Journal article
Coherent Structures In Open-Channel Flows Over a Fixed Dune
Journal of fluids engineering, Vol.127(5), pp.858-864
09/01/2005
DOI: 10.1115/1.1988345
Abstract
Turbulent open-channel flow over a two-dimensional laboratory-scale dune is studied using large eddy simulation. Free surface motion is simulated using level set method. Two subgrid scale models, namely, dynamic Smagorinsky model and dynamic two-parameter model, are employed for assessing model effects on the free surface flow. The present numerical predictions of mean flow field and turbulence statistics are in good agreement with experimental data. The mean flow can be divided into two zones, an inner zone where turbulence strongly depends on the dune bed geometry and an outer layer free from the direct influence of the bed geometry. Streaky structures are observed in the wall layer after flow reattachment. Quadrant two events are found to prevail in near-wall and near-surface motions, indicating the predominance of turbulence ejections in open-channel flows. Large-scale coherent structures are produced behind the dune crest by a strong shear layer riding over the recirculation zone. These quasistreamwise tubelike vortical structures are transported downstream with the mean flow and most are destructed before arriving at the next crest. Free surface deformation is visualized, demonstrating complex patterns of upwelling and downdraft.
Details
- Title: Subtitle
- Coherent Structures In Open-Channel Flows Over a Fixed Dune
- Creators
- Wusi Yue - Department of Geography and Environmental Engineering, The Johns Hopkins University, Baltimore, Maryland 21218Ching-Long Lin - Department of Mechanical and Industrial Engineering, and IIHR-Hydroscience and Engineering, The University of Iowa, Iowa City, Iowa 52242Virendra C Patel - Department of Mechanical and Industrial Engineering, and IIHR-Hydroscience and Engineering, The University of Iowa, Iowa City, Iowa 52242
- Resource Type
- Journal article
- Publication Details
- Journal of fluids engineering, Vol.127(5), pp.858-864
- Publisher
- ASME
- DOI
- 10.1115/1.1988345
- ISSN
- 0098-2202
- eISSN
- 1528-901X
- Comment
- Symposium on Advancements and Applications of LES, ASME FED 2004 Summer Meeting Joint with HTD, Charlotte, North Carolina, 07/11/2004 - 07/15/2004
- Language
- English
- Date published
- 09/01/2005
- Academic Unit
- Roy J. Carver Department of Biomedical Engineering; Mechanical Engineering; Radiology
- Record Identifier
- 9984064106902771
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