Impact of Structure-Preserving Discretizations on Compressible Wall-Bounded Turbulence of Thermally Perfect Gases
Alessandro Aiello, Andrea Palumbo, Carlo De Michele, Gennaro Coppola

TL;DR
This paper investigates how structure-preserving discretizations influence the accuracy and robustness of simulating high-speed compressible turbulence in wall-bounded flows of thermally perfect gases, emphasizing thermodynamic consistency.
Contribution
It systematically assesses entropy-conservative discretizations and their impact on turbulence simulation accuracy at high Mach numbers, highlighting the importance of thermodynamic consistency.
Findings
Discretization differences affect turbulence statistics at high Mach numbers.
Entropy consistency influences Reynolds stresses and mean flow properties.
Thermodynamic-dynamic coupling is crucial for reliable high-speed turbulence simulations.
Abstract
Direct numerical simulations of compressible turbulent channel flow at supersonic and hypersonic Mach numbers are performed using a thermally perfect gas model for CO. The objective is to assess the role of structure-preserving discretizations of the convective terms in high-enthalpy regimes, with particular emphasis on entropy conservation, kinetic-energy preservation, and consistency with the thermodynamic closure. The comparative analysis of various formulations examines their impact on robustness, thermodynamic fluctuations, and turbulence statistics across a range of Mach numbers. Differences among formulations are found to originate primarily in the treatment of thermodynamic variables and progressively influence the dynamical fields as compressibility effects intensify. In particular, the coupling between entropy consistency and pressure discretization is shown to affect…
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Taxonomy
TopicsComputational Fluid Dynamics and Aerodynamics · Gas Dynamics and Kinetic Theory · Fluid Dynamics and Turbulent Flows
