Application of Several Depth-Averaged Turbulence Models to Simulate Flow in Vertical Slot Fishways |
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Authors: | L. Cea L. Pena J. Puertas M. E. Vázquez-Cendón E. Pe?a |
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Affiliation: | 1Associate Professor, Civil Engineering School, Univ. of A Coru?a, Campus de Elvi?a s/n, 15071, A Coru?a, Spain. E-mail: lcea@udc.es 2Associate Professor, Civil Engineering School, Univ. of A Coru?a, Campus de Elvi?a s/n, 15071, A Coru?a, Spain. E-mail: lpena@udc.es 3Professor, Civil Engineering School, Univ. of A Coru?a, Campus de Elvi?a s/n, 15071, A Coru?a, Spain. E-mail: jpuertas@udc.es 4Associate Professor, Applied Mathematics Dept., Univ. of Santiago de Compostela, Campus Sur s/n, Santiago de Compostela, Spain. E-mail: maelenav@usc.es 5Associate Professor, Civil Engineering School, Univ. of A Coru?a, Campus de Elvi?a s/n, 15071, A Coru?a, Spain. E-mail: epena@udc.es
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Abstract: | Vertical slot fishways are hydraulic structures which allow the upstream migration of fish through obstructions in rivers. The velocity, water depth, and turbulence fields are of great importance in order to allow the fish swimming through the fishway, and therefore must be considered for design purposes. The aim of this paper is to assess the possibility of using a two-dimensional shallow water model coupled with a suitable turbulence model to compute the flow pattern and turbulence field in vertical slot fishways. Three depth-averaged turbulence models of different complexity are used in the numerical simulations: a mixing length model, a k?ε model, and an algebraic stress model. The numerical results for the velocity, water depth, turbulent kinetic energy, and Reynolds stresses are compared with comprehensive experimental data for three different discharges covering the usual working conditions of vertical slot fishways. The agreement between experimental and numerical data is very satisfactory. The results show the importance of the turbulence model in the numerical simulations, and can be considered as a useful complementary tool for practical design purposes. |
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Keywords: | Turbulent flow Fish habitats Hydraulic structures Simulation models |
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