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Non-equilibrium turbulent boundary layers in high reynolds number flow at incompressible conditions: effects of streamline curvature and three dimensionality

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posted on 2024-10-21, 12:43 authored by Todd Lowe, Alexander J Smits, Michel Visonneau, Ganbo Deng, Liuyang Ding, Emmanuel Guilmineau, Richard Sandberg, Ali Haghiri, Aldo Gargiulo, Julie Duetsch-Patel, Philippe Lavoie, Daniel MacGregor, Luca Savio, Yngve L Jenssen, Christopher Roy, Owen Williams, Serge Toxopeus, William Devenport
The physics and computational prediction of turbulent boundary layer flow over axisymmetric and three-dimensional bodies are examined. Three cases were considered for which extensive experimental results and companion Reynolds-averaged Navier Stokes (RANS) solutions were obtained and/or available in the open literature. These cases all have Reynolds numbers based upon the freestream velocity and body geometric scale on the order of (Formula presented.) to (Formula presented.), which is large for laboratory scales but small compared to the maximum scales observed for full-scale vehicles. Despite significant differences in approach flow fields and geometries for these three cases, some common themes emerged in the findings. All cases involved complications due to pressure gradients combined with streamwise curvature, and all exhibited regions of turbulence reduction due to accelerated flow. These complications led to discrepancies in computed results even in attached flow regions where it is often assumed that RANS models provide reliable predictions. The authors recommend further work on modelling approaches that can capture rapid distortion effects on turbulence transport that can be incorporated into industry-useful frameworks. Two cases involving laterally symmetric, three-dimensional wall-mounted hills with aft-body separation revealed that asymmetric mean flow fields are likely to result. This finding has been observed in experiments conducted in multiple facilities and in computations using multiple solvers and turbulence models. It is concluded that non-unique and asymmetric global flow solutions are fundamental to flow cases with lateral geometric symmetry involving turbulent boundary layer separation. Further work is also needed to accurately predict low-frequency unsteadiness due to geometries that produce non-unique mean flow fields. For such flows, it remains to be definitively determined whether experimentally observed modes of the mean flow are equivalent, or nearly equivalent, to asymmetric mean flow solutions obtained using RANS approaches.

Funding

ONR under Grant N00014-17-1-2309

National Aeronautics and Space Administration (NASA) (Grant Nos. 80NSSC18M0146 and 80NSSC22M0061)

ENCI (Grant-A0082A00129, Grant-A0102A00129)

ustralian Research Council and U.S. Office of Naval Research (ONR) under NICOP Grant N62909-20-1-2046

History

Citation

Lowe, T., Smits, A. J., Visonneau, M., Deng, G., Ding, L., Guilmineau, E., … Devenport, W. (2024). Non-equilibrium turbulent boundary layers in high reynolds number flow at incompressible conditions: effects of streamline curvature and three dimensionality. Journal of Turbulence, 25(10–11), 386–398.

Author affiliation

College of Science & Engineering Engineering

Version

  • VoR (Version of Record)

Published in

Journal of Turbulence

Volume

25

Issue

10-11

Pagination

386 - 398

Publisher

Informa UK Limited

issn

1468-5248

eissn

1468-5248

Acceptance date

2024-08-14

Copyright date

2024

Available date

2024-10-21

Language

en

Deposited by

Mr Ali Haghiri

Deposit date

2024-10-17

Rights Retention Statement

  • No

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