Dislocation nucleation governed softening and maximum strength in nano-twinned metals

Xiaoyan Li;宇杰 魏;Lei Lu;柯 卢;华健 高

Brown University;China Association for Science and Technology;Institute of Metal Research Chinese Academy of Sciences

发表时间:2010-4-8

期 刊:Nature

语 言:English

U R L: http://www.scopus.com/inward/record.url?scp=77950856721&partnerID=8YFLogxK

摘要

In conventional metals, there is plenty of space for dislocationsline defects whose motion results in permanent material deformationto multiply, so that the metal strengths are controlled by dislocation interactions with grain boundaries and other obstacles. For nanostructured materials, in contrast, dislocation multiplication is severely confined by the nanometre-scale geometries so that continued plasticity can be expected to be source-controlled. Nano-grained polycrystalline materials were found to be strong but brittle, because both nucleation and motion of dislocations are effectively suppressed by the nanoscale crystallites. Here we report a dislocation-nucleation-controlled mechanism in nano-twinned metals in which there are plenty of dislocation nucleation sites but dislocation motion is not confined. We show that dislocation nucleation governs the strength of such materials, resulting in their softening below a critical twin thickness. Large-scale molecular dynamics simulations and a kinetic theory of dislocation nucleation in nano-twinned metals show that there exists a transition in deformation mechanism, occurring at a critical twin-boundary spacing for which strength is maximized. At this point, the classical Hall-Petch type of strengthening due to dislocation pile-up and cutting through twin planes switches to a dislocation-nucleation-controlled softening mechanism with twin-boundary migration resulting from nucleation and motion of partial dislocations parallel to the twin planes. Most previous studies did not consider a sufficient range of twin thickness and therefore missed this strength-softening regime. The simulations indicate that the critical twin-boundary spacing for the onset of softening in nano-twinned copper and the maximum strength depend on the grain size: the smaller the grain size, the smaller the critical twin-boundary spacing, and the higher the maximum strength of the material.

文献指纹

物理与天文学

softening

nucleation

metals

spacing

grain size

piles

kinetic theory

multiplication

plastic properties

crystallites

switches

simulation

grain boundaries

molecular dynamics

copper

mechanical properties

geometry

defects

interactions

被引量

期刊度量

Scopus度量

年份 CiteScore SJR SNIP
1996
1997
1998
1999 15.599 7.183
2000 11.917 6.845
2001 9.874 6.735
2002 10.114 7.208
2003 11.384 7.504
2004 11.222 7.523
2005 10.333 7.199
2006 9.702 7.156
2007 10.344 7.097
2008 13.17 7.321
2009 15.185 8.2
2010 16.465 8.23
2011 53.1 17.598 8.652
2012 51 17.546 8.409
2013 50.9 19.69 8.482
2014 49.9 18.78 7.946
2015 51.6 19.669 8.052
2016 49.2 18.389 7.901
2017 53.7 17.875 8.647
2018 55.7 16.345 9.448
2019 51 14.047 8.82
2020 49.5

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