Particle partitioning strategies for the parallel computation of solid-liquid flows.
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Publication:1609092
DOI10.1016/S0898-1221(02)00122-0zbMath1067.76060MaRDI QIDQ1609092
Yousef Saad, Z. Li, H. G. Choi, Leigh Little
Publication date: 15 August 2002
Published in: Computers \& Mathematics with Applications (Search for Journal in Brave)
Finite element methods applied to problems in fluid mechanics (76M10) Suspensions (76T20) Parallel numerical computation (65Y05)
Uses Software
Cites Work
- Viscous flow with large free surface motion
- Direct simulation of fluid particle motions
- A new strategy for finite element computations involving moving boundaries and interfaces --- The deforming-spatial-domain/space-time procedure. I: The concept and the preliminary numerical tests
- A new strategy for finite element computations involving moving boundaries and interfaces --- The deforming-spatial-domain/space-time procedure. II: Computation of free-surface flows, two-liquid flows, and flows with drifting cylinders
- 3D simulation of fluid-particle interactions with the number of particles reaching 100
- A fractional four-step finite element formulation of the unsteady incompressible Navier-Stokes equations using SUPG and linear equal-order element methods
- Splitting method for the combined formulation of the fluid-particle problem
- A fictitious domain method for Dirichlet problem and applications
- Fluidization by lift of 300 circular particles in plane Poiseuille flow by direct numerical simulation
- Direct simulation of flows of solid-liquid mixtures
- A Fast and High Quality Multilevel Scheme for Partitioning Irregular Graphs
- Fluidization of 1204 spheres: simulation and experiment
- Fluid-particle flow: a symmetric formulation
- Distributed Schur Complement Techniques for General Sparse Linear Systems
- A distributed Lagrange multiplier/fictitious domain method for particulate flows
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