DEPTH-AVERAGED MATHEMATICAL-MODEL FOR NEAR-FIELD OF SIDE DISCHARGES INTO OPEN-CHANNEL FLOW

被引:108
作者
MCGUIRK, JJ
RODI, W
机构
[1] Sonderforschungsbereich 80, University of Karlsruhe
关键词
D O I
10.1017/S002211207800138X
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
A two-dimensional mathematical model is described for the calculation of the depth-averaged velocity and temperature or concentration distribution in open-channel flows, an essential feature of the model being its ability to handle recirculation zones. The model employs the depth-averaged continuity, momentum and temperature/concentration equations, which are solved by an efficient finite-difference procedure. The ‘rigid lid’ approximation is used to treat the free surface. The turbulent stresses and heat or concentration fluxes are determined from a depth-averaged version of the so-called k, ∊ turbulence model which characterizes the local state of turbulence by the turbulence kinetic energy k and the rate of its dissipation ∊. Differential transport equations are solved for k and ∊ to determine these two quantities. The bottom shear stress and turbulence production are accounted for by source/sink terms in the relevant equations. The model is applied to the problem of a side discharge into open-channel flow, where a recirculation zone develops downstream of the discharge. Predicted size of the recirculation zone, jet trajectories, dilution, and isotherms are compared with experiments for a wide range of discharge to channel velocity ratios; the agreement is generally good. An assessment of the numerical accuracy shows that the predictions are not influenced significantly by numerical diffusion. © 1978, Cambridge University Press. All rights reserved.
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页码:761 / 781
页数:21
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