The least-squares finite element method (LSFEM), which is based on minimizing the l2-norm of the residual, has many attractive advantages over Galerkin finite element method (GFEM). It is now well established as a proper approach to deal with the convection dominated fluid dynamic equations. The least-squares finite element method has a number of attractive characteristics such as the lack of an inf-sup condition and the resulting symmetric positive system of algebraic equations unlike GFEM. However, the higher continuity requirements for second-order terms in the governing equations force the introduction of additional unknowns through the use of an equivalent first-order system of equations or the use of C1 continuous basis functions. These additional unknowns lead to increased memory and computing time requirements that have prevented the application of LSFEM to large-scale practical problems, such as three-dimensional compressible viscous flows. A simple finite element method is proposed that employs a least-squares method for first-order derivatives and a Galerkin method for second order derivatives, thereby avoiding the need for additional unknowns required by pure a LSFEM approach. When the unsteady form of the governing equations is used, a streamline upwinding term is introduced naturally by the leastsquares method. Resulting system matrix is always symmetric and positive definite and can be solved by iterative solvers like pre-conditioned conjugate gradient method. The method is stable for convection-dominated flows and allows for equalorder basis functions for both pressure and velocity. The stability and accuracy of the method are demonstrated with preliminary results of several benchmark problems solved using low-order C0 continuous elements.
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ASME 2008 International Design Engineering Technical Conferences and Computers and Information in Engineering Conference
August 3–6, 2008
Brooklyn, New York, USA
Conference Sponsors:
- Design Engineering Division and Computers in Engineering Division
ISBN:
978-0-7918-4327-7
PROCEEDINGS PAPER
A Least-Squares/Galerkin Finite Element Method for Incompressible Navier-Stokes Equations Available to Purchase
Rajeev Kumar,
Rajeev Kumar
University of Texas - Arlington, Arlington, TX
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Brian H. Dennis
Brian H. Dennis
University of Texas - Arlington, Arlington, TX
Search for other works by this author on:
Rajeev Kumar
University of Texas - Arlington, Arlington, TX
Brian H. Dennis
University of Texas - Arlington, Arlington, TX
Paper No:
DETC2008-49654, pp. 525-535; 11 pages
Published Online:
July 13, 2009
Citation
Kumar, R, & Dennis, BH. "A Least-Squares/Galerkin Finite Element Method for Incompressible Navier-Stokes Equations." Proceedings of the ASME 2008 International Design Engineering Technical Conferences and Computers and Information in Engineering Conference. Volume 3: 28th Computers and Information in Engineering Conference, Parts A and B. Brooklyn, New York, USA. August 3–6, 2008. pp. 525-535. ASME. https://doi.org/10.1115/DETC2008-49654
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