1,004
Views
17
CrossRef citations to date
0
Altmetric
Research paper

Extended Engelund–Hansen type sediment transport relation for mixtures based on the sand-silt-bed Lower Yellow River, China

(IAHR Member), PhD StudentORCID Icon, (Postdoctoral Research Associate) , (Assistant Professor) , (Professor) , (IAHR Member), Professor, (Deputy Chief Engineer) , (Professor) & (IAHR Member), Professor show all
Pages 770-785 | Received 25 Sep 2017, Accepted 23 Oct 2018, Published online: 21 Jan 2019

References

  • Allan, J. D., & Castillo, M. M. (2007). Stream ecology: Structure and function of running waters. New York, NY: Springer.
  • Ashida, K., & Michiue, M. (1972). Study on hydraulic resistance and bed-load transport rate in alluvial streams. In Proceedings of the Japan society of civil engineers ( Vol. 1972, No. 206, pp. 59–69). Japan Society of Civil Engineers (in Japanese).
  • Bettess, R. (1994). Sediment transport and channel stability. In P. P. Calow & G. E. Petts (Eds.), The rivers handbook: Hydrological and ecological principles (Vol. 2, pp. 227–253). Oxford: Blackwell Science.
  • Blom, A., Arkesteijn, L., Chavarrías, V., & Viparelli, E. (2017). The equilibrium alluvial river under variable flow and its channel-forming discharge. Journal of Geophysical Research: Earth Surface, 122(10), 1924–1948.
  • Blom, A., Viparelli, E., & Chavarrias, V. (2016). The graded alluvial river: Profile concavity and downstream fining. Geophysical Research Letters, 43(12), 6285–6293. doi: 10.1002/2016GL068898
  • Brownlie, W. R. (1981). Prediction of flow depth and sediment discharge in open channels ( Report No. KH-R-43A). Pasadena, California, USA: W. M. Keck Laboratory of Hydraulics and Water Resources, California Institute of Technology, 232.
  • Chen, J., Zhou, W., & Qiang, C. (2012). Reservoir sedimentation and transformation of morphology in the lower yellow river during 10 year’s initial operation of the Xiaolangdi reservoir. Journal of Hydrodynamics, Ser. B, 24(6), 914–924. doi: 10.1016/S1001-6058(11)60319-3
  • Chen, Y., Wang, K., Lin, Y., Shi, W., Song, Y., & He, X. (2015). Balancing green and grain trade. Nature Geoscience, 8(10), 739–741. doi: 10.1038/ngeo2544
  • Cohn, T. A. (1995). Recent advances in statistical methods for the estimation of sediment and nutrient transport in rivers. Reviews of Geophysics, 33(S2), 1117–1123. doi: 10.1029/95RG00292
  • Deigaard, R. (1980). Longitudinal and transverse sorting of grain sizes in alluvial rivers ( Paper No. 26). Institute of Hydrodynamics and Hydraulic Engineering, Technical University of Denmark.
  • Engelund, F., & Hansen, E. (1967). A monograph on sediment transport in alluvial streams. Copenhagen K: Technical University of Denmark 0stervoldgade 10.
  • Frings, R. M. (2008). Downstream fining in large sand-bed rivers. Earth-Science Reviews, 87(1–2), 39–60. doi: 10.1016/j.earscirev.2007.10.001
  • Gao, P., Zhang, X., Mu, X., Wang, F., Li, R., & Zhang, X. (2010). Trend and change-point analyses of streamflow and sediment discharge in the Yellow River during 1950–2005. Hydrological Sciences Journal–Journal des Sciences Hydrologiques, 55(2), 275–285. doi: 10.1080/02626660903546191
  • He, L., Duan, J., Wang, G., & Fu, X. (2012). Numerical Simulation of Unsteady Hyperconcentrated Sediment-Laden Flow in the Yellow River. Journal of Hydraulic Engineering, 138(11), 958–969. doi: 10.1061/(ASCE)HY.1943-7900.0000599
  • Hicks, D. M., & Gomez, B. (2016). Sediment transport. In G. M. Kondolf & H. Piégay (Eds.), Tools in fluvial geomorphology (pp. 324–356). Chichester, UK: John Wiley & Sons Ltd.
