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Benchmark of computational hydraulics models for open-channel flow with lateral cavities
Computational models in hydro-environmental engineering are diverse in their background formulation and span from two-dimensional depth-averaged shallow water models, to complex fully three-dimensional turbulence models resolving large-eddy simulation with surface capturing techniques, and to Lagrangian particle-based methods. This paper presents a first-of-its-kind comparison of six different computational hydraulics fluid dynamics models, namely Iber+, HO-SWM, GBVC, OpenFOAM (RANS), Hydro3D (LES) and DualSPHysics (SPH), in the prediction of mean velocities and free-surface dynamics in two benchmarks involving open-channel flows with symmetric lateral cavities. Results show that shallow-water models capture relatively well the main large-scale coherent structures of the in-cavity flow, with wider shear layers compared to three-dimensional models, and higher velocities in the main channel. Three-dimensional RANS, LES and SPH yield improved predictions of mean velocities compared with experimental data. Computational cost has been quantified for all models with a logarithmic growth when increasing model complexity. The transverse standing wave is captured by most models, with the shallow-water ones matching the theoretical value, while the three-dimensional models overestimate it slightly.
Benchmark of computational hydraulics models for open-channel flow with lateral cavities
Computational models in hydro-environmental engineering are diverse in their background formulation and span from two-dimensional depth-averaged shallow water models, to complex fully three-dimensional turbulence models resolving large-eddy simulation with surface capturing techniques, and to Lagrangian particle-based methods. This paper presents a first-of-its-kind comparison of six different computational hydraulics fluid dynamics models, namely Iber+, HO-SWM, GBVC, OpenFOAM (RANS), Hydro3D (LES) and DualSPHysics (SPH), in the prediction of mean velocities and free-surface dynamics in two benchmarks involving open-channel flows with symmetric lateral cavities. Results show that shallow-water models capture relatively well the main large-scale coherent structures of the in-cavity flow, with wider shear layers compared to three-dimensional models, and higher velocities in the main channel. Three-dimensional RANS, LES and SPH yield improved predictions of mean velocities compared with experimental data. Computational cost has been quantified for all models with a logarithmic growth when increasing model complexity. The transverse standing wave is captured by most models, with the shallow-water ones matching the theoretical value, while the three-dimensional models overestimate it slightly.
Benchmark of computational hydraulics models for open-channel flow with lateral cavities
Ouro, Pablo (Autor:in) / Cea, Luis (Autor:in) / Croquer, Sergio (Autor:in) / Dong, Wenhao (Autor:in) / Garcia-Feal, Orlando (Autor:in) / Navas-Montilla, Adrián (Autor:in) / Rogers, Benedict D. (Autor:in) / Uchida, Tatsuhiko (Autor:in) / Juez, Carmelo (Autor:in)
Journal of Hydraulic Research ; 62 ; 441-460
02.09.2024
20 pages
Aufsatz (Zeitschrift)
Elektronische Ressource
Englisch
Hydraulics of Open Channel Flow
British Library Online Contents | 1999
|UB Braunschweig | 2021
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|UB Braunschweig | 1985
|TIBKAT | 1985
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