A Novel High Order Space-Time Spectral Method for the Time Fractional Fokker--Planck Equation


Autoria(s): Zheng, Minling; Liu, Fawang; Turner, Ian; Anh, Vo
Data(s)

2015

Resumo

The fractional Fokker-Planck equation is an important physical model for simulating anomalous diffusions with external forces. Because of the non-local property of the fractional derivative an interesting problem is to explore high accuracy numerical methods for fractional differential equations. In this paper, a space-time spectral method is presented for the numerical solution of the time fractional Fokker-Planck initial-boundary value problem. The proposed method employs the Jacobi polynomials for the temporal discretization and Fourier-like basis functions for the spatial discretization. Due to the diagonalizable trait of the Fourier-like basis functions, this leads to a reduced representation of the inner product in the Galerkin analysis. We prove that the time fractional Fokker-Planck equation attains the same approximation order as the time fractional diffusion equation developed in [23] by using the present method. That indicates an exponential decay may be achieved if the exact solution is sufficiently smooth. Finally, some numerical results are given to demonstrate the high order accuracy and efficiency of the new numerical scheme. The results show that the errors of the numerical solutions obtained by the space-time spectral method decay exponentially.

Formato

application/pdf

Identificador

http://eprints.qut.edu.au/82700/

Publicador

Society for Industrial and Applied Mathematics

Relação

http://eprints.qut.edu.au/82700/10/82700a.pdf

DOI:10.1137/140980545

Zheng, Minling, Liu, Fawang, Turner, Ian, & Anh, Vo (2015) A Novel High Order Space-Time Spectral Method for the Time Fractional Fokker--Planck Equation. SIAM Journal on Scientific Computing, 37(2), A701-A724.

Direitos

2015 Society for Industrial and Applied Mathematics

Fonte

ARC Centre of Excellence for Mathematical & Statistical Frontiers (ACEMS); School of Mathematical Sciences; Science & Engineering Faculty

Palavras-Chave #010204 Dynamical Systems in Applications #010301 Numerical Analysis
Tipo

Journal Article