Investigating the effect of micro-structure on the deformation of saturated fibrous media using direct numerical simulations
DOI10.1016/j.compfluid.2016.10.030zbMath1390.76328OpenAlexW2549129996MaRDI QIDQ1648118
Publication date: 27 June 2018
Published in: Computers and Fluids (Search for Journal in Brave)
Full work available at URL: https://doi.org/10.1016/j.compfluid.2016.10.030
finite element methodlattice Boltzmann methodfluid-structure interactiondirect numerical simulationsfibrous media deformation
Fluid-solid interactions (including aero- and hydro-elasticity, porosity, etc.) (74F10) Particle methods and lattice-gas methods (76M28) Finite element methods applied to problems in fluid mechanics (76M10) Finite element, Rayleigh-Ritz and Galerkin methods for initial value and initial-boundary value problems involving PDEs (65M60) Flows in porous media; filtration; seepage (76S99)
Cites Work
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- Extended finite element modeling of deformable porous media with arbitrary interfaces
- An evaluation of lattice Boltzmann schemes for porous medium flow simulation
- Incompressible porous media models by use of the theory of mixtures
- Compressible porous media models by use of the theory of mixtures
- Extension of the lattice-Boltzmann method for direct simulation of suspended particles near contact
- One-dimensional transient wave propagation in fluid-saturated incompressible porous media
- Lattice Boltzmann simulation of solid particles suspended in fluid
- Direct numerical simulation of saturated deformable porous media using parallel hybrid Lattice-Boltzmann and finite element method
- Simulating deformable particle suspensions using a coupled lattice-Boltzmann and finite-element method
- Direct analysis of particulate suspensions with inertia using the discrete Boltzmann equation
- Comparison of cellular automata and finite volume techniques for simulation of incompressible flows in complex geometries
- Numerical simulations of particulate suspensions via a discretized Boltzmann equation. Part 1. Theoretical foundation
- Analysis of the wet pressing of paper pulp
- Influence of fiber orientation on the transverse permeability of fibrous media
- A comparative study of lattice Boltzmann and front-tracking finite-difference methods for bubble simulations
- Analysis of paper pressing: the saturated one‐dimensional case
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