M. Younus et Mh. Chaudhry, A DEPTH-AVERAGED (K)OVER-CAP-(EPSILON)OVER-CAP TURBULENCE MODEL FOR THE COMPUTATION OF FREE-SURFACE FLOW, Journal of Hydraulic Research, 32(3), 1994, pp. 415-444
A numerical model to compute the free-surface flow by solving the dept
h-averaged, two-dimensional, unsteady flow equations is presented. The
turbulence stresses are closed by using a depth-averaged k-epsilon mo
del. However, viscous stresses and momentum dispersion stresses are ne
glected. The governing equations are first transformed into a general
curvilinear coordinate system and then solved by the Beam and Warming
Alternating Direction Implicit (ADI) scheme. To verify the model and i
llustrate its applications in hydraulic engineering, it is used to ana
lyze (i) the developed uniform flow in a straight rectangular channel,
(ii) hydraulic jump in a diverging channel, (iii) supercritical flow
in a diverging channel, and (iv) circular hydraulic jump. The computed
results are compared with the available measured data. The comparison
of results with and without effective stresses shows that in many cas
es the effective stresses do not significantly affect the solution. Ho
wever, it was observed that the computation of supercritical flow in a
diverging channel and the simulation of radial hydraulic jump was imp
roved when the depth-averaged k-epsilon model was applied.