Title of article
Crystal plasticity finite element simulations of pyramidal indentation in copper single crystals Original Research Article
Author/Authors
O. Casals، نويسنده , , J. O?en??ek، نويسنده , , J. Alcala، نويسنده ,
Issue Information
دوهفته نامه با شماره پیاپی سال 2007
Pages
14
From page
55
To page
68
Abstract
Vickers and Berkovich indentation experiments in single crystals are examined via three-dimensional finite element simulations. Annealed and strain-hardened copper are used as model materials to assay the physical consistency of the continuum crystal plasticity theory used in the simulations. Agreement between experiments and simulations is predicated in terms of hardness, instrumented indentation applied load (P)–penetration depth (hs) curves, and material pileup and sinking-in development at the contact boundary. It is shown that while hardness is essentially insensitive to loading direction, some degree of anisotropy is present in the P–hs curves. The influence of crystal slip anisotropy and of prior straining on the dislocation density patterns underneath sharp indenters is examined. A similarity is found between contact responses obtained with the J2 associated-flow theory (describing elasto-plastic deformation in isotropic polycrystalline metals) and those from present crystal plasticity simulations. The implications for mechanical property extractions are discussed.
Keywords
Nano-indentation , Crystal plasticity , Micromechanical modelling , Hardness , Finite element analysis
Journal title
ACTA Materialia
Serial Year
2007
Journal title
ACTA Materialia
Record number
1142739
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