A direct simulation method for particle‐fluid systems
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Publication:4678312
DOI10.1108/02644400410519721zbMath1062.76553MaRDI QIDQ4678312
David R. Noble, Benjamin K. Cook, John R. Williams
Publication date: 23 May 2005
Published in: Engineering Computations (Search for Journal in Brave)
Navier-Stokes equations for incompressible viscous fluids (76D05) Particle methods and lattice-gas methods (76M28) Suspensions (76T20)
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Cites Work
- Unnamed Item
- On the finite difference-based lattice Boltzmann method in curvilinear coordinates
- Accuracy of discrete-velocity BGK models for the simulation of the incompressible Navier-Stokes equations
- Lattice Boltzmann simulation of solid particles suspended in fluid
- A fast contact detection algorithm insensitive to object sizes
- Lattice BGK Models for Navier-Stokes Equation
- Direct simulation of flows of solid-liquid mixtures
- Direct analysis of particulate suspensions with inertia using the discrete Boltzmann equation
- Lattice-Boltzmann simulations of particles in non-zero-Reynolds-number flows
- Numerical simulations of particulate suspensions via a discretized Boltzmann equation. Part 1. Theoretical foundation
- LATTICE BOLTZMANN METHOD FOR FLUID FLOWS
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