  • Hirano, M. (1971). River-bed degradation with armoring. In Proceedings of the Japan society of civil engineers ( Vol. 1971, No. 195, pp. 55–65). Japan Society of Civil Engineers (in Japanese).
  • Hoey, T. B., & Ferguson, R. I. (1994). Numerical simulation of downstream fining by selective transport in gravel bed rivers: Model development and illustration. Water Resources Research, 30(7), 2251–2260. doi: 10.1029/94WR00556
  • Hunziker, R., & Jaeggi, M. N. R. (2002). Grain sorting processes. Journal of Hydraulic Engineering, 128(12), 1060–1068. doi: 10.1061/(ASCE)0733-9429(2002)128:12(1060)
  • Jiongxin, X. (1999). Erosion caused by hyperconcentrated flow on the Loess Plateau of China. Catena 36(1–2), 1–19. doi: 10.1016/S0341-8162(99)00009-0
  • Julien, P. Y., & Klaasen, G. J. (1995). Sand-dune geometry of large rivers during floods. Journal of Hydraulic Engineering, 121(9), 657–663. doi: 10.1061/(ASCE)0733-9429(1995)121:9(657)
  • Kuhnle, R. A. (1992). Fractional transport rates of bedload on Goodwin Creek. In Billi, P., Hey, R. D., Thorne, C. R., & Tacconi, P. (Eds.), Dynamics of gravel-bed rivers (pp. 141–155). Chichester: John Wiley & Sons.
  • Long, Y., & Zhang, Y. (2002). Study on the Yellow River sediment from the viewpoint of total sediment. Yellow River, 24(8), 28–29. (in Chinese).
  • Ma, H, Nittrouer, J. A., Naito, K., Fu, X, Zhang, Y, Moodie, A. J., … Parker, G. (2017). The exceptional sediment load of fine-grained dispersal systems: Example of the Yellow River, China. Science Advances 3(5), e1603114. doi: 10.1126/sciadv.1603114
  • MacArthur, R. C., Neill, C. R., Hall, B. R., Galay, V. J., & Shvidchenko, A. B. (2008). Overview of sedimentation engineering. In M. H. Garcia (Ed.), Sedimentation engineering: Processes, measurements, modeling, and practice (pp. 1–20). Reston, VA: American Society of Civil Engineers.
  • Martín-Vide, J. P., Amarilla, M., & Zárate, F. J. (2014). Collapse of the Pilcomayo River. Geomorphology, 205, 155–163. doi: 10.1016/j.geomorph.2012.12.007
  • Milliman, J. D., & Meade, R. H. (1983). World-wide delivery of river sediment to the oceans. The Journal of Geology, 91(1), 1–21. doi: 10.1086/628741
  • Paola, C., Heller, P. L., & Angevine, C. L. (1992). The large-scale dynamics of grain-size variation in alluvial basins, 1: Theory. Basin Research, 4(2), 73–90. doi: 10.1111/j.1365-2117.1992.tb00145.x
  • Parker, G. (1990). Surface-based bedload transport relation for gravel rivers. Journal of Hydraulic Research, 28(4), 417–436. doi: 10.1080/00221689009499058
  • Parker, G. (1991a). Selective sorting and abrasion of river gravel. I: Theory. Journal of Hydraulic Engineering, 117(2), 131–147. doi: 10.1061/(ASCE)0733-9429(1991)117:2(131)
  • Parker, G. (1991b). Selective sorting and abrasion of river gravel. II: Applications. Journal of Hydraulic Engineering, 117(2), 150–171. doi: 10.1061/(ASCE)0733-9429(1991)117:2(150)
  • Parker, G. (2008). Transport of gravel and sediment mixtures. In M. H. Garcia (Ed.), Sedimentation engineering: Processes, measurements, modeling, and practice (pp. 165–251). Reston, Virginia: American Society of Civil Engineers.
