Direct simulations on the electrophoretic motion of multiple charged particles using an immersed boundary method
DOI10.1016/j.compfluid.2012.12.005zbMath1365.76193OpenAlexW2051374024MaRDI QIDQ2362062
Publication date: 5 July 2017
Published in: Computers and Fluids (Search for Journal in Brave)
Full work available at URL: https://doi.org/10.1016/j.compfluid.2012.12.005
direct numerical simulationselectrophoresisMaxwell stress tensorcharged dielectric particlesdirect-charging based immersed-boundary method
Finite difference methods applied to problems in fluid mechanics (76M20) Direct numerical and large eddy simulation of turbulence (76F65) Boundary element methods applied to problems in fluid mechanics (76M15) Magnetohydrodynamics and electrohydrodynamics (76W05)
Related Items (2)
Cites Work
- Simulating flows with moving rigid boundary using immersed-boundary method
- Modeling electrokinetic flows by the smoothed profile method
- An immersed boundary technique for simulating complex flows with rigid boundary
- A ghost-cell immersed boundary method for flow in complex geometry.
- Numerical simulation of a cylinder in uniform flow: Application of a virtual boundary method
- An immersed boundary method with direct forcing for the simulation of particulate flows
- An immersed-boundary finite-volume method for direct simulation of flows with suspended paramagnetic particles
- High-order stable interpolations for immersed boundary methods
- Assessment of regularized delta functions and feedback forcing schemes for an immersed boundary method
- Characteristics of flow over two circular cylinders in a side-by-side arrangement at low Reynolds numbers
- Characteristics of flow over a rotationally oscillating cylinder at low Reynolds number
- Near-contact electrophoretic motion of a sphere parallel to a planar wall
- Laminar flow over a steadily rotating circular cylinder under the influence of uniform shear
- An immersed-boundary finite volume method for simulations of flow in complex geometries
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