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Comparison of Deformation Textures and Mechanical Properties Predicted by Different Crystal Plasticity Codes

机译:不同晶体塑性代码预测的变形织构与力学性能比较

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Four crystal plasticity codes, the viscoplastic Material Point Simulator (MPS) developed at Cornell, and the ViscoPlastic Self-Consistent code (VPSC7b), developed at LANL, and two elastic-viscoplastic codes developed at Drexel University, were employed to calculated deformation textures and mechanical properties of model polycrystalline specimens by simulating isochoric, free upsetting. Uniaxial compression of a model sample with a starting random texture of 5000 grains was carried out at a constant true stain rate of 0.001/s to a true strain of 1.0 with 0.02 strain increments. Material properties simulated a face-centered cubic (FCC) alloy, Type 304 Stainless Steel, and a hexagonal close-packed (HCP) material, unalloyed Ti, both non- hardening and linear hardening conditions were investigated. Different strain- rate sensitivities simulated deformation conditions appropriate to ambient and elevated temperature conditions. All codes permitted use of the Taylor homogenization hypothesis, resulting in an upper bound for the mechanical properties.

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