Symmetrized Operator Split Schemes for Force and Source Modeling in Cascaded Lattice Boltzmann Methods for Flow and Scalar Transport
Farzaneh Hajabdollahi, Kannan N. Premnath

TL;DR
This paper introduces symmetrized operator split schemes for cascaded lattice Boltzmann methods, improving the accuracy and efficiency of modeling forces and sources in fluid flow and scalar transport problems.
Contribution
It develops second-order accurate, symmetrized operator split schemes for force and source modeling in cascaded LB methods, simplifying implementation and enhancing accuracy.
Findings
Schemes achieve second-order convergence in benchmark tests.
Methods effectively incorporate forces and sources without additional transformations.
Numerical results confirm accuracy and efficiency improvements.
Abstract
Operator split forcing schemes exploiting a symmetrization principle, i.e. Strang splitting, for cascaded lattice Boltzmann (LB) methods in two- and three-dimensions for fluid flows with impressed local forces are presented. Analogous scheme for the passive scalar transport represented by a convection-diffusion equation with a source term in a novel cascaded LB formulation is also derived. They are based on symmetric applications of the split solutions of the changes on the scalar field/fluid momentum due to the sources/forces over half time steps before and after the collision step. The latter step is effectively represented in terms of the post-collision change of moments at zeroth and first orders, respectively, to represent the effect of the sources on the scalar transport and forces on the fluid flow. Such symmetrized operator split cascaded LB schemes are consistent with the…
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