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13 - Combustion in Afterburning Behind Explosive Blasts

from Part III - Complex Mixing Consequences

Published online by Cambridge University Press:  05 June 2016

Fernando F. Grinstein
Affiliation:
Los Alamos National Laboratory
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Print publication year: 2016

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References

Frost, D.L., Gregoire, Y., Petel, O., Goroshin, S., and Zhang, F.. “Particle jet formation during explosive dispersal of solid particles.” Physics of Fluids, 24:091109, 2012.CrossRefGoogle Scholar
Kuhl, A.L., Ferguson, R.E., and Oppenheim, A.K.. “Gasdynamic model of turbulent exothermic fields in explosions.” Progress in Astronautics and Aeronautics, 173:251261, 1997.Google Scholar
Taylor, G.I.. “The instability of liquid surfaces when accelerated in a direction perpendicular to their planes.” Proceedings of Royal Society of London. Series A, Mathematical and Physical Sciences, 201:192196, 1950.Google Scholar
Balakrishnan, K.. On the High Fidelity Simulation of Chemical Explosions and their Interaction with Solid Particle Clouds. PhD thesis, Georgia Institute of Technology, 2010.Google Scholar
Richtmyer, R.D.. “Taylor instability in shock acceleration of compressible fluids.” Commun. Pure Appl. Math., 13(297), 1960.CrossRefGoogle Scholar
Balakrishnan, K. and Menon, S.. “On the role of ambient reactive particles in the mixing and afterburn behind explosive blast waves.” Combust. Sci. Technol., 182(2):186214, 2010.CrossRefGoogle Scholar
Menon, S. and Patel, N.. “Subgrid modeling for simulation of spray combustion in large-scale combustors.” AIAA Journal, 44:709723, 2006.CrossRefGoogle Scholar
Génin, F. and Menon, S.. “Studies of shock / turbulent shear layer interaction using large-eddy simulation.” Computers & Fluids, 39:800819, 2010.CrossRefGoogle Scholar
Oefelein, J.C.. “Large eddy simulation of turbulent combustion processes in propulsion and power systems.” Progress in Aerospace Sciences, 42:237, 2006.CrossRefGoogle Scholar
Balakrishnan, K. and Menon, S.. “On turbulent chemical explosions into dilute aluminum particle clouds.” Combust. Theor. Model., 14(4):583617, 2010.CrossRefGoogle Scholar
Balakrishnan, K. and Menon, S.. “Characterization of the mixing layer resulting from the detonation of heterogeneous explosive charges.” Flow Turbul. Combust., 87:639671, 2011.CrossRefGoogle Scholar
White, F. M.. Viscous Fluid Flow, third edition. McGraw-Hill, 2006.Google Scholar
Sagaut, P.. Large Eddy Simulation for Incompressible Flows. Springer Verlag, 2001.CrossRefGoogle Scholar
Smagorinsky, J.. “General circulation experiments with the primitive equations. I: The basic experiment.” Month. Weath. Rev., 91:99165, 1963.2.3.CO;2>CrossRefGoogle Scholar
Germano, M., Piomelli, U., Moin, P., and Cabot, W.H.. “A dynamic subgrid–scale eddy viscosity model.” Phys. Fluids A, 3:17601765, 1991.CrossRefGoogle Scholar
Yoshizawa, A. and Horiuti, K.. “A statistically–derived subgrid scale kinetic energy model for large eddy simulation of turbulent flows.” J. Phys. Soc. Japan, 54:2834, 1985.CrossRefGoogle Scholar
Kim, W.W. and Menon, S.. “A new in-compressible solver for large-eddy simulations.” International Journal for Numerical Methods in Fluid Mechanics, 31:9831017, 1999.3.0.CO;2-Q>CrossRefGoogle Scholar
Génin, F. and Menon, S.. “Dynamics of sonic jet injection into supersonic crossflow.” J. Turbul., 11(4):130, 2010.CrossRefGoogle Scholar
Fureby, C. and Moller, S.I.. “Large-eddy simulations of reacting flows applied to bluff-body stabilized flames.” AIAA Journal, 33:2339, 1995.CrossRefGoogle Scholar
Cook, A.W. and Cabot, W.H.. “Hyperviscosity for shock–turbulence interactions.” J. Comp. Phys., 203:379385, 2005.CrossRefGoogle Scholar
von Neumann, J. and Richtmyer, R.D.. “A method for the numerical calculations of hydrodynamical shocks.” J. Appl. Phys., 21:232237, 1950.CrossRefGoogle Scholar
