Continuum modeling of dislocation plasticity: Theory, numerical implementation and comparison to discrete dislocation simulations

P. Gumbsch*, S. Sandfeld, J. Senger, D. Weygand, T. Hochrainer

*Korrespondierende/r Autor/-in für diese Arbeit

Publikation: Beitrag in Buch/Bericht/KonferenzbandBeitrag in einem KonferenzbandBegutachtung

Abstract

The development of advanced materials is driven by continuous progress in the synthesis and control of materials microstructure on sub-micrometer and nanometer scales. Confined to these length-scales, many materials show strikingly different physical properties from their bulk counterparts, like a strong increase in flow stress with decreasing size. This calls for an increased effort on physically motivated continuum theories which can predict size-dependent plasticity by accounting for length scales associated with the dislocation microstructure. An important recent development has been the formulation of a Continuum Dislocation Dynamics (CDD) Theory which provides a kinematically consistent continuum description of the dynamics of curved dislocation systems [1]. Here we present a brief overview of the CDD method and illustrate the implementation of the CDD by numerical examples, the bending of a thin film, the torsion of a wire, and the plastic flow around an elastic inclusion. Results are compared to three-dimensional discrete dislocation dynamics simulations.

Originalspracheenglisch
TitelConference Program for the 3rd International Conference on Heterogeneous Materials Mechanics, ICHMM 2011
Seiten7-15
Seitenumfang9
PublikationsstatusVeröffentlicht - 2011
Extern publiziertJa
Veranstaltung3rd International Conference on Heterogeneous Materials Mechanics, ICHMM 2011 - Shanghai, China
Dauer: 22 Mai 201126 Mai 2011

Konferenz

Konferenz3rd International Conference on Heterogeneous Materials Mechanics, ICHMM 2011
Land/GebietChina
OrtShanghai
Zeitraum22/05/1126/05/11

ASJC Scopus subject areas

  • Werkstoffmechanik

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