A Multiple-Grid Lattice Boltzmann Method for Natural Convection under Low and High Prandtl Numbers
A multi-distribution lattice Boltzmann Bhatnagar–Gross–Krook (BGK) model with a multiple-grid lattice Boltzmann (MGLB) model is proposed to efficiently simulate natural convection over a wide range of Prandtl numbers. In this method, different grid sizes and time steps for heat transfer and fluid fl...
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2021-04-01
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doaj-0bd23ee98f104434a8dc326c8fdd24212021-04-08T23:04:33ZengMDPI AGFluids2311-55212021-04-01614814810.3390/fluids6040148A Multiple-Grid Lattice Boltzmann Method for Natural Convection under Low and High Prandtl NumbersSeyed Amin Nabavizadeh0Himel Barua1Mohsen Eshraghi2Sergio D. Felicelli3Auburn Science and Engineering Center, Department of Mechanical Engineering, The University of Akron, 101, Akron, OH 44325, USAAuburn Science and Engineering Center, Department of Mechanical Engineering, The University of Akron, 101, Akron, OH 44325, USADepartment of Mechanical Engineering, California State University, 5151 State University Drive, Los Angeles, CA 90032, USAAuburn Science and Engineering Center, Department of Mechanical Engineering, The University of Akron, 101, Akron, OH 44325, USAA multi-distribution lattice Boltzmann Bhatnagar–Gross–Krook (BGK) model with a multiple-grid lattice Boltzmann (MGLB) model is proposed to efficiently simulate natural convection over a wide range of Prandtl numbers. In this method, different grid sizes and time steps for heat transfer and fluid flow equations are chosen. The model is validated against natural convection in a square cavity, since extensive benchmark solutions are available for that problem. The proposed method can resolve the computational difficulty in simulating problems with very different time scales, in particular, when using extremely low or high Prandtl numbers. The technique can also enhance computational speed and stability while keeping the simplicity of the BGK method. Compared with the conventional lattice Boltzmann method, the simulation time can be reduced up to one-tenth of the time while maintaining the accuracy in an acceptable range. The proposed model can be extended to other lattice Boltzmann collision models and three-dimensional cases, making it a great candidate for large-scale simulations.https://www.mdpi.com/2311-5521/6/4/148lattice Boltzmannmultiple gridsmultiple time stepsnatural convection |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Seyed Amin Nabavizadeh Himel Barua Mohsen Eshraghi Sergio D. Felicelli |
spellingShingle |
Seyed Amin Nabavizadeh Himel Barua Mohsen Eshraghi Sergio D. Felicelli A Multiple-Grid Lattice Boltzmann Method for Natural Convection under Low and High Prandtl Numbers Fluids lattice Boltzmann multiple grids multiple time steps natural convection |
author_facet |
Seyed Amin Nabavizadeh Himel Barua Mohsen Eshraghi Sergio D. Felicelli |
author_sort |
Seyed Amin Nabavizadeh |
title |
A Multiple-Grid Lattice Boltzmann Method for Natural Convection under Low and High Prandtl Numbers |
title_short |
A Multiple-Grid Lattice Boltzmann Method for Natural Convection under Low and High Prandtl Numbers |
title_full |
A Multiple-Grid Lattice Boltzmann Method for Natural Convection under Low and High Prandtl Numbers |
title_fullStr |
A Multiple-Grid Lattice Boltzmann Method for Natural Convection under Low and High Prandtl Numbers |
title_full_unstemmed |
A Multiple-Grid Lattice Boltzmann Method for Natural Convection under Low and High Prandtl Numbers |
title_sort |
multiple-grid lattice boltzmann method for natural convection under low and high prandtl numbers |
publisher |
MDPI AG |
series |
Fluids |
issn |
2311-5521 |
publishDate |
2021-04-01 |
description |
A multi-distribution lattice Boltzmann Bhatnagar–Gross–Krook (BGK) model with a multiple-grid lattice Boltzmann (MGLB) model is proposed to efficiently simulate natural convection over a wide range of Prandtl numbers. In this method, different grid sizes and time steps for heat transfer and fluid flow equations are chosen. The model is validated against natural convection in a square cavity, since extensive benchmark solutions are available for that problem. The proposed method can resolve the computational difficulty in simulating problems with very different time scales, in particular, when using extremely low or high Prandtl numbers. The technique can also enhance computational speed and stability while keeping the simplicity of the BGK method. Compared with the conventional lattice Boltzmann method, the simulation time can be reduced up to one-tenth of the time while maintaining the accuracy in an acceptable range. The proposed model can be extended to other lattice Boltzmann collision models and three-dimensional cases, making it a great candidate for large-scale simulations. |
topic |
lattice Boltzmann multiple grids multiple time steps natural convection |
url |
https://www.mdpi.com/2311-5521/6/4/148 |
work_keys_str_mv |
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