Robust iterative methods for solution of transport problems with flow: a block two-level preconditioned Schwarz-domain decomposition method for solution of nonlinear viscous flow problems

Efficient parallel computation of complex flows is essential to bring modern computer power to bear on fluid calculations where complicated physical descriptions are required. We have developed an efficient, parallel computational method for solving generalized Stokes flow problems that arise when o...

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Published inChemical engineering science Vol. 57; no. 21; pp. 4583 - 4594
Main Authors Caola, A.E., Brown, R.A.
Format Journal Article
LanguageEnglish
Published Oxford Elsevier Ltd 01.11.2002
Elsevier
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ISSN0009-2509
1873-4405
DOI10.1016/S0009-2509(02)00394-9

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Abstract Efficient parallel computation of complex flows is essential to bring modern computer power to bear on fluid calculations where complicated physical descriptions are required. We have developed an efficient, parallel computational method for solving generalized Stokes flow problems that arise when operator splitting of the velocity and pressure fields is used in Newton's method for solution of nonlinear, steady-state flow problems. The key to the parallelization is the incorporation of a preconditioned iterative matrix solution. The linear system that results from finite element discretization of the generalized Stokes problem is asymmetric, indefinite, and block singular. At each Newton step, this system is solved using an algorithm that combines a parallel preconditioner with a Krylov subspace method. The parallel preconditioner, called the block complement and additive levels method (BCALM) preconditioner, is based on treating pressure unknowns separately from the velocities and gradients. A pressure preconditioner is constructed from factorization of the Schur complement of the pressures using a Jacobi-type iteration. The viscous operator is preconditioned using the additive Schwarz method. The resulting iterative method is demonstrated to have high parallel efficiency, subject to effective domain decomposition. The iterative solver is developed in the context of simulation of natural convection modeled by the Boussnesq approximation. For natural convection in a rectangular cavity heated from the sides, in the limit of high Grashof number, the linear system that arises during solution for steady state using Newton's method is stiff, asymmetric and indefinite. For this model problem, the preconditioner is shown to be robust and the overall iterative solution is highly efficient relative to other solution methods.
AbstractList This paper outlines an efficient, parallel computational method for solving generalized Stokes flow problems that arise when operator splitting of the velocity and pressure fields is used in Newton's method for solution of nonlinear, steady-state flow problems. The key to the parallelization is the incorporation of a preconditioned iterative matrix solution. The linear system that results from finite element discretization of the generalized Stokes problem is asymmetric, indefinite, and block singular. At each Newton step, this system is solved using an algorithm that combines a parallel preconditioner with a Krylov subspace method. The parallel preconditioner, called the block complement and additive levels method (BCALM) preconditioner, is based on treating pressure unknowns separately from the velocities and gradients. A pressure preconditioner is constructed from factorization of the Schur complement of the pressures using a Jacobi-type iteration. The viscous operator is preconditioned using the additive Schwarz method. The resulting iterative method is demonstrated to have high parallel efficiency, subject to effective domain decomposition. The iterative solver is developed in the context of simulation of natural convection modelled by the Boussnesq approximation. (Original abstract - amended)
This paper outlines an efficient, parallel computational method for solving generalized Stokes flow problems that arise when operator splitting of the velocity and pressure fields is used in Newton's method for solution of nonlinear, steady-state flow problems. The key to the parallelization is the incorporation of a preconditioned iterative matrix solution. The linear system that results from finite element discretization of the generalized Stokes problem is asymmetric, indefinite, and block singular. At each Newton step, this system is solved using an algorithm that combines a parallel preconditioner with a Krylov subspace method. The parallel preconditioner, called the block complement and additive levels method (BCALM) preconditioner, is based on treating pressure unknowns separately from the velocities and gradients. A pressure preconditioner is constructed from factorization of the Schur complement of the pressures using a Jacobi-type iteration. The viscous operator is preconditioned using the additive Schwarz method. The resulting iterative method is demonstrated to have high parallel efficiency, subject to effective domain decomposition. The iterative solver is developed in the context of simulation of natural convection modelled by the Boussnesq approximation.
Efficient parallel computation of complex flows is essential to bring modern computer power to bear on fluid calculations where complicated physical descriptions are required. We have developed an efficient, parallel computational method for solving generalized Stokes flow problems that arise when operator splitting of the velocity and pressure fields is used in Newton's method for solution of nonlinear, steady-state flow problems. The key to the parallelization is the incorporation of a preconditioned iterative matrix solution. The linear system that results from finite element discretization of the generalized Stokes problem is asymmetric, indefinite, and block singular. At each Newton step, this system is solved using an algorithm that combines a parallel preconditioner with a Krylov subspace method. The parallel preconditioner, called the block complement and additive levels method (BCALM) preconditioner, is based on treating pressure unknowns separately from the velocities and gradients. A pressure preconditioner is constructed from factorization of the Schur complement of the pressures using a Jacobi-type iteration. The viscous operator is preconditioned using the additive Schwarz method. The resulting iterative method is demonstrated to have high parallel efficiency, subject to effective domain decomposition. The iterative solver is developed in the context of simulation of natural convection modeled by the Boussnesq approximation. For natural convection in a rectangular cavity heated from the sides, in the limit of high Grashof number, the linear system that arises during solution for steady state using Newton's method is stiff, asymmetric and indefinite. For this model problem, the preconditioner is shown to be robust and the overall iterative solution is highly efficient relative to other solution methods.
Author Caola, A.E.
Brown, R.A.
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Issue 21
Keywords Fluid mechanics
Parallel computation
Numerical analysis
Computational fluid dynamics
Digital simulation
Natural convection
Conjugate gradient methods
Cavity flow
Finite element method
Algorithms
Parallel processing
Iterative methods
Domain decomposition
Viscous fluids
Preconditioning
Numerical convergence
Heat transfer
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Snippet Efficient parallel computation of complex flows is essential to bring modern computer power to bear on fluid calculations where complicated physical...
This paper outlines an efficient, parallel computational method for solving generalized Stokes flow problems that arise when operator splitting of the velocity...
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StartPage 4583
SubjectTerms Computational methods in fluid dynamics
Convection and heat transfer
Exact sciences and technology
Fluid dynamics
Fluid mechanics
Fundamental areas of phenomenology (including applications)
Laminar flows
Laminar flows in cavities
Numerical analysis
Parallel computation
Physics
Turbulent flows, convection, and heat transfer
Title Robust iterative methods for solution of transport problems with flow: a block two-level preconditioned Schwarz-domain decomposition method for solution of nonlinear viscous flow problems
URI https://dx.doi.org/10.1016/S0009-2509(02)00394-9
https://www.proquest.com/docview/27671039
https://www.proquest.com/docview/27683040
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