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Line-integral representations for the elastic displacements,stresses and interaction energy of arbitrary dislocation loops in transversely isotropic bimaterials
Authors:JH Yuan  E Pan  WQ Chen
Institution:1. Department of Civil Engineering, Zhejiang University, Hangzhou 310058, China;2. School of Mechanical Engineering, Zhengzhou University, Zhengzhou 450001, China;3. Department of Civil Engineering, University of Akron, Akron, OH 44325, USA;4. Department of Engineering Mechanics, Zhejiang University, Hangzhou 310027, China
Abstract:The elastic displacements, stresses and interaction energy of arbitrarily shaped dislocation loops with general Burgers vectors in transversely isotropic bimaterials (i.e. joined half-spaces) are expressed in terms of simple line integrals for the first time. These expressions are very similar to their isotropic full-space counterparts in the literature and can be easily incorporated into three-dimensional (3D) dislocation dynamics (DD) simulations for hexagonal crystals with interfaces/surfaces. All possible degenerate cases, e.g. isotropic bimaterials and isotropic half-space, are considered in detail. The singularities intrinsic to the classical continuum theory of dislocations are removed by spreading the Burgers vector anisotropically around every point on the dislocation line according to three particular spreading functions. This non-singular treatment guarantees the equivalence among different versions of the energy formulae and their consistency with the stress formula presented in this paper. Several numerical examples are provided as verification of the derived dislocation solutions, which further show significant influence of material anisotropy and bimaterial interface on the elastic fields and interaction energy of dislocation loops.
Keywords:Line integral  Dislocation loop  Transverse isotropy  Hexagonal crystals  Bimaterials  Elastic fields  Interaction energy  Singularity
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