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Flow resistance at lowland and mountainous rivers Cover

References

  1. Afzalimehr, H., 2010. Effect of non‐uniformity of flow on velocity and turbulence intensities over a cobble‐bed. Hydrol. Process., 24, 3, 331–341.
  2. Afzalimehr, H., Gallichand, J., Jueyi, S.U.I., Bagheri, E., 2011. Field investigation on friction factor in mountainous cobble-bed and boulder-bed rivers. Int. J. Sediment Res., 26, 2, 210–221.
  3. Afzalimehr, H., Rennie, C.D., 2009. Determination of bed shear stress in gravel-bed rivers using boundary-layer parameters. Hydrol. Sci. J., 54, 1, 147–159.
  4. Afzalimehr, H., Singh, V.P., Najafabadi, E.F., 2010. Determination of form friction factor. J. Hydrol. Eng., 15, 3, 237–243. Alemi, M., Maia, R., 2022. A three-step approach for bias adjustment of satellite-based daily precipitation data. In: Proc. 39th IAHR World Congress, International Association for Hydro-Environment Engineering and Research, June 19–24, Granada, Spain.
  5. Allen, J., Somerfield, P., Gilbert, F., 2007. Quantifying uncertainty in high‐resolution coupled hydrodynamic‐ecosystem models. J. Mar. Syst., 64, 1–4, 3–14.
  6. Amiri, M.J., Bahrami, M., Hamidifar, H., Eslamian, S., 2016. Modification of furrow Manning’s roughness coefficient estimation by finite difference technique under surge and continuous flow. Int. J. Hydrol. Sci. Technol., 6, 3, 226–237.
  7. Box, W., Järvelä, J., Västilä, K., 2021. Flow resistance of floodplain vegetation mixtures for modeling river flows. J. Hydrol., 601, 126593. https://doi.org/10.1016/j.jhydrol.2021.126593
  8. Cai, R., Zhang, H., Zhang, Y., Zhang, L., Huang, H., 2020. Flow resistance equation in sand-bed rivers and its practical application in the Yellow River. Water, 12, 3, 727. https://doi.org/10.3390/w12030727
  9. Champion, P.D., Tanner, C.C., 2000. Seasonality of macro-phytes and interaction with flow in a New Zealand lowland stream. Hydrobiologia, 441, 1, 1–12.
  10. D’Agostino, V., Michelini, T., 2015. On kinematics and flow velocity prediction in step‐pool channels. Water Resour. Res., 51, 6, 4650–4667.
  11. Dey, S., 2014. Fluvial Hydrodynamics. Hydrodynamic and Sediment Transport Phenomena. Springer, 687 p.
  12. Dingman, S.L., 2009. Fluvial Hydraulics. Oxford University Press.
  13. Diplas, P., Chatanantavet, P., Almedeij, J., 2016. Streambed structure, stream power, and bed load transport: A unified outlook for gravel-bed and bedrock streams. In: Proc. Int. Conf. on fluvial hydraulics (river flow 2016), July 11–14, St. Louis, USA.
  14. Dodangeh, E., Afzalimehr, H., 2022. Incipient motion of sediment particles in the presence of bed forms under decelerating and accelerating flows. J. Hydrol. Hydromech, 70, 1, 89–102.
  15. Einstein, H.A., Barbarossa, N.L., 1952. River channel roughness. Trans. Am. Soc. Civil Eng., 117, 1, 1121–1132.
  16. Eslamian, S., Okhravi, S., Eslamian, F., 2019. Constructed Wet-land: Hydraulic Design. Taylor and Francis Group, CRC Press, Boca Raton FL, USA, 88 p.
  17. Ferguson, R.I., Sharma, B.P., Hardy, R.J., Hodge, R.A., Warburton, J., 2017. Flow resistance and hydraulic geometry in contrasting reaches of a bedrock channel. Water Resour. Res., 53, 3, 2278–2293.
  18. Ferguson, R., 2007. Flow resistance equations for gravel‐and boulder‐bed streams. Water Resour. Res., 43, 5. https://doi.org/10.1029/2006WR005422
  19. Ferguson, R., 2010. Time to abandon the Manning equation? Earth Surf. Process. Landf., 35, 15, 1873–1876.
  20. Ferguson, R.I., Lewin, J., Hardy, R.J., 2022. Fluvial processes and landforms. Geol. Soc. Lond. Mem., 58, 257–270.
  21. Ferro, V., 2018a. Assessing flow resistance in gravel bed channels by dimensional analysis and self‐similarity. Catena, 169, 119–127.
