394
M. Gonzales and N. N. Thadhani
14. J.K. Brennan, M. Lísal, J.D. Moore, S. Izvekov, I.V. Schweigert, J.P. Larentzos, Coarse-grain
model simulations of nonequilibrium dynamics in heterogeneous materials. J. Phys. Chem.
Lett. 5(12), 2144–2149 (2014). https://doi.org/10.1021/jz500756s
15. H.J. Choi, R. Austin, J.K. Allen, D.L. McDowell, F. Mistree, D.J. Benson, An approach
for robust design of reactive power metal mixtures based on non-deterministic micro-scale
shock simulation. J. Comput.-Aided Mater. Des. 12(1), 57–85 (2005). https://doi.org/10.1007/
s10820-005-1056-1
16. G.E. Duvall, R.A. Graham, Phase transitions under shock-wave loading. Rev. Mod. Phys.
49(3), 523 (1977)
17. D.E. Eakins, N.N. Thadhani, Shock compression of reactive powder mixtures. Int. Mater. Rev.
54(4), 181 (2009)
18. P. Español, Hydrodynamics from dissipative particle dynamics. Phys. Rev. E 52(2), 1734–1742
(1995). https://doi.org/10.1103/physreve.52.1734
19. P. Español, Dissipative particle dynamics with energy conservation. Europhys. Lett. (EPL)
40(6), 631–636 (1997). https://doi.org/10.1209/epl/i1997-00515-8
20. P. Español, P. Warren, Statistical mechanics of dissipative particle dynamics. Europhys. Lett.
(EPL) 30(4), 191–196 (1995). https://doi.org/10.1209/0295-5075/30/4/001
21. J. Field, S. Walley, W. Proud, H. Goldrein, C. Siviour, Review of experimental techniques for
high rate deformation and shock studies. Int. J. Impact Eng. 30(7), 725–775 (2004). https://
doi.org/10.1016/j.ijimpeng.2004.03.005
22. J.W. Forbes, Shock Wave Compression of Condensed Matter – A Primer (Springer, 2012)
23. U. Frisch, B. Hasslacher, Y. Pomeau, Lattice-gas automata for the navier-stokes equation. Phys.
Rev. Lett. 56(14), 1505–1508 (1986). https://doi.org/10.1103/physrevlett.56.1505
24. D.T. Fullwood, B.L. Adams, S.R. Kalidindi, A strong contrast homogenization formulation for
multi-phase anisotropic materials. J. Mech. Phys. Solids 56(6), 2287–2297 (2008). https://doi.
org/10.1016/j.jmps.2008.01.003
25. M. Gonzales, The mechanochemistry in heterogeneous reactive powder mixtures under highstrain-rate loading and shock compression. Ph.D. thesis (2015)
26. M. Gonzales, A. Gurumurthy, G.B. Kennedy, A.M. Gokhale, N.N. Thadhani, Microstructurebased simulations of the high-strain-rate response of heterogeneous Ti/Al/B reactive powder
mixtures, in Proceedings of the Fall 2012 Meeting of the Materials Research Society (MRS,
Boston, 2012)
27. M. Gonzales, A. Gurumurthy, G.B. Kennedy, A.M. Gokhale, N.N. Thadhani, Shock compression response of Ti+B reactive powder mixtures. J. Phys. Conf. Ser. 500, 052013 (2014)
28. M. Gonzales, A. Gurumurthy, G.B. Kennedy, A.M. Gokhale, N.N. Thadhani, Heterogeneity
and microstructural topology effects on the shock response of Ti+B+Al reactive powder
mixtures. In preparation (2015)
29. M. Gonzales, A. Gurumurthy, G.B. Kennedy, A.M. Gokhale, N.N. Thadhani, Meso-scale
heterogeneity effects on the bulk shock response of Ti+Al+B reactive powder mixtures, in
AIP Conference Proceedings, vol. 1793 (2017), p. 080007
30. R.A. Graham, Sandia Laboratories Report SAND88-1055. Technical report, Sandia National
Laboratory (1988)
31. R.A. Graham, Issues in shock-induced solid state chemistry, in 3rd International Symposium
High Dynamic Pressures, Paris, ed. by R. Cheret, 1989, pp. 175–180
32. R.A. Graham, Solids Under High-Pressure Shock Compression (Springer, 1993)
33. R.A. Graham, M.U. Anderson, Y. Horie, S.K. You, G.T. Holman, Pressure measurements in
chemically reacting powder mixtures with the Bauer piezoelectric polymer gauge. Shock
Waves 3, 79–82 (1993)
34. R.D. Groot, P.B. Warren, Dissipative particle dynamics: bridging the gap between atomistic
and mesoscopic simulation. J. Chem. Phys. 107(11), 4423–4435 (1997). https://doi.org/10.
