- Abbaszadeh, H., Daneshfaraz, R., & Norouzi, R. (2023). Experimental investigation of hydraulic jump parameters in sill application mode with various synthesis. Journal of Hydraulic Structures, 9(1), 18-42.
- Abbaszadeh, H., Norouzi, R., Sume, V., Kuriqi, A., Daneshfaraz, R., & Abraham, J. (2023). Sill role effect on the flow characteristics (experimental and regression model analytical). Fluids, 8(8), 235.
- Abbaszadeh, H., Daneshfaraz,R., Sume,V., & Abraham, J. (2024). Experimental investigation and application of soft computing models for predicting flow energy loss in arc-shaped constrictions. AQUA - Water Infrastructure, Ecosystems and Society, 73 (3), 637-661.
- Ansari, M., & Esmailpour, M. (2018). Comparison of the VOF and the two-fluid models for the numerical simulation of aeration and non aeration stepped spillway. Modares Mechanical Engineering, 17 (12), 255-265. (In Persian).
- Bai, R., Wang, H., Tang, R., Liu, S., & Xu, W. (2021). Roller Characteristics of Preaerated High-Froude-Number Hydraulic Jumps. Journal of Hydraulic Engineering, 147(4), 040210081-0402100819
- Bayon-Barrachina, A., Lopez, J., & Petra A. (2015). Numerical analysis of hydraulic jumps using Openfoam. Journal of Hydroinformatics, 17(4), 662-678.
- Bayon-Barrachina, A., Valero, D., García-bartual, R., & Jos, F. (2016). Performance assessment of Openfoam and Flow-3d in the numerical modeling of a low Reynolds number hydraulic jump. Environmental Modelling & Software, 80, 322-335
- Celik, I., Ghia, U., Roache, P., Freitas, C., Coleman, H., & Raad, P. (2008). Procedure for estimation and reporting of uncertainty due to discretization in CFD applications. Journal of Fluids Engineering, 130(7), 0780011-0780014.
- Chanson, H. (1995). Air entrainment in two-dimensional turbulent shear flows with partially developed inflow conditions. Journal of Multiphase Flow, 21( 6), 1107-1121.
- Chanson, H. (2004a). The hydraulics of open channel flow: an introduction. Oxford, UK, 2nd edition, 630 pages.
- Chanson, H., & Brattberg, T. (2000). Experimental study of the air-water shear flow in a hydraulic jump. International Journal of Multiphase Flow, 26( 4), 583-607.
- Daneshfaraz, R., Norouzi, R., Abbaszadeh, H., & Azamathulla, H. M. (2022). Theoretical and experimental analysis of applicability of sill with different widths on the gate discharge coefficients. Water Supply, 22(10), 7767-7781.
- Daneshfaraz, R., Norouzi, R., Abbaszadeh, H., Kuriqi, A., & Di Francesco, S. (2022). Influence of Sill on the Hydraulic Regime in Sluice Gates: An Experimental and Numerical Analysis. Fluids, 7(7), 244.
- Estrella, J., Wüthrich, D., & Chanson, H. ( 2022). Two-phase air-water flows in hydraulic jumps at low Froude number: similarity, scale effects and the need for field observations. Experimental Thermal and Fluid Science, 130, 110486.
- Felder, S., & Chanson, H. (2016). An experimental study of air–water flows in hydraulic jumps with channel bed roughness: Research Report. University of New South Wales, Sydney, Australia, WRL WRL 259.
- Felder, S., Montano, L., Cui, H., Peirson, W., & Kramer, M. (2021). Effect of inflow conditions on the free-surface properties of hydraulic jumps. Journal of Hydraulic Research, 59, 1004-1017.
- Gou, W., & Shen, Zh. (2024). Numerical study of transition hydraulic jumps in different types of stilling basins using lattice Boltzmann methods. Physics of Fluids , 36 (11), 115120.
- Gualtieri, C., & Chanson, H. (2007). Experimental analysis of Froude number effect on air entrainment in the hydraulic jump. Environ Fluid Mech, 7, 217-238.
- Gupta, H. V., Kling, H., Yilmaz, K. K., & Martinez, G. F. (2009). Decomposition of the mean squared error and NSE performance criteria: Implications for improving hydrological modelling. Journal of hydrology, 377(1-2), 80-91.
- Hager, W. H., Bremen, R., & Kawagoshi, N. (1990). Classical hydraulic jump: length of roller. Journal of Hydraulic Research, 28 ( 5), 591-608.
