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Alexander E. Mayer

Publications and source records attributed to Alexander E. Mayer.

2 recordsLinked to original sources

High- and low-entropy layers in solids behind shock and ramp compression waves

Non-uniform temperature fields are analyzed, which arise in the problems of formation of the steady shock wave at impact and ramp loading of metals, exit of the steady shock wave to the free surface, and the shock wave passing through the interface between two different materials. Theoretical analysis and computations show that high-entropy (with the temperature increase) and low-entropy (with the temperature decrease) layers arise near the interfaces in the above problems of shock and ramp loading. The impact produces the high-entropy layer; while the ramp loading can result in the both high- and low-entropy layers. At the shock wave passing through the interface, the high-entropy layer is formed in the lower-impedance material and the low-entropy -- in the higher-impedance one. The formation of high-entropy layer at impact is supported by molecular-dynamics simulations in addition to continuum modeling. The high- and low-entropy layers should be taken into account in simulations of shock-wave processes in thin targets or in other cases where surface effects are important.

physics.flu-dyn

Atomistic and continuum modeling of non-equilibrium melting of aluminum

MD simulations of the non-equilibrium melting of aluminum are performed both with and without accounting of the electronic subsystem. A continuum model of melting is purposed basing on the obtained MD results, in which the current phase state is described in terms of fields of concentration and size of melting sites. Growth equation for melting areas is derived from the heat fluxes analysis. Nucleation equation for melting sites is formulated basing on the thermofluctuational approach. The method of determination of the model coefficients with using the MD simulation results is purposed. The continuum model is applied to the problem of the non-equilibrium melting of aluminum within the energy absorption area of the high-current electron beam.

cond-mat.mtrl-sci