Performance of wall-modeled LES with boundary-layer-conforming grids for external aerodynamics
Adri\'an Lozano-Dur\'an, Sanjeeb T. Bose, Parviz Moin

TL;DR
This study evaluates the accuracy and computational efficiency of wall-modeled large-eddy simulations (WMLES) with boundary-layer-conforming grids for external aerodynamics, focusing on error scaling and grid strategies.
Contribution
It introduces a theoretical framework for error and cost scaling in WMLES and compares grid strategies, demonstrating improved accuracy in complex flow regions with BL-conforming grids.
Findings
C_p prediction errors are within 5% across studied grids.
WMLES is highly accurate in attached flow regions like the fuselage.
Boundary-layer-conforming grids improve accuracy near junctions and separated zones.
Abstract
We investigate the error scaling and computational cost of wall-modeled large-eddy simulation (WMLES) for external aerodynamic applications. The NASA Juncture Flow is used as representative of an aircraft with trailing-edge smooth-body separation. Two gridding strategies are examined: i) constant-size grid, in which the near-wall grid size has a constant value and ii) boundary-layer-conforming grid (BL-conforming grid), in which the grid size varies to accommodate the growth of the boundary-layer thickness. Our results are accompanied by a theoretical analysis of the cost and expected error scaling for the mean pressure coefficient () and mean velocity profiles. The prediction of is within less than error for all the grids studied, even when the boundary layers are marginally resolved. The high accuracy in the prediction of is attributed to the outer-layer nature…
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