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Dec 1, 2005

Analyzing Turbulence Intensity in Gravel Bed Channels

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Publication: Journal of Hydraulic Engineering
Volume 131, Issue 12

Abstract

In this paper, the results of an experimental investigation of the turbulence intensity in gravel bed channels are described. The runs were carried out by measuring, with an acoustic Doppler velocimeter, the turbulence intensity profile along six verticals of a given cross section in a laboratory flume. The analysis of the measured intensity distributions has shown the existence of two different regions, above and below the tops of the roughness elements, in which different intensity profiles occur. Furthermore, the measured profiles have shown a maximum of the turbulence intensity that decreases for increasing values of the roughness height, confirming that the turbulence damping efficiency increases when the roughness elements protrude inside the flow. The applicability of Nezu’s relationship (derived for a hydraulically smooth bed) for the experimental intensity profiles above the roughness elements is positively tested. Finally a new intensity distribution for a rough bed, applicable to the whole water depth, is proposed. In this profile, two coefficients having a known physical meaning (the maximum turbulence intensity and the depth at which this maximum is located) appear.

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Published In

Go to Journal of Hydraulic Engineering
Journal of Hydraulic Engineering
Volume 131Issue 12December 2005
Pages: 1050 - 1061

History

Received: Mar 12, 2003
Accepted: Feb 28, 2005
Published online: Dec 1, 2005
Published in print: Dec 2005

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Authors

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Francesco Giuseppe Carollo
Engineer, Dip. Ingegneria e Tecnologie Agro-Forestali, Sezione Idraulica, Facoltà di Agraria, Univ. di Palermo, Viale delle Scienze, 90128 Palermo, Italy.
Full Professor, Dip. Ingegneria e Tecnologie Agro-Forestali, Sezione Idraulica, Facoltà di Agraria, Univ. di Palermo, Viale delle Scienze, 90128 Palermo, Italy (corresponding author). E-mail: [email protected]
Donatella Termini
Assistant Professor, Dip. Idraulica ed Applicazioni Ambientali, Facoltà di Ingegneria, Univ. di Palermo, Viale delle Scienze, 90128 Palermo, Italy.

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