4.7 Article

A two-grid mixed finite element method for a nonlinear fourth-order reaction-diffusion problem with time-fractional derivative

Journal

COMPUTERS & MATHEMATICS WITH APPLICATIONS
Volume 70, Issue 10, Pages 2474-2492

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.camwa.2015.09.012

Keywords

Two-grid method; Time-fractional reaction-diffusion equation; Mixed finite element method; Fourth-order equation

Funding

  1. National Natural Science Fund [11301258, 11361035, 11501311]
  2. National Science Foundation [DMS-1416742]
  3. Postgraduate Scientific Research Innovation Foundation of Inner Mongolia [1402020201337]

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In this article, we develop a two-grid algorithm based on the mixed finite element (MFE) method for a nonlinear fourth-order reaction-diffusion equation with the time-fractional derivative of Caputo-type. We formulate the problem as a nonlinear fully discrete MFE system, where the time integer and fractional derivatives are approximated by finite difference methods and the spatial derivatives are approximated by the MFE method. To solve the nonlinear MFE system more efficiently, we propose a two-grid algorithm, which is composed of two steps: we first solve a nonlinear MFE system on a coarse grid by nonlinear iterations, then solve the linearized MFE system on the fine grid by Newton iteration. Numerical stability and optimal error estimate O(k(Delta)(2-alpha) + h(r+1) + H2r+2) in L-2-norm are proved for our two-grid scheme, where k(Delta), h and H are the time step size, coarse grid mesh size, and fine grid mesh size, respectively. We implement the two-grid algorithm, and present the numerical results justifying our theoretical error estimate. The numerical tests also show that the two-grid method is much more efficient than solving the nonlinear MFE system directly. (C) 2015 Elsevier Ltd. All rights reserved.

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