We give computational results to study the accuracy of several quasicontinuum methods for two benchmark problems – the stability of a Lomer dislocation pair under shear and the stability of a lattice to plastic slip under tensile loading. We find that our theoretical analysis of the accuracy near instabilities for one-dimensional model problems can successfully explain most of the computational results for these multi-dimensional benchmark problems. However, we also observe some clear discrepancies, which suggest the need for additional theoretical analysis and benchmark problems to more thoroughly understand the accuracy of quasicontinuum methods
We derive a priori error estimates for three prototypical energy-based quasicontinuum (QC) methods: ...
Force-based atomistic-continuum hybrid methods are the only known pointwise consistent methods for c...
peer reviewedThe quasicontinuum (QC) method is a numerical strategy to reduce the computational cost...
The aim of this paper is to present a streamlined and fully three-dimensional version of the quasico...
The formation and motion of lattice defects such as cracks, dislocations, or grain boundaries, occur...
The quasicontinuum method is a coarse-graining technique for reducing the complexity of atomistic si...
Due to their algorithmic simplicity and high accuracy, force-based model coupling techniques are pop...
The accuracy of atomistic-to-continuum hybrid methods can be guaranteed only for deformations where ...
We formulate an energy-based atomistic-to-continuum coupling method based on blending the quasiconti...
The quasicontinuum method is a coarse-graining technique for reducing the complexity of atomistic s...
Abstract. The accuracy of atomistic-to-continuum hybrid methods can be guaranteed only for deformati...
Force-based multiphysics coupling methods have become popular since they provide a simple and effici...
peer reviewedLattice models and discrete networks naturally describe mechanical phenomena at the mes...
The quasicontinuum (QC) method is a coarse-graining technique for reducing the complexity of atomist...
Abstract. The quasicontinuum method is a coarse-graining technique for reducing the complexity of at...
We derive a priori error estimates for three prototypical energy-based quasicontinuum (QC) methods: ...
Force-based atomistic-continuum hybrid methods are the only known pointwise consistent methods for c...
peer reviewedThe quasicontinuum (QC) method is a numerical strategy to reduce the computational cost...
The aim of this paper is to present a streamlined and fully three-dimensional version of the quasico...
The formation and motion of lattice defects such as cracks, dislocations, or grain boundaries, occur...
The quasicontinuum method is a coarse-graining technique for reducing the complexity of atomistic si...
Due to their algorithmic simplicity and high accuracy, force-based model coupling techniques are pop...
The accuracy of atomistic-to-continuum hybrid methods can be guaranteed only for deformations where ...
We formulate an energy-based atomistic-to-continuum coupling method based on blending the quasiconti...
The quasicontinuum method is a coarse-graining technique for reducing the complexity of atomistic s...
Abstract. The accuracy of atomistic-to-continuum hybrid methods can be guaranteed only for deformati...
Force-based multiphysics coupling methods have become popular since they provide a simple and effici...
peer reviewedLattice models and discrete networks naturally describe mechanical phenomena at the mes...
The quasicontinuum (QC) method is a coarse-graining technique for reducing the complexity of atomist...
Abstract. The quasicontinuum method is a coarse-graining technique for reducing the complexity of at...
We derive a priori error estimates for three prototypical energy-based quasicontinuum (QC) methods: ...
Force-based atomistic-continuum hybrid methods are the only known pointwise consistent methods for c...
peer reviewedThe quasicontinuum (QC) method is a numerical strategy to reduce the computational cost...