Variable-property and intrinsic compressibility corrections for turbulence models using near-wall scaling theories

Journal Article (2025)
Author(s)

A.M. Hasan (TU Delft - Energy Technology)

Alex José Elias (Engineering Simulation and Scientific Software (ESSS))

Florian Menter (Ansys Inc., Germany)

R Pecnik (TU Delft - Energy Technology)

Research Group
Energy Technology
DOI related publication
https://doi.org/10.1017/jfm.2025.10572
More Info
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Publication Year
2025
Language
English
Research Group
Energy Technology
Volume number
1019
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Abstract

We introduce a novel approach to derive compressibility corrections for Reynolds-averaged Navier–Stokes (RANS) models. Using this approach, we derive variable-property corrections for wall-bounded flows that take into account the distinct scaling characteristics of the inner and outer layers, extending the earlier work of Otero Rodriguez et al. (Intl J. Heat Fluid Flow, 73, 2018, 114–123). We also propose modifying the eddy viscosity to account for changes in the near-wall damping of turbulence due to intrinsic compressibility effects. The resulting corrections are consistent with our recently proposed velocity transformation (Hasan et al. Phys. Rev. Fluids, 8, 2023, L112601) in the inner layer and the Van Driest velocity transformation in the outer layer. Furthermore, we address some important aspects related to the modelling of the energy equation, primarily focusing on the turbulent Prandtl number and the modelling of the source terms. Compared with the existing state-of-the-art compressibility corrections, the present corrections, combined with accurate modelling of the energy equation, lead to a significant improvement in the results for a wide range of turbulent boundary layers and channel flows. The proposed corrections have the potential to enhance modelling across a range of applications, involving low-speed flows with strong heat transfer, fluids at supercritical pressures, and supersonic and hypersonic flows.