Caramana, E.J., Shashkov, M.J., and Whalen, P.P.. “Formulations of artificial viscosity for multi-dimensional shock wave computations.” J. Comp. Phys., 144:7097, 1998.CrossRefGoogle Scholar
Boris, J.P.. “Whither turbulence? Turbulence at crossroads,” in On Large Eddy Simulation Using Subgrid Turbulence Models, 344. Springer, 1990.Google Scholar
Boris, J.P., Grinstein, F.F., Oran, E.S., and Kolbe, R.J.. “New insights into large eddy simulation.” Fluid Dynamics Research, 10:199, 1992.CrossRefGoogle Scholar
Grinstein, F.F., Margolin, L., and Rider, B., editors. Implicit Large Eddy Simulation: Computing Turbulent Fluid Dynamics. Cambridge University Press, 2007.CrossRefGoogle Scholar
Grinstein, F.F. and Fureby, C.. “On flux–limiting–based implicit large eddy simulation.” ASME J. Fluids Engng., 129:1483, 2007.CrossRefGoogle Scholar
Drikakis, D., Hahn, M., Grinstein, F.F., DeVore, C.R., Fureby, C., Liefvendahl, M., and Youngs, D.L.. Numerics for ILES: Limiting Algorithms, chapter 4a. Cambridge University Press, 2007.CrossRefGoogle Scholar
Zukas, J.A. and Walters, W.P.. Explosive Effects and Applications. Springer, 1998.CrossRefGoogle Scholar
Cowperthwaite, M.. “Significance of some equations of state obtained from shock-wave data.” American Journal of Physics, 34:10251030, 1966.CrossRefGoogle Scholar
Donahue, L., Zhang, F., and Ripley, R.C.. “Numerical models for afterburning of TNT detonation products in air.” Shock Waves, 23:559573, 2013.CrossRefGoogle Scholar
Johnston, I.A.. “The Noble–Able equation of state: Thermodynamic derivations for ballistic modeling.” Technical Report DSTO-TN-0670, Australian Government Department of Defence, Defence Science and Technology Organisation, 2005.Google Scholar
Kim, C.K., Moon, J.G., Hwang, J.S., Lai, M.C., and Im, K.S.. “Afterburning of TNT explosive products in air with aluminum articles.” AIAA paper 2008-1029, 2008.CrossRefGoogle Scholar
Grinstein, F.F. and Kailasanath, K.. “Three-dimensional numerical simulation of unsteady reactive square jets.” Comb. & Flame, 100:2, 1995.CrossRefGoogle Scholar
Magnussen, B.F.. “On the structure of turbulence and generalized eddy dissipation concept for chemical reactions in turbulent flow.” 19th AIAA Aerospace Meeting, 1981.CrossRefGoogle Scholar
Berglund, M., Fedina, E., Fureby, C., Tegner, J., and Sabel’nikov, V.. “Finite rate chemistry large–eddy simulation of self-ignition in a supersonic combustion ramjet.” AIAA Journal, 48:540550, 2010.CrossRefGoogle Scholar
Sabelnikov, V. and Fureby, C.. Extended LES-PaSR Model for Simulation of Turbulent Combustion, volume 4, pages 156–169. 2012. In Advances in Aerospace Sciences.CrossRefGoogle Scholar
Sabelnikov, V. and Fureby, C.. “LES combustion modeling for high Re flames using multi-phase analogy.” Comb. Flame, 160:83, 2013.CrossRefGoogle Scholar
Balakrishnan, K., Nance, D.V., and Menon, S.. “Simulation of impulse effects from explosive charges containing metal particles.” Shock Waves, 20:217239, 2010.CrossRefGoogle Scholar
Balakrishnan, K., Ukai, S., and Menon, S.. “Clustering and combustion of dilute aluminum particle clouds in a post-detonation flow field.” Proc. Combust. Inst., 33:22552263, 2011.CrossRefGoogle Scholar
Schwer, D.A. and Kailasanath, K.. “Numerical simulations of the mitigation of unconfined explosions using water mist.” Proceedings of the Combustion Institute, 31:23612369, 2007.CrossRefGoogle Scholar
Fedina, E. and Fureby, C.. “A comparative study of flamelet and finite rate chemistry LES for an axisymmetric dump combustor.” J. Turb., 12:120, 2010.Google Scholar
Tanahashi, M., Fujimura, M., and Miyauchi, T.. “Coherent fine scale eddies in turbulent premixed flames.” Proceedings of the 28th International Symposium on Combustion, 579–587, 2000.CrossRefGoogle Scholar
