XLES Part II: From Extended Large Eddy Simulation to ODTLES
Christoph Glawe, Heiko Schmidt, Alan R. Kerstein, Rupert Klein

TL;DR
This paper introduces ODTLES, a novel turbulence modeling approach combining ODT with XLES filtering, enabling high-resolution simulations of turbulent flows at high Reynolds numbers with reduced computational cost.
Contribution
It presents a new modeling strategy that integrates ODT into the XLES framework, extending turbulence simulation capabilities for complex, high-Reynolds-number flows.
Findings
Successfully simulated turbulent channel and duct flows up to Re_tau=10000.
Demonstrated ODTLES captures microstructures beyond traditional models.
Validated the model's ability to handle highly turbulent flows.
Abstract
In turbulence research and flow applications, turbulence models like RaNS (Reynolds averaged Navier-Stokes) models and LES (Large Eddy Simulation) are used. Both models filter the governing flow equations. Thus a scale separation approach is introduced for modeling purposes with the large scales simulated using a numerical scheme while smaller scales are assumed to be less important and might be modeled more or less easily. Unfortunately small scales are frequently of big importance, e.g. in reactive flows, wall bounded flows, or flows with significant Prandtl or Schmidt number effects. Recent alternatives to these standard models are the class of models based on the one-dimensional turbulence (ODT) idea, like ODTLES. The ability of ODT to capture highly turbulent flows (recently up to ) allows ODTLES to realize 3D resolutions basically independent of the…
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