46 条
  • [1] Bird G(2012)Setting the post-reaction internal energies in direct simulation monte carlo chemistry simulations Phys. Fluids 24 127104-2286
  • [2] Boyd I(1993)Relaxation of discrete rotational energy distributions using a monte carlo method Phys. Fluids 5 2278-6664
  • [3] Chen S(2012)A unified gas kinetic scheme with moving mesh and velocity space adaptation J. Comput. Phys. 231 6643-340
  • [4] Xu K(2018)A low noise discrete velocity method for the boltzmann equation with quantized rotational and vibrational energy J. Comput. Phys. 352 326-180
  • [5] Lee C(2020)Measurement of radiative nonequilibrium for air shocks between 7 and 9 km/s J. Thermophys. Heat Transf. 34 154-489
  • [6] Cai Q(1993)Models for direct monte carlo simulation of coupled vibration-dissociation Phys. Fluids A Fluid Dyn. 5 478-358
  • [7] Clarke P(1993)Models of thermal relaxation mechanics for particle simulation methods J. Comput. Phys. 107 348-2201
  • [8] Varghese P(1994)Rates of thermal relaxation in direct simulation monte carlo methods Phys. Fluids 6 2191-933
  • [9] Goldstein D(2011)Boltzmann solver with adaptive mesh in velocity space AIP Conf. Proc. Am. Instit. Phys. 1333 928-3213
  • [10] Cruden B(1991)Resolution of differences between collision number definitions in particle and continuum simulations Phys. Fluids 3 2282-1280