Progress and future prospects for particle-based simulation of hypersonic flow

Progress in Aerospace Sciences - Tập 72 - Trang 66-79 - 2015
Thomas E. Schwartzentruber1, Iain D. Boyd2
1Department of Aerospace Engineering and Mechanics, University of Minnesota, Minneapolis, MN 55455, United States
2Department of Aerospace Engineering, University of Michigan, Ann Arbor, MI 48109, United States

Tài liệu tham khảo

Bird, 1963, Approach to translational equilibrium in a rigid sphere gas, Phys Fluids, 6, 1518, 10.1063/1.1710976

Bird, 1976

Bird, 1994

Vincenti, 1965

Chavis, 2005, Plume modeling and application to Mars 2001 Odyssey aerobraking, J Spacecr Rockets, 42, 450, 10.2514/1.15171

Wilmoth, 1999, Low-density aerodynamics of the stardust sample return capsule, J Spacecr Rockets, 36, 436, 10.2514/2.3464

Zhong, 2008, Modeling of stardust reentry ablation flows in the near-continuum flight regime, AIAA J, 46, 2568, 10.2514/1.36196

Boyd, 2010, Modeling of stardust entry at high altitude, part 1, J Spacecr Rockets, 47, 708, 10.2514/1.37360

Boyd, 2010, Modeling of stardust entry at high altitude, part 2, J Spacecr Rockets, 47, 901, 10.2514/1.37357

Holden M, Wadhams T. Code validation study of laminar shock/boundary layer and shock/shock interactions in hypersonic flow. Part A: experimental measurements; 2001, AIAA paper 2001-1031.

Erdman, 1994, Measurements of ultraviolet radiation from a 5km/sec bow shock, J Thermophys Heat Transf, 8, 441, 10.2514/3.562

Moss, 2005, Direct simulation Monte Carlo simulations of hypersonic flows with shock interactions, AIAA J, 43, 2565, 10.2514/1.12532

Levin, 1994, Examination of ultraviolet radiation theory for bow shock rocket experiments—I, J Thermophys Heat Transf, 8, 447, 10.2514/3.563

Boyd, 1997, Monte Carlo modeling of nitric oxide formation based on quasi-classical trajectory calculations, Phys Fluids, 9, 1162, 10.1063/1.869479

Whiting E, Park C, Liu Y, Arnold J, Paterson J. NEQAIR96, nonequilibrium and equilibrium radiative transport and spectra program: user׳s manual; NASA Reference Publication 1389.

Boyd, 1995, Dissociation modeling in low density hypersonic flows of air, Phys Fluids, 7, 1757, 10.1063/1.868490

Boyd, 1998, Sensitivity studies for prediction of ultra-violet radiation in nonequilibrium hypersonic bow-shock waves, J Thermophys Heat Transf, 12, 38, 10.2514/2.6299

Grantham W. Flight results of a 25,000 foot per second reentry experiment using microwave reflectometers to measure plasma electron density and standoff distance. NASA technical note D-6062; 1970.

Linwood-Jones W, Cross A. Electrostatic probe measurements of plasma parameters for two reentry flight experiments at 25,000 feet per second. NASA technical note D-6617; 1972.

Boyd, 2007, Modeling of associative ionization reactions in hypersonic rarefied flows, Phys Fluids, 19, 096102, 10.1063/1.2771662

Bird G. Visual DSMC program for two-dimensional and axially symmetric flows. In: The DS2V program user׳s guide, version 3.8. GAB Consulting; 2006.

Burt, 2012, Novel cartesian implementation of the direct simulation Monte Carlo method, J Thermophys Heat Transf, 26, 258, 10.2514/1.T3733

Hash, 1996, Assessment of schemes for coupling Monte Carlo and Navier–Stokes solution methods, J Thermophys Heat Transf, 10, 242, 10.2514/3.781

Roveda, 1998, Hybrid Euler/particle approach for continuum/rarefied flows, J Spacecr Rockets, 35, 258, 10.2514/2.3349

Roveda, 2000, Hybrid Euler/direct simulation Monte Carlo calculation of unsteady slit flow, J Spacecr Rockets, 37, 753, 10.2514/2.3647

Wijesinghe, 2004, Three-dimensional hybrid continuum-atomistic simulations for multiscale hydrodynamics, J Fluids Eng, 126, 768, 10.1115/1.1792275

Schwartzentruber, 2007, A modular particle-continuum numerical method for hypersonic nonequilibrium gas flows, J Comput Phys, 225, 1159, 10.1016/j.jcp.2007.01.022

Holman, 2009, Effects of continuum breakdown on the surface properties of a hypersonic sphere, J Thermophys Heat Transf, 23, 660, 10.2514/1.43509

Schwartzentruber, 2006, A hybrid particle-continuum method applied to shock waves, J Comput Phys, 215, 402, 10.1016/j.jcp.2005.10.023