- Hager, W. H. (1992). Energy dissipators and hydraulic jump. Netherlands: Kluwer Academic Publishers. Vol. 8
- Hassanzadeh, Y., Abbaszadeh, H., Abedi, A. & Abraham, J. (2024). Numerical simulation of the effect of downstream material on scouring-sediment profile of combined spillway-gate. AQUA-Water Infrastructure, Ecosystems and Society 1 December, 73 (12), 2322-2343.
- Hosseini, S. M., & Abrishami, J. (2010). Open channel hydraulics. Mashhad, Imam Reza University Press. (In Persian).
- Mukha, T., Almeland, S.K., & Bensow, R.E. (2022). Large-eddy simulation of a classical hydraulic jump: influence of modelling parameters on the predictive accuracy. Fluids, 7(3)-101.
- Murzyn, F., & Chanson H. (2009). Experimental investigation of bubbly flow and turbulence in hydraulic jumps. Environ Fluid Mech, 9, 143-159.
- Nilsson, H˚. (2017). A description of isoAdvector- A numerical method for improved surface sharpness in two-phase flows, in Proceedings of CFD with opensource software: Course notes. http://dx.doi.org/10.17196.
- Pérez, J. F. (2020). Numerical and physical modelling approaches to the study of the hydraulic jump and its application in large-dam stilling basins. Doctoral dissertation, Politécnica Valencia University, Spain.
- Pérez, J. F., Bayón, A., García-Bartual R., López-Jiménez P. A., & José Vallés-Morán F. (2020). Characterization of structural properties in high Reynolds hydraulic jump based on CFD and physical modeling approaches. Journal of Hydraulic Engineering, 146( 12)-04020079-1-13.
- Pérez, J.F., García-Bartual, R., & López-Jiménez, P.A. (2023). Numerical modeling of hydraulic jumps at negative steps to improve energy dissipation in stilling basins. Applied Water Science, 13, 203.
- Samkhaniani, N. (2023). Openfoam 9 training via problem-solving. (In Persian).
- Sayad Beyranvand, F., Heidarpour, M., & Salehi, S. (2024). Hydraulic characteristics of the hydraulic jump on the stepped, reverse slope and roughness. Modeling Earth Systems and Environment, 1-19.
- Stojnic, I. (2020). Stilling basin performance downstream of stepped spillways. Doctoral dissertation, EPFL University, Switzerland.
- Tang, R., Bai, R., & Wang, H. (2021) . A Comparative Study of Pre-Aeration Effects on Hydraulic Jump Air–Water Flow Properties at High Froude Numbers. Environmental Fluid Mechanics, 21, 1333-1355.
- Viti, N., Valero, D., & Gualtieri, C. (2019). Numerical Simulation of Hydraulic Jumps. Part 2: Recent Results and Future Outlook. Water, 11(1), 28.
- Wang, H. (2014). Turbulence and air entrainment in hydraulic jumps. Doctoral dissertation, The University of Queensland, Australia.
- Wang, H., Felder, S., & Chanson, H. (2014). An experimental study of turbulent two-phase flow in hydraulic jumps and application of a triple decomposition technique. Exp Fluids, 55, 1775.
- Wang, H., & Chanson, H. (2013). Two-phase flow properties and free-surface deformations in hydraulic jumps. 8th International Conference on Multiphase Flow (ICMF), 26-31 May, Jeju, Korea, 1-9
- Wang, H., Murzyn, F., & Chanson, H. (2014). Pressure, turbulence and two-phase flow measurements in hydraulic jumps. Report CH95/14. School of Civil Engineering, The University of Queensland, 75-78.
- Wang, H., & Chanson, H. (2015a). Air entrainment and turbulent fluctuations in hydraulic jumps. Urban Water Journal, 12(6), 502-518.
- Wang, H., Murzyn, F., & Chanson, H. (2015). Interaction between free-surface, two-phase flow and total pressure in hydraulic jump. Experimental Thermal and Fluid Science, 64, 30-41.
- Wang, H., & Chanson, H. (2018). Estimate of void fraction and air entrainment flux in hydraulic jump using Froude number. Canadian Journal of Civil Engineering, 45(2), 105-116.
- Witt, A.M. (2014). Analytical and numerical investigation of an air entraining hydraulic jump. Doctoral dissertation, University of Minnesota, USA.
- Wüthrich, D., Shi, R., Wang, H., & Chanson, H. (2020). Three-dimensional air-water flow properties of a hydraulic jump with low Froude numbers and relatively high Reynolds numbers. 8th IAHR International Symposium on Hydraulic Structures ISHS2020, 12-15 May, Santiago, Chile, Brisbane, QLD, Australia: The University of Queensland.
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