Finite element analysis about effects of stiffness distribution on stresses and elastic strain energy near the triple junction in a tricrystal
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S. X. Li | W. P. Jia | C. R. Chen | J. L. Wen
[1] A. Zaoui,et al. Cavitation at triple nodes in α-zirconium polycrystals , 1996 .
[2] L. Priester,et al. Triple junctions at the mesoscopic, microscopic and nanoscopic scales , 1994 .
[3] A. V. Sisanbaev,et al. The effect of triple junction type on grain-boundary sliding and accomodation in aluminium tricrystals , 1992 .
[4] M. Wu,et al. A theoretical analysis of crack nucleation due to grain boundary dislocation pile-ups in a random ice microstructure , 1995 .
[5] A. V. Sisanbaev,et al. Self-organization of cooperative grain boundary sliding in aluminium tricrystals , 1997 .
[6] A. Elvin,et al. Microcracking due to grain boundary sliding in polycrystalline ice under uniaxial compression , 1996 .
[7] W. Bollmann. Triple-line disclinations representations, continuity and reactions , 1988 .
[8] J. Hutchinson,et al. Microcracking in Ceramics Induced by Thermal Expansion or Elastic Anisotropy , 1988 .
[9] W. Bollmann. Triple lines in polycrystalline aggregates as disclinations , 1984 .
[10] U. F. Kocks. The relation between polycrystal deformation and single-crystal deformation , 1970 .
[11] S. Li,et al. Characteristics of strain and resolved shear stress in a bicrystal with the grain boundary perpendicular to the tensile axis , 1998 .