Schwartzentruber, 2008, Hybrid particle-continuum simulations of nonequilibrium hypersonic blunt-body flowfields, J Thermophys Heat Transf, 22, 29, 10.2514/1.30216

Schwartzentruber, 2008, Multiscale particle-continuum simulations of hypersonic flow over a planetary probe, J Spacecr Rockets, 45, 1196, 10.2514/1.37319

Schwartzentruber, 2008, Hybrid particle continuum simulations of hypersonic flow over a hollow-cylinder-flare geometry, AIAA J, 46, 2086, 10.2514/1.36681

Deschenes, 2011, Effects of rotational energy relaxation in a modular particle-continuum method, J Thermophys Heat Transf, 25, 218, 10.2514/1.50720

Deschenes, 2011, Extension of a modular particle-continuum method to vibrationally excited, hypersonic flows, AIAA J, 49, 1951, 10.2514/1.J050908

Schwartzentruber TE, Scalabrin LC, Boyd ID. Modular implementation of a hybrid DSMC-NS solver for hypersonic non-equilibrium flows. AIAA paper 2007-613; 2007.

Sun, 2005, Evaluation of macroscopic properties in the direct simulation Monte Carlo method, J Thermophys Heat Transf, 19, 329, 10.2514/1.12542

Millikan, 1963, Systematics of vibrational relaxation, J Chem Phys, 39, 3209, 10.1063/1.1734182

Lumpkin, 1991, Resolution of differences between collision number definitions in particle and continuum simulations, Phys Fluids A, 3, 2282, 10.1063/1.857964

Haas, 1994, Rates of thermal relaxation in direct simulation Monte Carlo methods, Phys Fluids, 6, 2191, 10.1063/1.868221

Wysong, 1998, Assessment of direct simulation monte carlo phenomenological rotational relaxation models, Phys Fluids, 10, 2983, 10.1063/1.869818

Zhang, 2014, Nonequilibrium-direction-dependent rotational energy model for use in continuum and stochastic molecular simulation, AIAA J, 52, 604, 10.2514/1.J052514

Valentini, 2009, Large-scale molecular dynamics simulations of normal shock waves in dilute argon, Phys Fluids, 21, 066101, 10.1063/1.3149866

Valentini, 2013, Molecular dynamics simulations of shock waves in mixtures of noble gases, J Thermophys Heat Transf, 27, 226, 10.2514/1.T3903

Valentini, 2012, Molecular dynamics simulation of rotational relaxation in nitrogen, Phys Fluids, 24, 106101, 10.1063/1.4757119

Harnett, 1972, Experimental investigation of normal shock wave velocity distribution functions in mixtures of argon and helium, Phys Fluids, 15, 565, 10.1063/1.1693949

Robben, 1966, Experimental study of the rotational distribution function of nitrogen in a shock wave, Phys Fluids, 9, 653, 10.1063/1.1761730

Parker, 1959, Rotational and vibrational relaxation in diatomic gases, Phys Fluids, 2, 449, 10.1063/1.1724417

Park, 1993, Review of chemical-kinetic problems of future Nasa Missions, I, J Thermophys Heat Transf, 7, 385, 10.2514/3.431

Haas, 1993, Models for direct Monte Carlo simulation of coupled vibration-dissociation, Phys Fluids A, 5, 478, 10.1063/1.858870

Billing, 1979, VV and VT rate coefficients in N2 by a quantum-classical model, Chem Phys, 43, 395, 10.1016/0301-0104(79)85207-6

Ling, 1984, Towards an intermolecular potential for nitrogen, Mol Phys, 51, 855, 10.1080/00268978400100571

Koura, 2002, Direct simulation Monte Carlo study of rotational nonequilibrium in shock wave and spherical expansion of nitrogen using classical trajectory calculations, Phys Fluids, 14, 1689, 10.1063/1.1467059

Deng, 2012, Analysis of chemistry models for DSMC simulations of the atmosphere of Io, J Thermophys Heat Transf, 26, 36, 10.2514/1.T3714

Panesi, 2013, Rovibrational internal energy transfer and dissociation of n2(1σg+)-n(4su) system in hypersonic flows, J Chem Phys, 138, 044312, 10.1063/1.4774412

Kim, 2014, Monte Carlo simulation of nitrogen dissociation based on state-resolved cross sections, Phys Fluids, 26, 012006, 10.1063/1.4862541

Adamovich, 1998, Vibrational energy transfer rates using a forced harmonic oscillator model, J Thermophys Heat Transf, 12, 57, 10.2514/2.6302

Adamovich IV. Three-dimensional analytic model of coupled vibrational-rotational-translational energy transfer in diatomic molecule collisions. AIAA paper 2014-1442; 2014.

Vijayakumar, 1999, Detailed models of vibrational-translational energy exchange for the direct simulation Monte Carlo method, Phys Fluids, 11, 2117, 10.1063/1.870074

Boyd, 2011, State resolved vibrational relaxation modeling for strongly nonequilibrium flows, Phys Fluids, 23, 057101, 10.1063/1.3584128