4.7 Article

Three-dimensional crystal plasticity and HR-EBSD analysis of the local stress-strain fields induced during twin propagation and thickening in magnesium alloys

Journal

JOURNAL OF MAGNESIUM AND ALLOYS
Volume 11, Issue 2, Pages 657-670

Publisher

KEAI PUBLISHING LTD
DOI: 10.1016/j.jma.2022.11.0062213-9567

Keywords

Magnesium alloy; Twinning; FEM; Crystal plasticity; HR-EBSD

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The present study focuses on analyzing the stress and strain distribution inside and around the {10-12} twin in magnesium alloy. A 3D crystal plasticity model is used to represent the twin as an ellipsoidal inclusion surrounded by the matrix. The simulation results are consistent with experimental observations, showing a similar distribution of shear stress and activity of slip systems. Plasticity inside the twin is primarily caused by prismatic dislocation slip and does not affect twin back stress. The lateral propagation of the twin is influenced by prismatic and pyramidal slip in the twin vicinity, and the thickness of the twin is limited by the critical resolved shear stress values for dislocation slip, with basal slip playing a significant role.
Present work focuses on analysis of the stress and strain fields inside and around the individual {10-12} twin in magnesium alloy. The 3D crystal plasticity model represents twin as an ellipsoidal inclusion surrounded by the matrix. Five different twin thicknesses and three different lateral twin lengths are used for stress/strain analysis. The simulations are complemented with experimental observations using high-resolution electron backscattered diffraction. The simulations and experiments show a similar distribution of the shear stress and the spatial activity of individual slip systems (basal, prismatic, pyramidal). Plasticity induced inside the twin is dominantly caused by the prismatic dislocations slip and does not influence twin back stress which is identical to pure elastic twin. The twin with larger lateral dimension requires lower equilibrium stress which suggests anisotropic twin propagation and increased thickness of such twins. The lateral twin propagation is mostly influenced by prismatic and pyramidal slip in the twin vicinity. The twin thickness can reach a maximal level that is driven by the critical resolved shear stress values for dislocation slip with the significant influence of basal slip. (c) 2022 Chongqing University. Publishing services provided by Elsevier B.V. on behalf of KeAi Communications Co. Ltd. This is an open access article under the CC BY-NC-ND license ( http://creativecommons.org/licenses/by-nc-nd/4.0/ ) Peer review under responsibility of Chongqing University

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