Yeung, P.K., Pope, S.B., and Sawford, B.L.. “Reynolds number dependence of lagrangian statistics in large numerical simulations of isotropic turbulence.” J. Turb., 7:N58, 2006.CrossRefGoogle Scholar
Snider, D.M.. “An incompressible three-dimensional multiphase particle-in-cell model for dense particle flows.” Journal of Computational Physics, 170:523549, 2001.CrossRefGoogle Scholar
Patankar, N.A. and Joseph, D.D.. “Modeling and numerical simulation of particulate flows by the Eulerian–Lagrangian approach.” International Journal of Multiphase Flow, 27:16591684, 2001.CrossRefGoogle Scholar
Gottiparthi, K. C. and Menon, S.. “A study of interaction of clouds of inert particles with detonation in gases.” Combustion Science and Technology, 184(3):406433, 2012.CrossRefGoogle Scholar
Gottlieb, S. and Shu, C.-W.. “Total variation diminishing Runge–Kutta schemes.” Mathematics of Computation, 67:7385, 1998.CrossRefGoogle Scholar
Abgrall, R. and Saurel, R.. “Discrete equations for physical and numerical compressible multiphase mixtures.” Journal of Computational Physics, 186(2):361396, 2003.CrossRefGoogle Scholar
Chinnayya, A., Daniel, E., and Saurel, R.. “Modelling detonation waves in heterogeneous energetic materials.” Journal of Computational Physics, 196:490538, 2004.CrossRefGoogle Scholar
Toro, E.F.. Riemann Solvers and Numerical Methods for Fluid Dynamics: A Practical Introduction. Addison-Wesley Publishing Company, 1999.CrossRefGoogle Scholar
Akhatov, I.S. and Vainshtein, P.B.. “Transition of porous explosive combustion into detonation.” Combustion Explosions and Shock Waves, 20(1):6369, 1984.CrossRefGoogle Scholar
Bazyn, T., Krier, H., and Glumac, N.. “Evidence for the transition from the diffusion–limit in aluminum particle combustion.” Proc. Comb. Inst, 31:20212028, 2007.CrossRefGoogle Scholar
Corcoran, A.L., Hoffmann, V.K., and Dreizin, E.L.. “Aluminum particle combustion in turbulent flames.” Comb. & Flame, 160:718724, 2013.CrossRefGoogle Scholar
Yetter, R.A., Risha, G.A., and Son, S.F.. “Metal particle combustion and nanotechnology.” Proc. Comb. Inst., 32:18191838, 2009.CrossRefGoogle Scholar
Servaites, J., Krier, H., and Melcher, J.C.. “Ignition and combustion of aluminum particles in shocked //Ar and //ar mixtures.” Comb. & Flame, 125:10401054, 2001.CrossRefGoogle Scholar
Badiola, C., Gill, R.J., and Drezin, E.L.. “Combustion characteristics of micron-sized aluminum particles in oxygenated environments.” Comb. & Flame, 158:20642070, 2011.CrossRefGoogle Scholar
Lynch, P., Krier, H., and Glumac, N.. “A correlation for burn time of aluminum particles in the transition regime.” Proc. Comb. Inst., 32:18871893, 2009.CrossRefGoogle Scholar
Gill, R.J., Badiola, C., and Drezin, E.L.. “Combustion times and emission profiles of micron-sized aluminum particles burning in different environments.” Comb. & Flame, 157:20152023, 2010.CrossRefGoogle Scholar
Beckstead, M.W.. “Correlating aluminum burning times.” Comb. Explosion and Shock Waves, 41:533546, 2005.CrossRefGoogle Scholar
Zhang, F., Frost, F.D., Thibault, P.A., and Murray, S.B.. “Explosive dispersal of solid particles.” Shock Waves, 10:431443, 2001.CrossRefGoogle Scholar
Balakrishnan, K., Nance, D.V., and Menon, S.. “Numerical study of blast characteristics from detonation of homogeneous explosives.” Shock Waves, 20:147162, 2010.CrossRefGoogle Scholar
Youngs, D.L. and Williams, R.J.R.. “Turbulent mixing in spherical implosions.” Intl. J. Numer. Meth. Fluids, 56:15971603, 2008.CrossRefGoogle Scholar
Gottiparthi, K.C. and Menon, S.. “Simulations of heterogeneous detonations and post detonation turbulent mixing and afterburning.” AIP Conference Proceedings, 1426:16391642, 2012.CrossRefGoogle Scholar
Kuhl, A.L.. “Dynamics of Exothermicity,” in Spherical Mixing Layers in Explosions. Gordon and Breach Science Publishers SA, 1996.Google Scholar
Frost, D.L., Zarei, Z., and Zhang, F.. “Instability of combustion products interface from detonation of heterogeneous explosives.” 20th International Colloquium on the Dynamics of Explosions and Reactive Systems, Montreal, Canada, 2005.Google Scholar
