Article ID Journal Published Year Pages File Type
471321 Computers & Mathematics with Applications 2014 17 Pages PDF
Abstract

We analyze the discontinuous Petrov–Galerkin (DPG) method with optimal test functions when applied to solve the Reissner–Mindlin model of plate bending. We prove that the hybrid variational formulation underlying the DPG method is well-posed (stable) with a thickness-dependent constant in a norm encompassing the L2L2-norms of the bending moment, the shear force, the transverse deflection and the rotation vector. We then construct a numerical solution scheme based on quadrilateral scalar and vector finite elements of degree pp. We show that for affine meshes the discretization inherits the stability of the continuous formulation provided that the optimal test functions are approximated by polynomials of degree p+3p+3. We prove a theoretical error estimate in terms of the mesh size hh and polynomial degree pp and demonstrate numerical convergence on affine as well as non-affine mesh sequences.

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