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Improvements to RANS Modeling for Aeroheating Predictions on Blunt BodiesAccurate predictions of aeroheating are critical for designing thermal protection systems for planetary entry vehicles. For larger vehicles, turbulence in the boundary layer can substantially increase convective heating. This turbulence must be accurately modeled to ensure the thermal protection system is sufficient. The majority of hypersonic turbulence model development and validation focuses on boundary layers developing over flat-plates or sharp cones; these cases are substantially different than the boundary layer that develops over the heatshield of a blunt body traveling at hypersonic speeds. Planetary missions often use blunt body geometries, such as the 70-degree sphere-cone favored by Mars missions or the 45-degree sphere-cone planned for the upcoming DAVINCI mission. Due to smaller vehicle size and the lower velocities in the stagnation region, planetary entry vehicles have relatively low Reynolds numbers. Surface curvature and high enthalpy gradients create additional challenges. These difficulties must be addressed to obtain high accuracy needed for the ambitious planetary missions in the upcoming decade. This work focuses on both assessing and improving Reynolds-averaged Navier-Stokes (RANS) turbulence models for blunt-body geometries typical of planetary entry vehicles, with a focus on one-equation and two-equation formulations.
Document ID
20260005120
Acquisition Source
Langley Research Center
Document Type
Presentation
Authors
Clark Pederson
(Langley Research Center Hampton, United States)
Date Acquired
June 5, 2026
Subject Category
Fluid Mechanics and Thermodynamics
Meeting Information
Meeting: 23rd International Planetary Probe Workshop (IPPW 2026)
Location: Washington, DC
Country: US
Start Date: June 20, 2026
End Date: June 26, 2026
Sponsors: Johns Hopkins University Applied Physics Laboratory
Funding Number(s)
WBS: 730681.07.02.04.23
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
Technical Review
NASA Peer Committee
Keywords
Mars2020
DAVINCI
MSL
aeroheating
CFD
rans
SST
SA-Catris
Spalart-Allmaras
hypersonic
aerothermodynamics
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