  • Parker, G., Fu, X., Zhang, Y., Zinger, J., & Konsoer, K. (2013, September). Bedform regime diagram for rivers and turbidity currents: Conditions for the formation and obliteration of dunes. In Z. Wang (Ed.), Proceedings of the 2013 international association for hydro-environment engineering and research congress (pp. 8–13). Chengdu, China: IAHR.
  • Parker, G., Hassan, M., & Wilcock, P. R. (2007). Adjustment of the bed surface size distribution of gravel-bed rivers in response to cycled hydrographs. In H. Habersack, H. Piégay, & M. Rinaldi (Eds.), Gravel-bed rivers VI: From process understanding to river restoration (pp. 241–285). New York, NY: Elsevier Science & Technology.
  • Parker, G., & Klingeman, P. C. (1982). On why gravel bed streams are paved. Water Resources Research, 18(5), 1409–1423. doi: 10.1029/WR018i005p01409
  • Pierson, T. C. (2005). Hyperconcentrated flow—Transitional process between water flow and debris flow. In M. Jakob, O. Hungr, & D. M. Jakob (Eds.), Debris-flow hazards and related phenomena (pp. 159–202). Berlin, Germany: Springer.
  • Ribberink, J. S. (1987). Mathematical modelling of one-dimensional morphological changes in rivers with non-uniform sediment (Doctoral dissertation). Delft University of Technology, Delft, The Netherlands.
  • Stecca, G., Siviglia, A., & Blom, A. (2014). Mathematical analysis of the Saint-Venant-Hirano model for mixed-sediment morphodynamics. Water Resources Research, 50, 7563–7589. doi: 10.1002/2014WR015251
  • Ta, W., Wang, H., & Jia, X. (2011). Downstream fining in contrasting reaches of the sand-bedded Yellow River. Hydrological Processes, 25(24), 3693–3700. doi: 10.1002/hyp.8065
  • Tian, S., Wang, Z., Li, Z., & Li, Y. (2016). Effects of soil property of loess plateau on sediment characteristics in the yellow river. International Journal of Sediment Research, 5, 74–80.
  • Toro-Escobar, C. M., Parker, G., & Paola, C. (1996). Transfer function for the deposition of poorly sorted gravel in response to streambed aggradation. Journal of Hydraulic Research, 34(1), 35–53. doi: 10.1080/00221689609498763
  • Tsujimoto, T. (1991). Mechanics of sediment transport of graded materials and fluvial sorting ( Report No. 0155041). Kanazawa, Japan: Kanazawa University.
  • Viparelli, E., Sequeiros, O. E., Cantelli, A., Wilcock, P. R., & Parker, G. (2010). River morphodynamics with creation/consumption of grain size stratigraphy 2: Numerical model. Journal of Hydraulic Research, 48(6), 727–741. doi: 10.1080/00221686.2010.526759
  • Wang, H., Bi, N., Saito, Y., Wang, Y., Sun, X., Zhang, J., & Yang, Z. (2010). Recent changes in sediment delivery by the Huanghe (Yellow River) to the sea: Causes and environmental implications in its estuary. Journal of Hydrology, 391(3–4), 302–313. doi: 10.1016/j.jhydrol.2010.07.030
  • Wang, H., Yang, Z., Saito, Y., Liu, J. P., Sun, X., & Wang, Y. (2007). Stepwise decreases of the Huanghe (Yellow River) sediment load (1950-2005): Impacts of climate change and human activities. Global and Planetary Change, 57(3–4), 331–354. doi: 10.1016/j.gloplacha.2007.01.003
  • Wang, S., Fu, B., Piao, S., Lü, Y., Ciais, P., Feng, X., & Wang, Y. (2016). Reduced sediment transport in the Yellow River due to anthropogenic changes. Nature Geoscience, 9(1), 38–41. doi: 10.1038/ngeo2602
  • Wang, S., & Li, Y. (2011). Channel variations of the different channel pattern reaches in the lower Yellow River from 1950 to 1999. Quaternary International, 244(2), 238–247. doi: 10.1016/j.quaint.2010.09.002
  • Wang, Z., Wang, W., & Tian, S. (2007). Mineral composition and distribution of the sediment in the Yellow River basin. International Journal of Sediment Research, 5, 1–8.
