期刊文献+

Sediment Transport in Rivers and Coastal Waters

Sediment Transport in Rivers and Coastal Waters
下载PDF
导出
摘要 Following Bagnold's approach, a relationship between sediment transport and energy dissipation is developed. The major assumption made in the study is that the near bed velocity plays a dominant role in the process of sediment transport. A general relationship between energy dissipation and sediment transport is first proposed. Then the equations for total sediment transport are derived by introducing the appropriate expression of energy dissipation rate under different conditions, such as open channel flows, combination of wave and current, as well as longshore sediment transport. Within the flows investigated, the derived relationships are fairly consistent with the available data over a wide range of conditions. Following Bagnold's approach, a relationship between sediment transport and energy dissipation is developed. The major assumption made in the study is that the near bed velocity plays a dominant role in the process of sediment transport. A general relationship between energy dissipation and sediment transport is first proposed. Then the equations for total sediment transport are derived by introducing the appropriate expression of energy dissipation rate under different conditions, such as open channel flows, combination of wave and current, as well as longshore sediment transport. Within the flows investigated, the derived relationships are fairly consistent with the available data over a wide range of conditions.
出处 《China Ocean Engineering》 SCIE EI 2003年第4期527-540,共14页 中国海洋工程(英文版)
关键词 total sediment discharge longshore sediment transport rate of energy dissipation wave-current interaction total sediment discharge longshore sediment transport rate of energy dissipation wave-current interaction
  • 相关文献

参考文献27

  • 1[1]Ackers, P. and White, W. R., 1973. Sediment transport: new approach and analysis, J. Hydr. Div., ASCE, 99(11): 2041~2060.
  • 2[2]Bagnold, R. A., 1966. An approach to the sediment transport problem from general physics, Geol. Survey Professional paper 422-I, U.S. government printing office, Washington.
  • 3[3]Barton, J. R. and Lin, P. N., 1955. A study of the sediment transport in alluvial streams, Report No. 55 JRB2, Civil Engrg Depart., Colorado Colleage, Fort Collins.
  • 4[4]Brownlie, W. R., 1981. Compilation of Alluvial Channel Data: Laboratory and Field, California Institute of Technology, California. Report No. KH-R-43B.
  • 5[5]Brunone, B., 1997. Discussion: the Albert Shields Story, J. Hydr. Engrg., ASCE, 123(7): 666.
  • 6[6]Chien, N. and Wan, Z., 1999. Mechanics of Sediment Transport, ASCE, Reston, Va.
  • 7[7]Chen, N. S., 1997. Simplified Settling Velocity Formula for Sediment Particle, J. Hydr. Engrg., ASCE, 123(2): 149~152.
  • 8[8]Einstein, H. A., 1942. Formulas for the Transportation of Bed Load, Trans. Soc. Civ. Engrg., 107, 561~597.
  • 9[9]Engelund, F. and Hansen, E., 1972. A Monograph on Sediment Transport in Alluvial Streams, Teknisk Forlag, Copenhagen, Denmark.
  • 10[10]Fredsoe, J. and Deigaard, R., 1995. Mechanics of coastal sediment transport, World Scientific, Singapore.

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部