Lattice Boltzmann model for the axisymmetric electro-thermo-convection
From MaRDI portal
Publication:2204048
DOI10.1016/J.CAMWA.2019.02.006zbMath1442.76083OpenAlexW2918208302MaRDI QIDQ2204048
Decai Li, Yang Hu, Yanjuan Zhang, Xiao-Dong Niu
Publication date: 2 October 2020
Published in: Computers \& Mathematics with Applications (Search for Journal in Brave)
Full work available at URL: https://doi.org/10.1016/j.camwa.2019.02.006
Finite volume methods applied to problems in fluid mechanics (76M12) Particle methods and lattice-gas methods (76M28) Probabilistic methods, particle methods, etc. for initial value and initial-boundary value problems involving PDEs (65M75)
Related Items (1)
Cites Work
- Multigrid lattice Boltzmann method for accelerated solution of elliptic equations
- Lattice Boltzmann equation for axisymmetric thermal flows
- A coupled lattice Boltzmann method to solve Nernst-Planck model for simulating electro-osmotic flows
- A novel thermal model for the lattice Boltzmann method in incompressible limit
- A lattice Boltzmann scheme for incompressible multiphase flow and its application in simulation of Rayleigh-Taylor instability
- Lattice-Boltzmann simulations of fluid flows in MEMS
- Numerical investigation of flows in Czochralski crystal growth by an axisymmetric lattice Boltzmann method.
- A modified double distribution lattice Boltzmann model for axisymmetric thermal flow
- Roughness and cavitations effects on electro-osmotic flows in rough microchannels using the lattice Poisson-Boltzmann methods
- DNS and LES of decaying isotropic turbulence with and without frame rotation using lattice Boltzmann method
- Modeling electrokinetic flows in microchannels using coupled lattice Boltzmann methods
- Numerical modelling of finite-amplitude electro-thermo-convection in a dielectric liquid layer subjected to both unipolar injection and temperature gradient
- Application of lattice Boltzmann method to simulate microchannel flows
- Numerical simulations of particulate suspensions via a discretized Boltzmann equation. Part 1. Theoretical foundation
- Coupled lattice-Boltzmann and finite-difference simulation of electroosmosis in microfluidic channels
- An Efficient Immersed Boundary-Lattice Boltzmann Method for the Simulation of Thermal Flow Problems
This page was built for publication: Lattice Boltzmann model for the axisymmetric electro-thermo-convection