  22. Ferro, V., 2018b. Flow resistance law under equilibrium bed‐ load transport condition. Flow Meas. Instrum., 64, 1–8.
  23. Franklin, P., Dunbar, M., Whitehead, P., 2008. Flow controls on lowland river macrophytes: a review. Sci. Total Environ., 400, 1–3, 369–378.
  24. Garcia, M., Parker, G., 1993. Experiments on the entrainment of sediment into suspension by a dense bottom current. J. Geophys. Res. Oceans, 98, C3, 4793–4807.
  25. García, M.H., 2008. Sediment transport and morphodynamics. In: García, M.H. (Ed.): Sedimentation Engineering: Processes, Measurements, Modeling, and Practice. Manuals and reports on engineering practice number 110. American Society of Civil Engineers, Reston, pp. 21–163.
  26. Hodge, R.A., Voepel, H., Leyland, J., Sear, D.A., Ahmed, S., 2020. X-ray computed tomography reveals that grain protrusion controls critical shear stress for entrainment of fluvial gravels. Geology, 48, 2, 149–153.
  27. Julien, P.Y., 1995. Erosion and Sedimentation. Cambridge University Press. Melbourne, USA.
  28. Malakar, P., Das, R., 2021. Relative role of sediment entrainments on log-law parameters of longitudinal velocity distributions in mobile bed flows. J. Hydrol. Hydromech, 69, 3, 243–254.
  29. McKie, C.W., Juez, C., Plumb, B.D., Annable, W.K., Franca, M.J., 2021. How large immobile sediments in gravel bed rivers impact sediment transport and bed morphology. J. Hydraul. Eng., 147, 2, 04020096. https://doi.org/10.1061/(ASCE)HY.1943-7900.0001842
  30. Mendicino, G., Colosimo, F., 2019. Analysis of flow resistance equations in gravel‐bed rivers with intermittent regimes: Calabrian fiumare data set. Water Resour. Res., 55, 8, 7294–7319.
  31. Mewis, P., 2021. Estimation of vegetation-induced flow resistance for hydraulic computations using airborne laser scanning data. Water, 13, 13, 1864. https://doi.org/10.3390/w13131864
  32. Moriasi, D., Gitau, M., Pai, N., Daggupati, P., 2015. Hydrologic and water quality models: Performance measures and evaluation criteria. Trans. ASABE (American Society of Agricultural and Biological Engineers), 58, 6, 1763–1785.
  33. Naderi, M., Afzalimehr, H., Dehghan, A., Darban, N., Nazari-Sharabian, M., Karakouzian, M., 2022. Field study of three-parameter flow resistance model in rivers with vegetation patch. Fluids, 7, 8, 284. https://doi.org/10.3390/fluids7080284
  34. Namaee, M.R., Sui, J., Whitcombe, T., 2017. A revisit of different models for flow resistance in gravel-bed rivers and hydraulic flumes. Int. J. River Basin Manage., 15, 3, 277–286.
  35. Nezu, I., Nakagawa, H., 1993. Turbulence in Open Channel Flows. IAHR Monograph, A.A. Balkema, Rotterdam. Nicosia, A., Carollo, F.G., Ferro, V., 2023. Evaluating the influence of boulder arrangement on flow resistance in gravel-bed channels. J. Hydrol., 621, 129610. https://doi.org/10.1016/j.jhydrol.2023.129610
  36. Okhravi, S., 2022. The use of the Manning equation is not safe for different river types. What are the alternatives? In: Proc. 34th Conference of Young Hydrologists Professionals in Water Sciences. International Hydrological Program of UNESCO, Slovak Hydrometeorological Institute, November 10, Bratislava, Slovakia.
  37. Okhravi, S., Gohari, S., 2020. Form friction factor of armored riverbeds. Can. J. Civ. Eng., 47, 11, 1238–1248.
  38. Okhravi, S., Schügerl, R., Velísková, Y., 2022a. Flow resistance in lowland rivers impacted by distributed aquatic vegetation. Water Resour. Manage., 36, 2257–2273.
  39. Okhravi, S., Sokáč, M., Velísková, Y., 2022b. Three-dimensional numerical modeling of water temperature distribution in the Rozgrund Reservoir, Slovakia. Acta Hydrologica Slovaca, 23, 2, 305–316.
  40. Okhravi. S., Eslamian, S., 2022. Form resistance prediction in gravel-bed rivers. In: Eslamian, S., Eslamian, F. (Eds.): Flood Handbook. Taylor and Francis Group, CRC Press, pp. 125–138.
