Formation of grain boundaries in ductile single crystals under plane-strain simple shear: a block-coordinate finite element method
Khanh Chau Le, Thanh Danh Nguyen
Abstract
Large plastic deformation can drive an initially uniform single crystal to spontaneously subdivide into misoriented grains separated by thin dislocation walls -- a pattern-forming instability rooted in the loss of convexity of the crystal's elastic energy at large strain. We study this phenomenon for a ductile crystal in plane-strain simple shear within continuum dislocation theory, using a polyconvex (Ciarlet--Geymonat) elastic energy that guarantees existence of minimizers for the coupled deformation--slip problem. Minimizing over the plastic slip yields a condensed energy of double-well form whose non-quasiconvexity favours a lamellar microstructure; the gradient of the geometrically necessary dislocation density regularizes it, giving the grain boundaries a finite thickness and energy as functions of the misorientation angle. A block-coordinate finite element scheme -- alternating a convex non-smooth solve for the slip with a Levenberg-regularized Newton solve for the deformation -- resolves this microstructure numerically and detects its spontaneous onset, reproducing the lamellar grain structure in agreement with the closed-form analysis.
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