A local quasicontinuum method for 3D multilattice crystalline materials: Application to shape-memory alloys

被引:14
作者
Sorkin, V. [1 ,2 ]
Elliott, R. S. [1 ]
Tadmor, E. B. [1 ]
机构
[1] Univ Minnesota, Dept Aerosp Engn & Mech, Minneapolis, MN 55455 USA
[2] Inst High Performance Comp, Large Scale Complex Syst Grp, Singapore 117528, Singapore
关键词
multiscale methods; multilattice crystals; period extension; phonon instability; thermodynamic cycle; energy minimization; interatomic potential; FINITE-ELEMENT; SILICON NANOINDENTATION; BORN RULE; STABILITY; SOLIDS; NITI; TRANSFORMATIONS; SIMULATION; KINEMATICS; SYMMETRY;
D O I
10.1088/0965-0393/22/5/055001
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The quasicontinuum (QC) method, in its local (continuum) limit, is applied to materials with a multilattice crystal structure. Cauchy-Born (CB) kinematics, which accounts for the shifts of the crystal motif, is used to relate atomic motions to continuum deformation gradients. To avoid failures of CB kinematics, QC is augmented with a phonon stability analysis that detects lattice period extensions and identifies the minimum required periodic cell size. This approach is referred to as Cascading Cauchy-Born kinematics (CCB). In this paper, the method is described and developed. It is then used, along with an effective interaction potential (EIP) model for shape-memory alloys, to simulate the shape-memory effect and pseudoelasticity in a finite specimen. The results of these simulations show that (i) the CCB methodology is an essential tool that is required in order for QC-type simulations to correctly capture the first-order phase transitions responsible for these material behaviors, and (ii) that the EIP model adopted in this work coupled with the QC/CCB methodology is capable of predicting the characteristic behavior found in shape-memory alloys.
引用
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页数:22
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