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Hydraulic jump on rough beds: conceptual modeling and experimental validation
Author(s) -
Umut Türker,
Manousos Valyrakis
Publication year - 2020
Publication title -
water science and technology water supply
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.318
H-Index - 39
eISSN - 1607-0798
pISSN - 1606-9749
DOI - 10.2166/ws.2020.292
Subject(s) - froude number , hydraulic jump , supercritical flow , mechanics , reynolds number , shear stress , supercritical fluid , hydraulic roughness , shear velocity , surface finish , geotechnical engineering , mathematics , materials science , flow (mathematics) , geology , turbulence , thermodynamics , physics , composite material
The aim of this study was to assess and quantify the effect of channel bed roughness on hydraulic jumps based on sound physical theories. Assuming that integrated bed shear stress due to surface roughness changes linearly with supercritical velocity, a novel definition for the shear force coefficient and for roller length were obtained. Experimental findings and Pearson's correlation verify that the developed equations perform reasonably well and they prove that a linear correlation assumption between integrated bed shear stress and supercritical velocity is valid for a Froude number between 1.1 and 9.8. The shear force coefficient is defined in terms of the Reynolds coefficient and the supercritical flow velocity is directly related to the modified Reynolds number. A new analytical equation for roller length as a function of the modified Reynolds number was also developed and validated by using data from the experimental study.

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