  41. Powell, D.M., 2014. Flow resistance in gravel-bed rivers: Progress in research. Earth Sci. Rev., 136, 301–338.
  42. Rickenmann, D., Recking, A., 2011. Evaluation of flow resistance in gravel-bed rivers through a large field data set. Water Re-sour. Res., 47, 7. https://doi.org/10.1029/2010WR009793
  43. Schügerl, R., Velísková, Y., Sočuvka, V., Dulovičová, R., 2020. Effect of aquatic vegetation on Manning roughness coefficient value-case study at the Šúrsky channel. Acta Hydrologica Slovaca, 21, 1, 123–129.
  44. Shields, A., 1936. Application of similarity principles and turbulence research to bedload movement. PhD Thesis. Berlin, Germany: Mitteilungen der Preussischen Versuchsanstalt für Wasserbau und Schiffbau, Technischen Hochschule Berlin. (In German.)
  45. Song, S., Schmalz, B., Fohrer, N., 2014. Simulation and comparison of stream power in-channel and on the floodplain in a German lowland area. J. Hydrol. Hydromech., 62, 2, 133–144.
  46. Song, S., Schmalz, B., Xu, Y.P., Fohrer, N., 2017. Seasonality of roughness-the indicator of annual river flow resistance condition in a lowland catchment. Water Resour. Manage., 31, 11, 3299–3312.
  47. Sulaiman, M.S., Sinnakaudan, S.K., Azhari, N.N., Abidin, R.Z., 2017. Behavioral of sediment transport at lowland and mountainous rivers: a special reference to selected Malaysian rivers. Environ. Earth Sci., 76, 7, 300. https://doi.org/10.1007/s12665-017-6620-y
  48. Thomas, C., Stamataki, I., Rosselló-Geli, J., 2023. Reconstruction of the 1974 flash flood in Sóller (Mallorca) using a hydraulic 1D/2D model. J. Hydrol. Hydromech, 71, 1, 49–63.
  49. Van Rijn, L.C., 1984. Sediment transport, part III: bed forms and alluvial roughness. J. Hydraul. Eng., 110, 12, 1733–1754.
  50. Vanoni, V.A., Brooks, N.H., 1957. Laboratory studies of the roughness and suspended load of alluvial streams (No. 11). US Army Engineer Division, Missouri River.
  51. Venditti, J.G., 2013. Bedforms in sand-bedded rivers. In: Bishop, M.P., Shroder, J.F. (Eds.): Treatise on Geomorphology. Vol 3. Remote Sensing and GIScience in Geomorphology. Elsevier Academic Press.
  52. Willemsen, P.W., Horstman, E.M., Bouma, T.J., Baptist, M.J., Van Puijenbroek, M.E., Borsje, B.W., 2022. Facilitating salt marsh restoration: the importance of event-based bed level dynamics and seasonal trends in bed level change. Front. Mar. Sci., 8, 793235. https://doi.org/10.3389/fmars.2021.793235
  53. Willmott, C.J., Robeson, S.M., Matsuura, K., 2012. A refined index of model performance. Int. J. Climatol, 32, 13, 2088–2094.
  54. Wright, S., Parker, G., 2004. Flow resistance and suspended load in sand-bed rivers: simplified stratification model. J. Hydraul. Eng., 130, 8, 796–805.
  55. Yalin, M.S., 1972. Mechanics of Sediment Transport. 1st Ed. Pergamon Press, Oxford, Toronto.
  56. Yang, S.Q., Tan, S.K., Lim, S.Y., 2005. Flow resistance and bed form geometry in a wide alluvial channel. Water Resour. Res., 41, 9. https://doi.org/10.1029/2005WR004211
  57. Yen, B.C., 2002. Open channel flow resistance. J. Hydraul. Eng., 128, 20–39.
  58. Zomer, J.Y., Vermeulen, B., Hoitink, A.J., 2023. Coexistence of two dune scales in a lowland river. Earth Surf. Dynam. Discuss. (Preprint). https://doi.org/10.5194/esurf-2023-12. (In review)
  59. Zwolenik, M., Michalec, B., 2023. Effect of water surface slope and friction slope on the value of the estimated Manning’s roughness coefficient in gravel-bed streams. J. Hydrol. Hydromech, 71, 1, 80–90.
DOI: https://doi.org/10.2478/johh-2023-0023 | Journal eISSN: 1338-4333 | Journal ISSN: 0042-790X
Language: English
Page range: 464 - 474
Submitted on: Mar 30, 2023
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Accepted on: Jun 15, 2023
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Published on: Nov 14, 2023
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2023 Saeid Okhravi, Mahdi Alemi, Hossein Afzalimehr, Radoslav Schügerl, Yvetta Velísková, published by Slovak Academy of Sciences, Institute of Hydrology
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 License.