A computational model of vegetation-influenced flow has been applied hypothetically to identify the variables most significant in determining resistance to flow through emergent reed-type vegetation, and to develop a simple procedure for estimating conveyance. A rational form of stage-discharge relationship is adopted and a formulation for the resistance coefficient in terms of the significant variables (stem spacing, stem diameter and stem drag coefficient) is derived through application of the computational model. Experimental results are used to relate the stem drag coefficient to stem Reynolds number and foliage state. The stage-discharge and resistance coefficient equations and the drag coefficient relationship are applied through a simple iterative procedure for routine conveyance estimation. The procedure is verified by comparison of predicted and measured discharges for flow through natural vegetation.
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September 2006
Research Article|
September 01 2006
Practical estimation of flow resistance through emergent vegetation Available to Purchase
A. A. Jordanova, MSc;
A. A. Jordanova, MSc
Research Fellow
School of Civil and Environmental Engineering, University of the Witwatersrand
South Africa
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C. S. James, PhD;
C. S. James, PhD
Professor
School of Civil and Environmental Engineering, University of the Witwatersrand
South Africa
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A. L. Birkhead, PhD
A. L. Birkhead, PhD
Streamflow Solutions
East London, South Africa
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Publisher: Emerald Publishing
Received:
October 18 2005
Accepted:
June 07 2006
Online ISSN: 1751-7729
Print ISSN: 1741-7589
© 2006 Thomas Telford Ltd
2006
Proceedings of the Institution of Civil Engineers - Water Management (2006) 159 (3): 173–181.
Article history
Received:
October 18 2005
Accepted:
June 07 2006
Citation
Jordanova AA, James CS, Birkhead AL (2006), "Practical estimation of flow resistance through emergent vegetation". Proceedings of the Institution of Civil Engineers - Water Management, Vol. 159 No. 3 pp. 173–181, doi: https://doi.org/10.1680/wama.2006.159.3.173
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