Brevis, W., García-Villalba, M. & Niño, Y. (2014). Experimental and large eddy simulation study of the flow developed by a sequence of lateral obstacles.
Environmental Fluid Mechanics.
14, 873–893.
De Marchis, M. & Napoli, E. (2008). The effect of geometrical parameters on the discharge capacity of meandering compound channels.
Advances in Water Resources.
31, 1662–1673.
Ismail, Z. (2007). A study of overbank flows in non-vegetated and vegetated floodplains in compound meandering channels. Dissertation for the Doctoral Degree. Loughborough: University of Loughborough.
Knight, D.W. & Demetriou, J.D. (1983). Floodplain and main channel flow interaction. Journal of Hydraulic Engineering. 109(8), 1073–1092.
Kundu, S., Chattopadhyay, T. & Pu, J.H. (2022). Analytical models of mean secondary velocities and stream functions under different bed-roughness configurations in wide open-channel turbulent flows.
Environmental Fluid Mechanics.
22(1), 159-188.
Liu, C., Wright, N., Liu, X. & Yang. K. (2014). An analytical model for lateral depth-averaged velocity distributions along a meander in curved compound channels.
Advances in Water Resources.
74, 26-43.
Liu, C., Shan, Y., Liu, X., Yang, K. & Liao, H. (2016). The effect of floodplain grass on the flow characteristics of meandering compound channels. Journal of Hydrology. 542, 1-17.
Mahato, R.K., Dey, S. & Ali, S.Z. (2022). Planform evolution of a sinuous channel triggered by curvature and autogenic width oscillations due to generic grain transport. Physics of Fluids. 34(4), 044110, https://doi.org/10.1063/5.0087971.
Moncho-Esteve, I., Palau-Salvador, G., García-Villalba, M., Muto, Y. & Shiono, K. (2018). A numerical study of the complex flow structure in a compound meandering channel.
Advances in Water Resources,
116, 95–116.
Naghavi, M., Mohammadi, M.A. & Mahtabi, G. (2019). Flow Velocity in Meandering Compound Channel under the Influence of Sinusoidal Change. Modares Civil Engineering journal, 19(5), 208-219.
Naghavi, M., Mohammadi, M. & Mahtabi, G. (2020). Turbulence Intensity and Boundary Shear Stress in Meandering Compound Channel under the Influence of Sinusoidal Changes. Journal of Modeling in Engineering, 18(60), 53-69.
Naghavi, M., Mohammadi, M. & Mahtabi, G. (2021). Numerical simulation of flow velocity distribution and shear stress in meandering compound channels. Iranian Water Researches Journal, 15(1), 23-34.
Naghavi, M., Mohammadi, M. & Mahtabi, G. (2021). Transverse Flow Characteristics in the Meandering Compound Channels. Amirkabir Journal of Civil Engineering, 53(8), 3499-3516.
Naghavi, M., Mohammadi, M. & Mahtabi, G. (2021). On the effect of relative flood depth on flow hydraulics in meandering compound channels. Irrigation and Water Engineering, 11(3), 55-78.
Naghavi, M., Mohammadi, M. & Mahtabi, G. (2022). An experimental evaluation of the blocks in floodplain on hydraulic characteristics of flow in a meandering compound channel.
Journal of Hydrology,
612, 127976, https://doi.org/10.1016 /j.jhydrol.2022.127976.
Naghavi, M., Mohammadi, M., Mahtabi, G. & Abraham, J. (2023a). Experimental assessment of velocity and bed shear stress in the main channel of a meandering compound channel with one-sided blocks in floodplain.
Journal of Hydrology,
617, 129073, https://doi.org/10.1016/j.jhydrol.2023. 129073.
Naghavi, M., Mohammadi, M. & Mahtabi, G. (2023b). The effect of building arrangement on the flow characteristics in meandering compound channels.
Journal of Environmental Management,
331(1), 117288, https://doi.org/10.1016/j.jenvman. 2023.117288.
Naghavi, M., Mohammadi, M. & Mahtabi, G. (2023c). Transverse Velocities and Vortices in Compound Meandering Channel: Effect of Building Arrangement in the Floodplains. Journal of Hydraulic Structures, 9(3), 66-87.
Naghavi, M., Mohammadi, M. & Mahtabi, G. (2024). The effect of structures density in the banks of meandering rivers on the flow characteristics during floods. Journal of Water and Irrigation Management, 14(1), 123-139. (In Persian)
Pan, Y., Li, Zh., Yang, K. & Jia, D. (2019). Velocity distribution characteristics in meandering compound channels with one-sided vegetated floodplains. Journal of Hydrology, 578, 1-11.
