PDF modeling of turbulent flows on unstructured grids
J. Bakosi

TL;DR
This paper presents a novel PDF-based turbulence modeling approach using unstructured grids and finite element methods, enabling accurate simulation of complex turbulent flows without closure assumptions.
Contribution
It introduces a stand-alone, efficient algorithm for PDF transport in complex geometries using unstructured grids and advanced numerical techniques, improving turbulence simulation accuracy.
Findings
Efficient solution algorithms for complex geometries.
Parallelized solver optimized for multi-core architectures.
Demonstrated capability for high-Reynolds-number turbulent flow simulation.
Abstract
In probability density function (PDF) methods of turbulent flows, the joint PDF of several flow variables is computed by numerically integrating a system of stochastic differential equations for Lagrangian particles. A mathematically exact treatment of advection, viscous effects and arbitrarily complex chemical reactions is possible; these processes are treated without closure assumptions. A set of algorithms is proposed to provide an efficient solution of the PDF transport equation modeling the joint PDF of turbulent velocity, frequency and concentration of a passive scalar in geometrically complex configurations. An unstructured Eulerian grid is employed to extract Eulerian statistics, to solve for quantities represented at fixed locations of the domain and to track particles. All three aspects regarding the grid make use of the finite element method. Compared to hybrid methods, the…
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