Abstract

Shock waves in the [110] and [111] directions of single-crystal Al samples were studied using molecular dynamics (MD) simulations. Piston-driven simulations were performed to investigate the split shock-wave regime. At low piston velocities, the material is compressed initially to a metastable over-compressed elastic state leading to a super-elastic single shock wave. This metastable elastic state later collapses to a plastic state resulting in the formation of a two-wave structure consisting of an elastic precursor followed by a slower plastic wave. The single two-zone elastic-plastic shock-wave regime appearing at higher piston velocities was studied using moving window MD. The plastic wave attains the same average speed as the elastic precursor to form a single two-zone shock wave. In this case, repeated collapse of the highly over-compressed elastic state near the plastic shock front produces ultrashort triangle pulses that provide the pressure support for the leading elastic precursor.

Details

Title
Elastic-plastic collapse of super-elastic shock waves in face-centered-cubic solids
Author
Zhakhovsky, Vasily V 1 ; Inogamov, Nail A 2 ; Demaske, Brian J 1 ; Oleynik, Ivan I 1 ; White, Carter T 3 

 University of South Florida, 4202 East Fowler Avenue, Tampa, Florida 33620-5700, USA 
 Landau Institute for Theoretical Physics, RAS, Chernogolovka, Russian Federation 
 Naval Research Laboratory, Washington DC 20375-5320, USA 
Publication year
2014
Publication date
May 2014
Publisher
IOP Publishing
ISSN
17426588
e-ISSN
17426596
Source type
Scholarly Journal
Language of publication
English
ProQuest document ID
2576629060
Copyright
© 2014. This work is published under http://creativecommons.org/licenses/by/3.0/ (the “License”). Notwithstanding the ProQuest Terms and Conditions, you may use this content in accordance with the terms of the License.