Kuhl, A.L., Oppenheim, A.K. Ferguson, R.E., and Seizew, M.R.. “Visualisation of mixing and combustion of TNT explosions.” Extreme States of Substance Detonation Shock Waves, February 26–March 3, Sarov, Nizhni Novgorod Region, Russia, 2001.Google Scholar
Kuhl, A.L., Fergusson, R.E., and Oppenheim, A.K.. “Gasdynamics of combustion of TNT products in air.” Archivum Combustionis, 19:6789, 1999.Google Scholar
Kuhl, A.L., Howard, M., and Fried, L.. “Thermodynamic model of afterburning in explosions.” 34th International ICT Conference: Energetic Materials: Reactions of Propellants, Explosives and Pyrotechnics, June 24–27, Karlsruhe, Germany, 2003.Google Scholar
Bell, J.B., Beckner, V.E., and Kuhl, A.L.. Simulation of Enhanced–Explosive Devices in Chambers and Tunnels. HPCMP Users Group Conference, IEEE, 2007.Google Scholar
Kuhl, A.L., Bell, J.B., Beckner, V.E., and Khasainov, B.. “Simulation of aluminum combustion and PETN afterburning in confined explosions.” 21st International Colloquim on the Dynamics of Explosions and Reactive Systems (ICDERS), July 23–27, Poitiers, France, 2007.Google Scholar
Tran, T.D, Simpson, R.L., Maienschein, J., and Tarver, C.M.. “Thermal decomposition of trinitrotoluene (TNT) with a new one-dimensional time to explosion (ODTX) apparatus.” 32nd International Conference of Institute of Chemistry Technology, Karlsruhe, Germany, 2001.Google Scholar
Pitz, W.J. and Westbrook, C.K.. “A detailed chemical kinetic model for gas phase combustion of TNT.” Proc. Comb. Inst., 31:23432351, 2007.CrossRefGoogle Scholar
Weller, H.G., Tabor, G., Jasak, H., and Fureby, C.. “A tensorial approach to CFD using object oriented techniques.” Comp. in Physics, 12:620632, 1997.CrossRefGoogle Scholar
Meshkov, E.E.. “One approach to the experimental study of hydrodynamic instabilities: Creation of a gas–gas interface using the dynamic tecnique.” Proc. 5th International Workshop on Compressible Turbulent Mixing, 1996.Google Scholar
Fedina, E. and Fureby, C.. “Numerical simulation of afterburning during explosions.” 28th International Symposium on Shock Waves, July 17–22, 2562, 2012.CrossRefGoogle Scholar
Fedina, E. and Fureby, C.. “Investigating ground effects on mixing and afterburning during a TNT explosion.” Shock Waves, 23:251261, 2013.CrossRefGoogle Scholar
Beckstead, M.W., Liang, Y., and Pudduppakkam, K.V.. “Numerical simulation of single aluminum particle combustion (review).” Comb. Explosion and Shock Waves, 41:622638, 2005.CrossRefGoogle Scholar
Crowe, C., Sommerfeld, M., and Tsuji, Y.. Multiphase Flows with Droplets and Particles. CRC Press, 1998.Google Scholar
Gallier, S., Sibe, F., and Orlandi, O.. “Combustion response of an aluminum droplet burning in air.” Proc. Comb. Inst., 33:19491956, 2011.CrossRefGoogle Scholar
Liang, Y. and Beckstead, M.W.. “Numerical simulation of quasi–steady, single aluminum particle combustion in air.” AIAA 98–0254, 1998.Google Scholar
Glotov, O.G. and Zhukov, V.A.. “The evolution of m aluminum agglomerates and initially continuous aluminum particles in the flame of a model solid propellant.” II. results. Comb. Explosion & Shock Waves, 44:671680, 2008.CrossRefGoogle Scholar
Kuhl, A.L., Bell, J.B., and Becker, V.E.. “Heterogeneous continuum model of aluminum particle combustion in explosions.” Comb. Explosion and Shock Waves, 46:433448, 2010.CrossRefGoogle Scholar
Fedina, E.. “TNT/aluminium afterburning in air blasts.” Technical Report FOI-R–3913–SE, Swedish Defence Research Agency – FOI, 2014.Google Scholar
Fedina, E. and Fureby, C.. “Numerical simulations of TNT afterburning at different heights of blast.” 22nd International Symposium on Military Aspects on Blast and Shock (MABS22), November 4–9, Bourges, France, 2012.Google Scholar

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