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Attenuation of the dynamic yield point of shocked aluminum using elastodynamic simulations of dislocation dynamics

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PRL_3.pdfAccepted version5.47 MBAdobe PDFView/Open
PhysRevLett.114.174301.pdfPublished Version1.12 MBAdobe PDFView/Open
Title: Attenuation of the dynamic yield point of shocked aluminum using elastodynamic simulations of dislocation dynamics
Authors: Gurrutxaga-Lerma, B
Balint, DS
Dini, D
Eakins, DE
Sutton, AP
Item Type: Journal Article
Abstract: When a metal is subjected to extremely rapid compression, a shock wave is launched that generates dislocations as it propagates. The shock wave evolves into a characteristic two-wave structure, with an elastic wave preceding a plastic front. It has been known for more than six decades that the amplitude of the elastic wave decays the farther it travels into the metal: this is known as “the decay of the elastic precursor.” The amplitude of the elastic precursor is a dynamic yield point because it marks the transition from elastic to plastic behavior. In this Letter we provide a full explanation of this attenuation using the first method of dislocation dynamics to treat the time dependence of the elastic fields of dislocations explicitly. We show that the decay of the elastic precursor is a result of the interference of the elastic shock wave with elastic waves emanating from dislocations nucleated in the shock front. Our simulations reproduce quantitatively recent experiments on the decay of the elastic precursor in aluminum and its dependence on strain rate.
Issue Date: 1-May-2015
Date of Acceptance: 8-Dec-2014
URI: http://hdl.handle.net/10044/1/23289
DOI: 10.1103/PhysRevLett.114.174301
ISSN: 0031-9007
Publisher: American Physical Society
Start Page: 1
End Page: 5
Journal / Book Title: Physical Review Letters
Volume: 114
Issue: 17
Copyright Statement: © 2015 The American Physical Society
Sponsor/Funder: Engineering & Physical Science Research Council (EPSRC)
Funder's Grant Number: N/A
Keywords: Science & Technology
Physical Sciences
Physics, Multidisciplinary
Physics
ELASTIC PRECURSOR DECAY
MOVING DISLOCATIONS
SINGLE-CRYSTAL
PLASTICITY
COMPRESSION
NUCLEATION
STRENGTH
ALLOYS
METALS
COPPER
Science & Technology
Physical Sciences
Physics, Multidisciplinary
Physics
ELASTIC PRECURSOR DECAY
MOVING DISLOCATIONS
SINGLE-CRYSTAL
PLASTICITY
COMPRESSION
NUCLEATION
STRENGTH
ALLOYS
METALS
COPPER
General Physics
01 Mathematical Sciences
02 Physical Sciences
09 Engineering
Publication Status: Published
Article Number: 174301
Online Publication Date: 2015-04-28
Appears in Collections:Condensed Matter Theory
Mechanical Engineering
Physics
Faculty of Natural Sciences
Faculty of Engineering