Navarro, Helio AparecidoCabezas-Gomez, Lubenda Silva, Renato CesarMontagnoli, Arlindo Neto2014-02-262014-05-202014-02-262014-05-202007-06-15Applied Mathematics and Computation. New York: Elsevier B.V., v. 189, n. 2, p. 1601-1613, 2007.0096-3003http://hdl.handle.net/11449/24838This paper presents numerical simulations of incompressible fluid flows in the presence of a magnetic field at low magnetic Reynolds number. The equations governing the flow are the Navier-Stokes equations of fluid motion coupled with Maxwell's equations of electromagnetics. The study of fluid flows under the influence of a magnetic field and with no free electric charges or electric fields is known as magnetohydrodynamics. The magnetohydrodynamics approximation is considered for the formulation of the non-dimensional problem and for the characterization of similarity parameters. A finite-difference technique is used to discretize the equations. In particular, an extension of the generalized Peaceman and Rachford alternating-direction implicit (ADI) scheme for simulating two-dimensional fluid flows is presented. The discretized conservation equations are solved in stream function-vorticity formulation. We compare the ADI and generalized ADI schemes, and show that the latter is more efficient in simulating low Reynolds number and magnetic Reynolds number problems. Numerical results demonstrating the applicability of this technique are also presented. The simulation of incompressible magneto hydrodynamic fluid flows is illustrated by numerical solution for two-dimensional cases. (c) 2007 Elsevier B.V. All rights reserved.1601-1613engalternating-direction implicit schemestream function-vorticity-current densityMHDA generalized alternating-direction implicit scheme for incompressible magnetohydrodynamic viscous flows at low magnetic Reynolds numberArtigo10.1016/j.amc.2006.12.033WOS:000247699100056Acesso restrito