1063/1.474784
35. A. Gurumurthy, Simulation Methodologies for Multiphase Three-Dimensional Microstructures. Ph.D. thesis, Georgia Institute of Technology (2014)
M. Gonzales and N. N. Thadhani
14. J.K. Brennan, M. Lísal, J.D. Moore, S. Izvekov, I.V. Schweigert, J.P. Larentzos, Coarse-grain
model simulations of nonequilibrium dynamics in heterogeneous materials. J. Phys. Chem.
Lett. 5(12), 2144–2149 (2014). https://doi.org/10.1021/jz500756s
15. H.J. Choi, R. Austin, J.K. Allen, D.L. McDowell, F. Mistree, D.J. Benson, An approach
for robust design of reactive power metal mixtures based on non-deterministic micro-scale
shock simulation. J. Comput.-Aided Mater. Des. 12(1), 57–85 (2005). https://doi.org/10.1007/
s10820-005-1056-1
16. G.E. Duvall, R.A. Graham, Phase transitions under shock-wave loading. Rev. Mod. Phys.
49(3), 523 (1977)
17. D.E. Eakins, N.N. Thadhani, Shock compression of reactive powder mixtures. Int. Mater. Rev.
54(4), 181 (2009)
18. P. Español, Hydrodynamics from dissipative particle dynamics. Phys. Rev. E 52(2), 1734–1742
(1995). https://doi.org/10.1103/physreve.52.1734
19. P. Español, Dissipative particle dynamics with energy conservation. Europhys. Lett. (EPL)
40(6), 631–636 (1997). https://doi.org/10.1209/epl/i1997-00515-8
20. P. Español, P. Warren, Statistical mechanics of dissipative particle dynamics. Europhys. Lett.
(EPL) 30(4), 191–196 (1995). https://doi.org/10.1209/0295-5075/30/4/001
21. J. Field, S. Walley, W. Proud, H. Goldrein, C. Siviour, Review of experimental techniques for
high rate deformation and shock studies. Int. J. Impact Eng. 30(7), 725–775 (2004). https://
doi.org/10.1016/j.ijimpeng.2004.03.005
22. J.W. Forbes, Shock Wave Compression of Condensed Matter – A Primer (Springer, 2012)
23. U. Frisch, B. Hasslacher, Y. Pomeau, Lattice-gas automata for the navier-stokes equation. Phys.
Rev. Lett. 56(14), 1505–1508 (1986). https://doi.org/10.1103/physrevlett.56.1505
24. D.T. Fullwood, B.L. Adams, S.R. Kalidindi, A strong contrast homogenization formulation for
multi-phase anisotropic materials. J. Mech. Phys. Solids 56(6), 2287–2297 (2008). https://doi.
org/10.1016/j.jmps.2008.01.003
25. M. Gonzales, The mechanochemistry in heterogeneous reactive powder mixtures under highstrain-rate loading and shock compression. Ph.D. thesis (2015)
26. M. Gonzales, A. Gurumurthy, G.B. Kennedy, A.M. Gokhale, N.N. Thadhani, Microstructurebased simulations of the high-strain-rate response of heterogeneous Ti/Al/B reactive powder
mixtures, in Proceedings of the Fall 2012 Meeting of the Materials Research Society (MRS,
Boston, 2012)
27. M. Gonzales, A. Gurumurthy, G.B. Kennedy, A.M. Gokhale, N.N. Thadhani, Shock compression response of Ti+B reactive powder mixtures. J. Phys. Conf. Ser. 500, 052013 (2014)
28. M. Gonzales, A. Gurumurthy, G.B. Kennedy, A.M. Gokhale, N.N. Thadhani, Heterogeneity
and microstructural topology effects on the shock response of Ti+B+Al reactive powder
mixtures. In preparation (2015)
29. M. Gonzales, A. Gurumurthy, G.B. Kennedy, A.M. Gokhale, N.N. Thadhani, Meso-scale
heterogeneity effects on the bulk shock response of Ti+Al+B reactive powder mixtures, in
AIP Conference Proceedings, vol. 1793 (2017), p. 080007
30. R.A. Graham, Sandia Laboratories Report SAND88-1055. Technical report, Sandia National
Laboratory (1988)
31. R.A. Graham, Issues in shock-induced solid state chemistry, in 3rd International Symposium
High Dynamic Pressures, Paris, ed. by R. Cheret, 1989, pp. 175–180
32. R.A. Graham, Solids Under High-Pressure Shock Compression (Springer, 1993)
33. R.A. Graham, M.U. Anderson, Y. Horie, S.K. You, G.T. Holman, Pressure measurements in
chemically reacting powder mixtures with the Bauer piezoelectric polymer gauge. Shock
Waves 3, 79–82 (1993)
34. R.D. Groot, P.B. Warren, Dissipative particle dynamics: bridging the gap between atomistic
and mesoscopic simulation. J. Chem. Phys. 107(11), 4423–4435 (1997). https://doi.org/10.
1063/1.474784
35. A. Gurumurthy, Simulation Methodologies for Multiphase Three-Dimensional Microstructures. Ph.D. thesis, Georgia Institute of Technology (2014)
