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Articles

Three-dimensional unsteady RANS model for hydraulic jumps

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Pages 357-364 | Received 28 Apr 2018, Accepted 14 Nov 2018, Published online: 11 Dec 2018
 

ABSTRACT

Hydraulic jump is a classical problem cause due to transition of flow from supercritical state to subcritical state. In this study, application of three-dimensional unsteady Reynolds-averaged Navier stokes model for hydraulic jump is proposed. The basic equations of kε model and Reynolds equation are solved for three-dimensional flow field of hydraulic jump. Both the standard and non-linear form of kε model is considered in the simulation. The computed results are compared with the previous experimental and theoretical results. The comparisons of water surface profile showed that, more local energy dissipation is observed for the non-linear kε model. However, the vertical distributions of stream-wise velocities within the jump, for both the models reproduced the close agreement with the theoretical and experimental data. The pronounced effect of the non-linearity is observed in stream-wise turbulence intensity distribution, where non-linear kε model produced reasonable agreement with the previous theoretical data as compared to the standard kε model. Apart from the turbulence intensity, the non-linear kε model also reproduced the distribution of turbulent energy dissipation rate, within hydraulic jump effectively. Finally, it is concluded that the present study could reproduce the turbulent characteristics of hydraulic jump considerably in view of the non-linear kε model.

Disclosure statement

No potential conflict of interest was reported by the authors.

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