Jeremy Q. Broughton, Farid F. Abraham
Journal of Crystal Growth
We describe the first of two large-scale atomic simulation projects on materials failure performed on the 12-teraflop ASCI (Accelerated Strategic Computing Initiative) White computer at Lawrence Livermore National Laboratory. This is a multimillion-atom simulation study of crack propagation in rapid brittle fracture where the cracks travel faster than the speed of sound. Our finding centers on a bilayer solid that behaves under large strain like an interface crack between a soft (linear) material and a stiff (nonlinear) material. We verify that the crack behavior is dominated by the local (nonlinear) wave speeds, which can be in excess of the conventional sound speeds of a solid.
Jeremy Q. Broughton, Farid F. Abraham
Journal of Crystal Growth
Farid F. Abraham, Jeremy Q. Broughton
Physical Review Letters
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Modelling and Simulation in Materials Science and Engineering
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Thin Solid Films