Gamma-convergent LDG method for large bending deformations of bilayer plates

Author:

Bonito Andrea1,Nochetto Ricardo H2,Yang Shuo3

Affiliation:

1. Department of Mathematics , Texas A&M University, College Station, TX 77845, USA

2. Department of Mathematics and Institute for Physical Science and Technology , University of Maryland, College Park, Maryland 20742, USA

3. Beijing Institute of Mathematical Sciences and Applications , Beijing 101408, China

Abstract

Abstract Bilayer plates are slender structures made of two thin layers of different materials. They react to environmental stimuli and undergo large bending deformations with relatively small actuation. The reduced model is a constrained minimization problem for the second fundamental form, with a given spontaneous curvature that encodes material properties, subject to an isometry constraint. We design a local discontinuous Galerkin (LDG) method, which imposes a relaxed discrete isometry constraint and controls deformation gradients at barycenters of elements. We prove $\varGamma $-convergence of LDG, design a fully practical gradient flow, which gives rise to a linear scheme at every step, and show energy stability and control of the isometry defect. We extend the $\varGamma $-convergence analysis to piecewise quadratic creases. We also illustrate the performance of the LDG method with several insightful simulations of large deformations, one including a curved crease.

Publisher

Oxford University Press (OUP)

Subject

Applied Mathematics,Computational Mathematics,General Mathematics

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