Mixing at a sediment concentration interface in turbulent open channel flow

被引:6
|
作者
Salinas, Jorge S. [1 ,2 ]
Shringarpure, Mrugesh [2 ]
Cantero, Mariano I. [3 ]
Balachandar, S. [2 ]
机构
[1] Consejo Nacl Invest Cient & Tecn, Inst Balseiro, Ctr Atom Bariloche, Bustillo 9500, RA-8400 San Carlos De Bariloche, Rio Negro, Argentina
[2] Univ Florida, Dept Mech & Aerosp Engn, Gainesville, FL 32611 USA
[3] Consejo Nacl Invest Cient & Tecn, Inst Balseiro, Comis Nacl Energia Atom, Ctr Atom Bariloche, Bustillo 9500, RA-8400 San Carlos De Bariloche, Rio Negro, Argentina
关键词
Mixing; Sediments; Turbulence; Gravity current; Direct numerical simulation; Turbidity current; GRAVITY CURRENTS; ENERGY DISPERSION; UNSTEADY JETS; PARTICLES; ENTRAINMENT; DRIVEN; MODEL;
D O I
10.1007/s10652-017-9521-4
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
In this work we address the role of turbulence on mixing of clear layer of fluid with sediment-laden layer of fluid at a sediment concentration interface. This process can be conceived as the entrainment of sediment-free fluid into the sediment-laden layer, or alternatively, as the transport of sediment into the top sediment-free flow. This process is governed by four parameters-Reynolds number of the flow Res, non-dimensional settling velocity of the sediment (proxy for sediment size) (V) over tilde, Richardson number Ri(tau) and Schmidt number Sc. For this work we have performed direct numerical simulations for fixed Reynolds and Schmidt numbers while varying the values of Richardson number and particle settling velocity. In the simple model considered here, the flow's momentum and turbulence pre-exists over the entire layer of fluid, while the sediment is initially confined to a layer close to the bed. Mixing of sediment-free fluid with the sediment-laden layer is associated primarily with upward transport of sediment and buoyancy. There is no simultaneous upward transport of fluid momentum and turbulence into the sediment-free fluid layer, which is already in motion and turbulent. The analysis performed shows that the ability of the flow to transport a given sediment size decreases with the distance from the bottom, and thus only fine enough sediment particles are transported across the sediment concentration interface. For these cases, the concentration profiles evolve to a final steady state in good agreement with the well-known Rouse profile. The approach towards the Rouse profile happens through a transient self-similar state. This behavior of the flow is not seen for larger particles. Detailed analysis of the three dimensional structure of the sediment concentration interface shows the mechanisms by which sediment particles are lifted up by tongues of sediment-laden fluid with positive correlation between vertical velocity and sediment concentration. Finally, the mixing ability of the flow is addressed by monitoring the time evolution of the center of mass of the sediment-laden layer and the vertical location of the sediment-free/sediment-laden interface.
引用
收藏
页码:173 / 200
页数:28
相关论文
共 50 条
  • [31] Vertical Mixing in the Fully Developed Turbulent Layer of Sediment-Laden Open-Channel Flow (vol 134, pg 1225, 2008)
    Toorman, Erik A.
    [J]. JOURNAL OF HYDRAULIC ENGINEERING-ASCE, 2009, 135 (06): : 538 - 538
  • [32] Large flow structures in a turbulent open channel flow
    Tamburrino, A
    Gulliver, JS
    [J]. JOURNAL OF HYDRAULIC RESEARCH, 1999, 37 (03) : 363 - 380
  • [33] Application of the two-fluid model to prediction of sediment transport in turbulent open channel flow
    Ahadi, Mina
    Bergstrom, Donald J.
    Mazurek, Kerry A.
    [J]. PHYSICS AND CHEMISTRY OF THE EARTH, 2019, 113 : 73 - 82
  • [34] An explicit expression for velocity profile in presence of secondary current and sediment in an open channel turbulent flow
    Jain, Punit
    Ghoshal, Koeli
    [J]. CANADIAN JOURNAL OF CIVIL ENGINEERING, 2021, 48 (01) : 52 - 61
  • [35] Velocity lag between particle and liquid in sediment-laden open channel turbulent flow
    Pal, Debasish
    Jha, Sanjeev Kumar
    Ghoshal, Koeli
    [J]. EUROPEAN JOURNAL OF MECHANICS B-FLUIDS, 2016, 56 : 130 - 142
  • [36] TURBULENT FLOW IN A COMPOSITE CHANNEL WITH A WAVY INTERFACE
    de Lemos, Marcelo J. S.
    [J]. HT2008: PROCEEDINGS OF THE ASME SUMMER HEAT TRANSFER CONFERENCE, VOL 1, 2009, : 469 - 474
  • [37] Turbulent Micropolar Open-Channel Flow
    Sofiadis, George
    Liakopoulos, Antonios
    Palasis, Apostolos
    Sofos, Filippos
    [J]. FLUIDS, 2024, 9 (09)
  • [38] LAMINAR TO TURBULENT FLOW IN A WIDE OPEN CHANNEL
    OWEN, WM
    [J]. TRANSACTIONS OF THE AMERICAN SOCIETY OF CIVIL ENGINEERS, 1954, 119 : 1157 - 1164
  • [39] Calculation of turbulent flow in open channel bends
    Bravo, HR
    Gutierrez, JG
    [J]. WATER RESOURCES ENGINEERING 98, VOLS 1 AND 2, 1998, : 1691 - 1696
  • [40] Measurement of turbulent flow in a narrow open channel
    Sarkar, Sankar
    [J]. JOURNAL OF HYDROLOGY AND HYDROMECHANICS, 2016, 64 (03) : 273 - 280