MODELING TRANSPORT PROCESSES IN THE RIBBLE ESTUARY

被引:10
|
作者
BURTON, DJ
WEST, JR
HORSINGTON, RW
RANDLE, K
机构
[1] School of Civil Engineering, University of Birmingham, Edgbaston, Birmingham
[2] School of Chemistry, University of Birmingham, Edgbaston, Birmingham
关键词
D O I
10.1016/0160-4120(95)00003-8
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Field measurements of velocity and salinity at three stations along a reach of the Ribble estuary were used to evaluate the temporal variations of the vertical shear induced component of the longitudinal dispersion coefficient. The results yield clear temporal trends which lead to the conclusion that vertical shear-induced dispersion, resulting from differential advection and density gradients, is the most important component of the longitudinal mixing on the ebb tide. Turbulent diffusion, due to the high velocities, dominates the mixing mechanisms on the flood tide. The sensitivity to the dispersion coefficient in a one-dimensional model based on a schematised form of the channel geometry of the Ribble estuary revealed the need for a time dependent dispersion coefficient. Measurements of suspended solids revealed low concentrations compared to previous records. It is proposed that this is due to a pumping effect in the estuary, induced by a combination of the tidal asymmetry and the ebb tide vertical density gradients leading to upstream storage during low river flow spring tide periods. Modelling of the turbidity maximum is shown to be possible by adjustment of critical erosion and deposition shear stress terms.
引用
收藏
页码:131 / 141
页数:11
相关论文
共 50 条
  • [41] TRANSPORT PHENOMENA AND MODELING OF THE IRONMAKING PROCESSES
    SHIBUYA, T
    TETSU TO HAGANE-JOURNAL OF THE IRON AND STEEL INSTITUTE OF JAPAN, 1992, 78 (07): : 955 - 956
  • [42] A new way of modeling transport processes
    Loffler, M.
    Gembarovic, J.
    Gembarovic, J., Jr.
    Thermal Conductivity 26: Thermal Expansion 14, 2005, 26 : 123 - 133
  • [43] Modeling of flow and transport processes in the subsurface
    Helmig, CR
    Ewing, RE
    Finsterle, S
    Hinkelmann, R
    GROUND WATER UPDATES, 2000, : 477 - 480
  • [44] Modeling Reactive Transport Processes in Fractures
    Deng, Hang
    Spycher, Nicolas
    REACTIVE TRANSPORT IN NATURAL AND ENGINEERED SYSTEMS, 2019, 85 (01): : 49 - 74
  • [45] Modeling the transport and distribution of lead in tidal Keelung River estuary
    Liu, Wen-Cheng
    Chen, Wei-Bo
    Chang, Yu-Pei
    ENVIRONMENTAL EARTH SCIENCES, 2012, 65 (01) : 39 - 47
  • [46] ROUTINE DETERMINATION OF PRINCIPAL GAMMA EMITTING RADIONUCLIDES IN MUDS AND SILTS FROM THE RIBBLE ESTUARY.
    Aldridge, A.J.
    Napier, S.T.
    Science of the Total Environment, 1986, 70 : 119 - 129
  • [47] Anomalously high Np-237 in intertidal sediments from the Ribble Estuary in the Irish Sea
    Kuwabara, J
    Yamamoto, M
    Nagai, H
    Komura, K
    Ueno, K
    Assinder, DJ
    JOURNAL OF RADIOANALYTICAL AND NUCLEAR CHEMISTRY-ARTICLES, 1995, 197 (02): : 369 - 385
  • [48] Radiological assessment of the Ribble Estuary .2. Beta and gamma dose rates and doses to critical groups
    Mudge, SM
    Bourne, GS
    Assinder, DJ
    JOURNAL OF ENVIRONMENTAL RADIOACTIVITY, 1997, 36 (01) : 21 - 41
  • [49] Transport in the Hudson estuary: A modeling study of estuarine circulation and tidal trapping
    Hellweger, FL
    Blumberg, AF
    Schlosser, P
    Ho, DT
    Caplow, T
    Lall, U
    Li, HH
    ESTUARIES, 2004, 27 (03): : 527 - 538
  • [50] Microplastics in the Delaware River Estuary: Mapping the Distribution And Modeling Hydrodynamic Transport
    Akbari, Elham
    Powers, Lacey
    Shah, Tanishka
    Suri, Rominder
    Jedrusiak, Scott
    Bransky, Jacob
    Chen, Fanghui
    Andaluri, Gangadhar
    ENVIRONMENTAL ENGINEERING SCIENCE, 2024, 41 (12) : 552 - 562