Backwards and forwards dispersion of a scalar in turbulent wall flows

被引:6
作者
Srinivasan, Chiranth [1 ]
Papavassiliou, Dimitrios V. [1 ]
机构
[1] Univ Oklahoma, Sch Chem Biol & Mat Engn, Norman, OK 73019 USA
关键词
Turbulent dispersion; Turbulent transport; Lagrangian methods; REYNOLDS-NUMBER DEPENDENCE; CHANNEL FLOW; BOUNDARY-LAYER; MOLECULAR DIFFUSIVITY; NUMERICAL SIMULATIONS; ISOTROPIC TURBULENCE; RELATIVE DISPERSION; HEAT-TRANSFER; MASS-TRANSFER; COUETTE-FLOW;
D O I
10.1016/j.ijheatmasstransfer.2009.11.008
中图分类号
O414.1 [热力学];
学科分类号
摘要
A direct numerical simulation of turbulent flow in an infinite channel is used in conjunction with the tracking of scalar markers to investigate turbulent dispersion. The study is focused on four regions of turbulent wall bounded flows, namely the viscous layer. the transition region. the logarithmic layer, and the outer region of the flow at the center of the channel. The velocities of scalar markers captured in each of these regions are correlated both forwards and backwards in time. It is found that backwards and forwards dispersion proceeds at different rates at different regions of the flow A change in the rates of backwards and forwards dispersion is also seen with a change in Prandtl number However, for Prandtl number six and higher, this change is negligible The observed differences ire due to the competing effects of convective and molecular dispersion at different distances from the wall, and for different Prandtl number fluids. (C) 2009 Elsevier Ltd. All rights reserved.
引用
收藏
页码:1023 / 1035
页数:13
相关论文
共 50 条
  • [31] Scaling of statistics in wall-bounded turbulent flows
    Keirsbulck, L.
    Fourrie, G.
    Labraga, L.
    Gad-el-Hak, M.
    COMPTES RENDUS MECANIQUE, 2012, 340 (06): : 420 - 433
  • [32] Turbulent-laminar coexistence in wall flows with Coriolis, buoyancy or Lorentz forces
    Brethouwer, G.
    Duguet, Y.
    Schlatter, P.
    JOURNAL OF FLUID MECHANICS, 2012, 704 : 137 - 172
  • [33] On turbulent flows in cold-wall CVD reactors
    Van Santen, H
    Kleijn, CR
    Van den Akker, HEA
    JOURNAL OF CRYSTAL GROWTH, 2000, 212 (1-2) : 299 - 310
  • [34] Wall modeling of turbulent methane/oxygen reacting flows for predicting heat transfer
    Muto, Daiki
    Daimon, Yu
    Negishi, Hideyo
    Shimizu, Taro
    INTERNATIONAL JOURNAL OF HEAT AND FLUID FLOW, 2021, 87
  • [35] Wall-Modeled Large-Eddy Simulation for Complex Turbulent Flows
    Bose, Sanjeeb T.
    Park, George Ilhwan
    ANNUAL REVIEW OF FLUID MECHANICS, VOL 50, 2018, 50 : 535 - 561
  • [36] NUMERICAL INVESTIGATIONS OF PASSIVE SCALAR TRANSPORT IN TURBULENT TAYLOR-COUETTE FLOWS: CODE VALIDATION
    Salhi, Yacine
    Si-Ahmed, El-Khider
    Degrez, Gerard
    Legrand, Jack
    Aloui, Fethi
    PROCEEDINGS OF THE ASME FLUIDS ENGINEERING DIVISION SUMMER CONFERENCE - 2010 - VOL 1, PTS A-C, 2010, : 1751 - 1761
  • [37] Scalar dissipation rate statistics in turbulent flows using Planar Laser Induced Fluorescence measurements
    Ahmed, Samer F.
    INTERNATIONAL JOURNAL OF HEAT AND FLUID FLOW, 2012, 33 (01) : 220 - 231
  • [38] Scaling of turbulent kinetic energy and dissipation in turbulent wall-bounded flows
    Wei, Tie
    PHYSICAL REVIEW FLUIDS, 2020, 5 (09):
  • [39] Investigation of the Wall Scalar Fluctuations Effect on Passive Scalar Turbulent Fields at Several Prandtl Numbers by Means of Direct Numerical Simulations
    Chaouat, Bruno
    Peyret, Christophe
    JOURNAL OF HEAT TRANSFER-TRANSACTIONS OF THE ASME, 2019, 141 (12):
  • [40] Near-wall velocity structures that drive turbulent transport from a line source at the wall
    Karna, Anjani Kalyan
    Papavassiliou, Dimitrios V.
    PHYSICS OF FLUIDS, 2012, 24 (03)