Numerical modeling of the phase transition kinetics for the sub-microsecond solidification of water under dynamic compression
ORAL
Abstract
Several landmark experimental studies on the solidification of liquid water to the high-pressure ice VII phase under multiple-shock and ramp dynamic compression have been carried out over the past two decades, yet modeling this rapid phase transition has proven challenging. The application of classical nucleation theory (CNT)-based approaches to rapid phase transition kinetics occurring under extreme temperatures and pressures presents a variety of new opportunities for predictive computational modeling. This work attempts to model the liquid water---ice VII phase transformation using a numerical discretization scheme to solve the Zel'dovich---Frenkel partial differential equation, a fundamental CNT-based kinetic equation describing the statistical time-dependent behavior of solid cluster formation. One major result of this research is that the Zel'dovich---Frenkel equation is able to model---without the need for empirical scaling parameters---the duration of the lag time prior to the onset of the phase transformation.
*This work was performed under the auspices of the U.S. Department of Energy by Lawrence Livermore National Laboratory under Contract DE-AC52-07NA27344. We thank A. Arsenlis, D.P. McNabb, and B. Wallin for funding and project support.
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