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dc.contributor.author
Tramontina Videla, Diego Ramiro
dc.contributor.author
Erhart, Paul
dc.contributor.author
Germann, Timothy
dc.contributor.author
Hawreliak, James
dc.contributor.author
Higginbotham, Andrew
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Park, Nigel
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Ravelo, Ramón
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Stukowski, Alexander
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Suggit, Mathew
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Tang, Yizhe
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Wark, Justin
dc.contributor.author
Bringa, Eduardo Marcial
dc.date.available
2018-01-03T21:44:33Z
dc.date.issued
2013-10
dc.identifier.citation
Bringa, Eduardo Marcial; Wark, Justin; Tang, Yizhe; Suggit, Mathew; Stukowski, Alexander; Ravelo, Ramón; et al.; Molecular dynamics simulations of shock-induced plasticity in tantalum; Elsevier; High Energy Density Physics; 10; 10-2013; 9-15
dc.identifier.issn
1574-1818
dc.identifier.uri
http://hdl.handle.net/11336/32249
dc.description.abstract
We present Non-Equilibrium Molecular Dynamics (NEMD) simulations of shock wave compression along the [001] direction in monocrystalline Tantalum, including pre-existing defects which act as dislocation sources. We use a new Embedded Atom Model (EAM) potential and study the nucleation and evolution of dislocations as a function of shock pressure and loading rise time. We find that the flow stress and dislocation density behind the shock front depend on strain rate. We find excellent agreement with recent experimental results on strength and recovered microstructure, which goes from dislocations to a mixture of dislocations and twins, to twinning dominated response, as the shock pressure increases.
dc.format
application/pdf
dc.language.iso
eng
dc.publisher
Elsevier
dc.rights
info:eu-repo/semantics/openAccess
dc.rights.uri
https://creativecommons.org/licenses/by-nc-nd/2.5/ar/
dc.subject
Tantalum
dc.subject
Molecular Dynamics
dc.subject
Shocks
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Otras Ingeniería de los Materiales
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Ingeniería de los Materiales
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INGENIERÍAS Y TECNOLOGÍAS
dc.title
Molecular dynamics simulations of shock-induced plasticity in tantalum
dc.type
info:eu-repo/semantics/article
dc.type
info:ar-repo/semantics/artículo
dc.type
info:eu-repo/semantics/publishedVersion
dc.date.updated
2017-11-09T13:35:36Z
dc.journal.volume
10
dc.journal.pagination
9-15
dc.journal.pais
Países Bajos
dc.journal.ciudad
Ámsterdam
dc.description.fil
Fil: Tramontina Videla, Diego Ramiro. Universidad Nacional de Cuyo. Facultad de Ciencias Exactas y Naturales; Argentina. Ministerio de Ciencia. Tecnología e Innovación Productiva. Agencia Nacional de Promoción Cientifíca y Tecnológica; Argentina. Consejo Nacional de Investigaciones Científicas y Técnicas. Centro Científico Tecnológico Conicet - Mendoza; Argentina
dc.description.fil
Fil: Erhart, Paul. Lawrence Livermore National Laboratory; Estados Unidos. Chalmer University of Technology; Suecia
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Fil: Germann, Timothy. Los Alamos National Laboratory; Estados Unidos
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Fil: Hawreliak, James. Los Alamos National Laboratory; Estados Unidos
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Fil: Higginbotham, Andrew. University of Oxford. Department of Physics; Reino Unido
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Fil: Park, Nigel. Atomic Weapons Establishment. Materials Modeling Group; Reino Unido
dc.description.fil
Fil: Ravelo, Ramón. Los Alamos National Laboratory; Estados Unidos. University of Texas at El Paso; Estados Unidos
dc.description.fil
Fil: Stukowski, Alexander. Universitat Technische Darmstadt; Alemania
dc.description.fil
Fil: Suggit, Mathew. University of Oxford. Department of Physics; Reino Unido
dc.description.fil
Fil: Tang, Yizhe. University Johns Hopkins; Estados Unidos
dc.description.fil
Fil: Wark, Justin. University of Oxford. Department of Physics; Reino Unido
dc.description.fil
Fil: Bringa, Eduardo Marcial. Universidad Nacional de Cuyo. Facultad de Ciencias Exactas y Naturales; Argentina. Consejo Nacional de Investigaciones Científicas y Técnicas. Centro Científico Tecnológico Conicet - Mendoza; Argentina
dc.journal.title
High Energy Density Physics
dc.relation.alternativeid
info:eu-repo/semantics/altIdentifier/doi/http://dx.doi.org/10.1016/j.hedp.2013.10.007
dc.relation.alternativeid
info:eu-repo/semantics/altIdentifier/url/http://www.sciencedirect.com/science/article/pii/S157418181300178X
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