Comparison of the deflated preconditioned conjugate gradient method and algebraic multigrid for composite materials
Many applications in computational science and engineering concern composite materials, which are characterized by large discontinuities in the material properties. Such applications require fine-scale finite-element meshes, which lead to large linear systems that are challenging to solve with curre...
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| Published in | Computational mechanics Vol. 50; no. 3; pp. 321 - 333 |
|---|---|
| Main Authors | , , , , |
| Format | Journal Article |
| Language | English |
| Published |
Berlin/Heidelberg
Springer-Verlag
01.09.2012
Springer Springer Nature B.V |
| Subjects | |
| Online Access | Get full text |
| ISSN | 0178-7675 1432-0924 1432-0924 |
| DOI | 10.1007/s00466-011-0661-y |
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| Abstract | Many applications in computational science and engineering concern composite materials, which are characterized by large discontinuities in the material properties. Such applications require fine-scale finite-element meshes, which lead to large linear systems that are challenging to solve with current direct and iterative solutions algorithms. In this paper, we consider the simulation of asphalt concrete, which is a mixture of components with large differences in material stiffness. The discontinuities in material stiffness give rise to many small eigenvalues that negatively affect the convergence of iterative solution algorithms such as the preconditioned conjugate gradient (PCG) method. This paper considers the deflated preconditioned conjugate gradient (DPCG) method in which the rigid body modes of sets of elements with homogeneous material properties are used as deflation vectors. As preconditioner we consider several variants of the algebraic multigrid smoothed aggregation method. We evaluate the performance of the DPCG method on a parallel computer using up to 64 processors. Our test problems are derived from real asphalt core samples, obtained using CT scans. We show that the DPCG method is an efficient and robust technique for solving these challenging linear systems. |
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| AbstractList | Many applications in computational science and engineering concern composite materials, which are characterized by large discontinuities in the material properties. Such applications require fine-scale finite-element meshes, which lead to large linear systems that are challenging to solve with current direct and iterative solutions algorithms. In this paper, we consider the simulation of asphalt concrete, which is a mixture of components with large differences in material stiffness. The discontinuities in material stiffness give rise to many small eigenvalues that negatively affect the convergence of iterative solution algorithms such as the preconditioned conjugate gradient (PCG) method. This paper considers the deflated preconditioned conjugate gradient (DPCG) method in which the rigid body modes of sets of elements with homogeneous material properties are used as deflation vectors. As preconditioner we consider several variants of the algebraic multigrid smoothed aggregation method. We evaluate the performance of the DPCG method on a parallel computer using up to 64 processors. Our test problems are derived from real asphalt core samples, obtained using CT scans. We show that the DPCG method is an efficient and robust technique for solving these challenging linear systems. Keywords Deflation * Algebraic multigrid * Preconditioners * Conjugate gradients * Rigid body modes * CT scan * Structural mechanics Mathematics Subject Classification (2000) 65F10 * 65F08 * 65Z05 Many applications in computational science and engineering concern composite materials, which are characterized by large discontinuities in the material properties. Such applications require fine-scale finite-element meshes, which lead to large linear systems that are challenging to solve with current direct and iterative solutions algorithms. In this paper, we consider the simulation of asphalt concrete, which is a mixture of components with large differences in material stiffness. The discontinuities in material stiffness give rise to many small eigenvalues that negatively affect the convergence of iterative solution algorithms such as the preconditioned conjugate gradient (PCG) method. This paper considers the deflated preconditioned conjugate gradient (DPCG) method in which the rigid body modes of sets of elements with homogeneous material properties are used as deflation vectors. As preconditioner we consider several variants of the algebraic multigrid smoothed aggregation method. We evaluate the performance of the DPCG method on a parallel computer using up to 64 processors. Our test problems are derived from real asphalt core samples, obtained using CT scans. We show that the DPCG method is an efficient and robust technique for solving these challenging linear systems. |
| Audience | Academic |
| Author | Vuik, C. Scarpas, A. Jönsthövel, T. B. MacLachlan, S. van Gijzen, M. B. |
| Author_xml | – sequence: 1 givenname: T. B. surname: Jönsthövel fullname: Jönsthövel, T. B. email: t.b.jonsthovel@tudelft.nl organization: Department of Structural Mechanics, Faculty of Civil Engineering, Delft University of Technology – sequence: 2 givenname: M. B. surname: van Gijzen fullname: van Gijzen, M. B. organization: Department of Applied Mathematical Analysis, Faculty of Electrical Engineering, Mathematics and Computer Science, Delft University of Technology – sequence: 3 givenname: S. surname: MacLachlan fullname: MacLachlan, S. organization: Department of Mathematics, Tufts University – sequence: 4 givenname: C. surname: Vuik fullname: Vuik, C. organization: Department of Applied Mathematical Analysis, Faculty of Electrical Engineering, Mathematics and Computer Science, Delft University of Technology – sequence: 5 givenname: A. surname: Scarpas fullname: Scarpas, A. organization: Department of Structural Mechanics, Faculty of Civil Engineering, Delft University of Technology |
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| Keywords | 65Z05 Structural mechanics 65F10 Deflation Conjugate gradients Preconditioners Rigid body modes CT scan 65F08 Algebraic multigrid |
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| SubjectTerms | Algebra Algorithms Asphalt Classical and Continuum Physics Comparative analysis Composite materials Composite materials industry Computational Science and Engineering Computed tomography Computer simulation Conjugate gradient method Conjugates Eigenvalues Engineering Finite element method Iterative methods Iterative solution Linear systems Material properties Methods Original Paper Parallel computers Rigid structures Stiffness Theoretical and Applied Mechanics Vectors (mathematics) |
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| Title | Comparison of the deflated preconditioned conjugate gradient method and algebraic multigrid for composite materials |
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