Analysis of thermochemical non-equilibrium hypersonic flow over a waverider with uncertainty quantification
Jeremy Redding, Nick Plewacki, Himakar Ganti, Luis Bravo, Prashant, Khare

TL;DR
This study evaluates how uncertainties in turbulence modeling parameters affect hypersonic flow predictions over a waverider, using advanced UQ techniques to improve the reliability of RANS simulations in hypersonic aerothermal analysis.
Contribution
It introduces a polynomial chaos expansion framework to quantify and analyze the impact of turbulent Prandtl number uncertainty on hypersonic flow predictions.
Findings
Turbulent Prandtl number significantly influences heat flux and pressure predictions.
Sobol indices identify key parameters affecting uncertainty in aeroheating.
Uncertainty quantification enhances understanding of flow behavior in hypersonic RANS simulations.
Abstract
The objective of this work is to assess the impact of parameter uncertainty on hypersonic aerothermal surface heating predictions in Reynolds-Averaged Navier-Stokes (RANS) simulations using non-intrusive uncertainty quantification (UQ) techniques. RANS-based models are considered indispensable tools in computational fluid dynamics (CFD) analysis for the iterative and cost-effective exploration of innovative design concepts. However, these RANS models heavily rely on empirical constants that often require tuning due to the lack of physical knowledge and complexity of the problem, introducing significant uncertainties that hinder their predictive capabilities. Therefore, this research investigates the influence of the turbulent Prandtl number uncertainty, that governs the level of shear stress and heat flux present in the turbulent flow, on key output quantities of interest (QoIs). The…
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Taxonomy
TopicsGas Dynamics and Kinetic Theory · Combustion and flame dynamics · Advanced Thermodynamics and Statistical Mechanics
