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Journal ArticleDOI

Theory of the lattice Boltzmann method: acoustic and thermal properties in two and three dimensions.

Pierre Lallemand, +1 more
- 23 Sep 2003 - 
- Vol. 68, Iss: 3, pp 036706-036706
TLDR
It is shown that the HTLBE scheme is far superior to the existing thermal LBE schemes in terms of numerical stability, flexibility, and possible generalization for complex fluids.
Abstract
The focus of the present work is to provide an analysis for the acoustic and thermal properties of the energy-conserving lattice Boltzmann models, and a solution to the numerical defects and instability associated with these models in two and three dimensions. We discover that a spurious algebraic coupling between the shear and energy modes of the linearized evolution operator is a defect universal to the energy-conserving Boltzmann models in two and three dimensions. This spurious mode coupling is highly anisotropic and may occur at small values of wave number k along certain directions, and it is a direct consequence of the following key features of the lattice Boltzmann equation: (1) its simple spatial-temporal dynamics, (2) the linearity of the relaxation modeling for collision operator, and (3) the energy-conservation constraint. To eliminate the spurious mode coupling, we propose a hybrid thermal lattice Boltzmann equation (HTLBE) in which the mass and momentum conservation equations are solved by using the multiple-relaxation-time model due to d'Humieres, whereas the diffusion-advection equation for the temperature is solved separately by using finite-difference technique (or other means). Through the Chapman-Enskog analysis we show that the hydrodynamic equations derived from the proposed HTLBE model include the equivalent effect of gamma=C(P)/C(V) in both the speed and attenuation of sound. Appropriate coupling between the energy and velocity field is introduced to attain correct acoustics in the model. The numerical stability of the HTLBE scheme is analyzed by solving the dispersion equation of the linearized collision operator. We find that the numerical stability of the lattice Boltzmann scheme improves drastically once the spurious mode coupling is removed. It is shown that the HTLBE scheme is far superior to the existing thermal LBE schemes in terms of numerical stability, flexibility, and possible generalization for complex fluids. We also present the simulation results of the convective flow in a rectangular cavity with different temperatures on two opposite vertical walls and under the influence of gravity. Our numerical results agree well with the pseudospectral result.

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Citations
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Lattice Boltzmann methods for direct numerical simulation of turbulent fluid flows

Vanja Zecevic
TL;DR: Cheok et al. as discussed by the authors used lattice Boltzmann (lb) methods for simulation of turbulent fluid flows motivated by their high computational throughput and amenability to highly parallel platforms such as graphics processing units (gpus).

Numerical Heat Transfer, Part B: Fundamentals: An International Journal of Computation and Methodology

TL;DR: Numerical results show that the MG method combined with the high-order compact difference scheme is more accurate and efficient than the MG with the standard central difference scheme for solving anisotropy elliptic problems.
Dissertation

Simulations of the Karlsruhe Dynamo Using the Lattice-Boltzmann Method

Aveek Sarkar
TL;DR: In this paper, a hybrid method was used to simulate the dynamo effect in the Karlsruhe Dynamo experiment, where the Navier-Stokes equation is solved with a Lattic e-Boltzmann method and the Induction equation is treated with a spectral method.
Journal ArticleDOI

A kinetic theory based thermal lattice Boltzmann equation model

TL;DR: In this paper, a thermal lattice Boltzmann equation (LBE) model within the framework of double distribution function (DDF) method is proposed from the continuous DLB equation, which has a clear physical significance.
Journal ArticleDOI

Active control of particle position by boundary slip in inertial microfluidics

TL;DR: In this paper , a scheme to actively control particulate position in inertial microfluidics is presented, where the unilateral slip boundary is applied to regulate the velocity distribution of the flow field in the microchannel, thus the vertical equilibrium position of the particle can be changed with the slip length.
References
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Book

Molecular theory of gases and liquids

TL;DR: Molecular theory of gases and liquids as mentioned in this paper, molecular theory of gas and liquids, Molecular theory of liquid and gas, molecular theories of gases, and liquid theory of liquids, مرکز
Book

Fundamental mechanics of fluids

TL;DR: In this article, Stokes' potential flow is used to describe the potential potential of a fluid flow in the presence of a single source and a single sink, and the potential can be expressed as a function of the velocity potential of the potential flow.
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