首页 | 本学科首页   官方微博 | 高级检索  
     检索      


An atomistically-informed dislocation dynamics model for the plastic anisotropy and tension-compression asymmetry of BCC metals
Authors:ZQ Wang  IJ Beyerlein
Institution:a Department of Materials Science and Engineering, University of North Texas Denton, TX 76203, United States
b Theoretical Division, Los Alamos National Laboratory, Los Alamos, NM 87545, United States
Abstract:Atomistic simulations have shown that a screw dislocation in body-centered cubic (BCC) metals has a complex non-planar atomic core structure. The configuration of this core controls their motion and is affected not only by the usual resolved shear stress on the dislocation, but also by non-driving stress components. Consequences of the latter are referred to as non-Schmid effects. These atomic and micro-scale effects are the reason slip characteristics in deforming single and polycrystalline BCC metals are extremely sensitive to the direction and sense of the applied load. In this paper, we develop a three-dimensional discrete dislocation dynamics (DD) simulation model to understand the relationship between individual dislocation glide behavior and macro-scale plastic slip behavior in single crystal BCC Ta. For the first time, it is shown that non-Schmid effects on screw dislocations of both {110} and {112} slip systems must be implemented into the DD models in order to predict the strong plastic anisotropy and tension-compression asymmetry experimentally observed in the stress-strain curves of single crystal Ta. Incorporation of fundamental atomistic information is critical for developing a physics-based, predictive meso-scale DD simulation tool that can connect length/time scales and investigate the underlying mechanisms governing the deformation of BCC metals.
Keywords:Plastic anisotropy  Tension-compression asymmetry  Dislocation dynamics  BCC tantalum  Non-Schmid effects
本文献已被 ScienceDirect 等数据库收录!
设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号