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Drag, turbulence, and diffusion in flow through emergent vegetation

Water Resources Research · 1999 · Vol. 35(2) · pp. 479–489
Heidi Nepf

Abstract

Aquatic plants convert mean kinetic energy into turbulent kinetic energy at the scale of the plant stems and branches. This energy transfer, linked to wake generation, affects vegetative drag and turbulence intensity. Drawing on this physical link, a model is developed to describe the drag, turbulence and diffusion for flow through emergent vegetation which for the first time captures the relevant underlying physics, and covers the natural range of vegetation density and stem Reynolds' numbers. The model is supported by laboratory and field observations. In addition, this work extends the cylinder‐based model for vegetative resistance by including the dependence of the drag coefficient, C D , on the stem population density, and introduces the importance of mechanical diffusion in vegetated flows.

Hydrology and Sediment Transport ProcessesAeolian processes and effectsTree Root and Stability StudiesTurbulence kinetic energyTurbulenceDragDrag coefficientWakeMechanicsK-epsilon turbulence modelReynolds numberPhysicsMeteorology

Funding

  • National Science Foundation
Citations
1,294
FWCI
10.34
field-weighted impact
References
47
Percentile
99%
vs. same field & year
Citations per year
References
Compact Heat Exchangers
Journal of Applied Mechanics · 1960 · 2,843 citations
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Drag, turbulence, and diffusion in flow through emergent vegetation · Scinovex