  • Wilcock, P. R. (1997). The components of fractional transport rate. Water Resources Research, 33(1), 247–258. doi: 10.1029/96WR02666
  • Wilcock, P. R., & Crowe, J. C. (2003). Surface-based transport model for mixed-size sediment. Journal of Hydraulic Engineering, 129(2), 120–128. doi: 10.1061/(ASCE)0733-9429(2003)129:2(120)
  • Woo, H. S., Julien, P. Y., & Richardson, E. V. (1986). Washload and fine sediment load. Journal of Hydraulic Engineering, 112(6), 541–545. doi: 10.1061/(ASCE)0733-9429(1986)112:6(541)
  • Wright, L. D., Wiseman, W. J. Jr., Tang, Z.-S., Bornhold, B. D., Keller, G. H., Prior, D. B., & Suhayda, J. N. (1990). Continental Shelf Research, 10(1), 1–40. doi: 10.1016/0278-4343(90)90033-I
  • Wright, S., & Parker, G. (2004). Flow resistance and suspended load in sand-bed rivers: Simplified stratification model. Journal of Hydraulic Engineering, 130(8), 796–805. doi: 10.1061/(ASCE)0733-9429(2004)130:8(796)
  • Wright, S., & Parker, G. (2005a). Modeling downstream fining in sand-bed rivers. I: Formulation. Journal of Hydraulic Research, 43(6), 612–619.
  • Wright, S., & Parker, G. (2005b). Modeling downstream fining in sand-bed rivers II: Application. Journal of Hydraulic Research, 43(6), 620–630.
  • Wu, B., & Long, Y. (1993). Several modifications for sediment transport capacity formulas of the Yellow River. Yellow River, 95(7), 1–4. (in Chinese).
  • Wu, B., van Maren, D. S., & Li, L. (2008). Predictability of sediment transport in the Yellow River using selected transport formulas. International Journal of Sediment Research, 23(4), 283–298. doi: 10.1016/S1001-6279(09)60001-9
  • Wu, B., Wang, G., Xia, J., Fu, X., & Zhang, Y. (2008). Response of bankfull discharge to discharge and sediment load in the Lower Yellow River. Geomorphology, 100(3–4), 366–376. doi: 10.1016/j.geomorph.2008.01.007
  • Xue, C. (1993). Historical changes in the Yellow River delta, China. Marine Geology, 113(3–4), 321–330. doi: 10.1016/0025-3227(93)90025-Q
  • Yang, C. T., Molinas, A., & Wu, B. (1996). Sediment transport in the Yellow River. Journal of Hydraulic Engineering, 122(5), 237–244. doi: 10.1061/(ASCE)0733-9429(1996)122:5(237)
  • Yu, Y., Shi, X., Wang, H., Yue, C., Chen, S., Liu, Y., … Qiao, S. (2013). Effects of dams on water and sediment delivery to the sea by the Huanghe (Yellow River): The special role of Water-Sediment Modulation. Anthropocene, 3, 72–82. doi: 10.1016/j.ancene.2014.03.001
  • Yu, Y., Wang, H., Shi, X., Ran, X., Cui, T., Qiao, S., & Liu, Y. (2013). New discharge regime of the Huanghe (Yellow River): Causes and implications. Continental Shelf Research, 69, 62–72. doi: 10.1016/j.csr.2013.09.013
  • Zhang, H. W., Huang, Y. D., & Zhao, L. J. (2001). A mathematical model for unsteady sediment transport in the Lower Yellow River. Journal of Sedimentation Research, 16(2), 150–158. (in Chinese).
  • Zhang, R. (1959). A study of the sediment transport capacity of the middle and lower Yangtze River. Journal of Sediment Research, 4(2), 54–73. (in Chinese).
  • Zhang, Y., Long, Y., & Shen, G. (1998). Adaptability of sediment transport formula to the Yellow River. Proceedings of the 7th International Symposium on River Sedimentation, Hong Kong, WASER.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.