Cascaded Lattice Boltzmann Method based on Central Moments for Axisymmetric Thermal Flows Including Swirling Effects
Farzaneh Hajabdollahi, Kannan N. Premnath, Samuel W. J. Welch

TL;DR
This paper introduces a novel cascaded lattice Boltzmann method based on central moments for simulating axisymmetric thermal flows with swirling effects, accurately capturing buoyancy-driven and rotational phenomena in cylindrical geometries.
Contribution
The paper develops a new axisymmetric cascaded LB scheme incorporating geometric source terms via operator splitting, improving simulation accuracy for complex thermal flows with swirling effects.
Findings
Accurately simulates buoyancy-driven thermal flows with swirling effects.
Shows good agreement with benchmark results for velocity and thermal fields.
Effectively captures heat transfer rates in cylindrical geometries.
Abstract
A cascaded lattice Boltzmann (LB) approach based on central moments and multiple relaxation times to simulate thermal convective flows, which are driven by buoyancy forces and/or swirling effects, in the cylindrical coordinate system with axial symmetry is presented. In this regard, the dynamics of the axial and radial momentum components along with the pressure are represented by means of the 2D Navier-Stokes equations with geometric mass and momentum source terms in the pseudo Cartesian form, while the evolutions of the azimuthal momentum and the temperature field are each modeled by an advection-diffusion type equation with appropriate local source terms. Based on these, cascaded LB schemes involving three distribution functions are formulated to solve for the fluid motion in the meridian plane using a D2Q9 lattice, and to solve for the azimuthal momentum and the temperature field…
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