Pu, J.H. (2019). Turbulent rectangular compound open channel flow study using multi-zonal approach.
Environmental Fluid Mechanics,
19(3), 785-800.
Pu, J.H. (2022). Environmental Hydraulics, Turbulence and Sediment Transport. Fluids, 7(2), 48, https://doi.org/10.3390/fluids7020048.
Pu, J.H., Pandey, M., Li, J., Satyanaga, A., Kundu, S. & Hanmaiahgari, P.R. (2022). Editorial: Urban Fluvial and Hydro-Environment System.
Frontiers in Environmental Science,
10, 1-3.
Pu, J.H., Hussain, A., Guo, Y., Vardakastanis, N., Hanmaiahgari, P.R. & Lam, D. (2019). Submerged Flexible Vegetation Impact toward Open Channel Flow Velocity Distribution: An Analytical Modelling Study on Drag and Friction. Water Science Engineering, 12(2), 121-128.
Pu, J.H., Shao, S. & Huang, Y. (2014). Numerical and experimental turbulence studies on shallow open channel flows. Journal of Hydro-environmental Research, 8(1), 9-19.
Pu, J.H. (2015). Turbulence Modelling of Shallow Water Flows using Kolmogorov Approach. Computational Fluids, 115, 66-74.
Sanjou, M. & Nezu, I. (2010). Large eddy simulation of compound open-channel flows with emergent vegetation near the floodplain edge.
Journal of Hydrodynamics,
22(5), 582-586.
Shiono, K. & Muto, Y. (1998) Complex flow mechanisms in compound meandering channels with overbank flow. Journal of Fluid Mechanics, 376, 221–261.
Shiono, K., Chan, T.L., Spooner, J., Rameshwaran, P. & Chandler, J.H. (2009). The effect of floodplain roughness on flow structures, bedforms and sediment transport rates in meandering channels with overbank flows: Part I. Journal of Hydraulic Research, 47, 5–19.
Shukla, D.R. & Shiono, K. (2008). CFD modelling of meandering channel during floods. Proceedings of the Institution of Civil Engineers-Water Management. 161, 1–12.
Shukry, A. (1950). Flow around bends in an open flume.
Transactions of the American Society of Civil Engineers,
115(1), 751-779.
Tang, H., Tian, Z., Yan, J. & Yuan, S. (2014). Determining drag coefficients and their application in modelling of turbulent flow with submerged vegetation.
Advances in Water Resources,
69, 134-145.
Tsujimoto, T. (1992). Spectral analysis of velocity and water surface fluctuations appearing in an open channel with vegetated and non-vegetated regions in a cross-section. In: Proceedings of the sixth IAHR International Symposium on Stochastic Hydraulics, IAHR, Taipei.
Van, C.P., Deleersnijder, E., Bousmar, D. & Soares-Frazão, S. (2014). Simulation of flow in compound open-channel using a discontinuous Galerkin finite-element method with Smagorinsky turbulence closure. Journal of Hydro-environmental Research, 8(40), 396-409.
Wang, M., Avital, E.J., Bai, X., Ji, C., Xu, D., Williams, J.J.R. & Munjiza, A. (2020). Fluid–structure interaction of flexible submerged vegetation stems and kinetic turbine blades. Computational Particle Mechanics, 7, 839–848.
Wang, Y., Yang, Z., Liu, M. & Yu, M. (2022). Numerical study of flow characteristics in compound meandering channels with vegetated floodplains. Physics Fluids, 34(11), 115107, 10.1063/5.0122089.
Xu D, Bai Y, Munjiza A, Avital E, Williams J (2013) Investigation on the Characteristics of Turbulent Flow in a Meandering Open Channel Bend Using Large Eddy Simulation. In: Proceedings of 2013 IAHR World Congress, IAHR, China.
Yakhot, V., Thangam, S., Gatski, T.B., Orszag, S.A. & Speziale, C.G. (1992). Development of turbulence models for shear flows by a double expansion technique.
Physics Fluids.
4(7),1-24.
Zhang, H.T., Dai, W.H., da Silva, A.M.F., & Tang, H. (2022). Numerical study on resistance to flow in meandering channels. Journal of Hydraulic Engineering. 148, 1–14.
Zhang, H.T., Dai, W.H., da Silva, A.M.F. & Tang, H.W. (2021). Numerical model for convective flow in meandering channels with various sinuosities. Journal of Hydraulic Engineering. 147(11), 04021042, doi:10.1061/(asce)hy.1943-7900. 0001917.