Fully resolved direct numerical simulation of multiphase turbulent thermal boundary layer with finite size particles

被引:3
|
作者
Xia, Junjie [1 ,2 ]
Kun, Luo [1 ]
Fan, Jianren [1 ]
机构
[1] Zhejiang Univ, State Key Lab Clean Energy Utilizat, Hangzhou 310027, Zhejiang, Peoples R China
[2] Wuhan Second Ship Design & Res Inst, Wuhan 430200, Hubei, Peoples R China
基金
中国国家自然科学基金;
关键词
Turbulent boundary layer; Finite size particles; Heat transfer; Buoyancy; HEAT-TRANSFER; CHANNEL FLOW; ISOTROPIC TURBULENCE; MODULATION; MODEL;
D O I
10.1016/j.ijmultiphaseflow.2017.11.012
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
In order to investigate the effects of the buoyancy and finite size particles on the heat transfer process in the turbulent thermal boundary layer, we have carried out three simulations in the present paper, a single-phase neutral boundary layer, an unstable boundary layer with buoyancy effect, and a multi-phase boundary layer with thousands of finite size particles. This is the first time that particle-resolved direct numerical simulation (PR-DNS) is used in the study of thermal boundary layer. The DNS results show the turbulent statistics as well as the thermal structures. It turns out that both the buoyancy and the finite size particles will dramatically affect the turbulent statistics of the boundary layer. Detailed comparisons between the three simulations reveal that the buoyancy effect reshapes the coherent structures in the boundary layer, while finite size particles mainly induce additional disturbance all over the computational domain. Specifically, the Reynolds shear stress and the wall normal turbulent heat flux are remarkably enhanced in the log region by the effect of buoyancy. On the other hand, the finite size particles cause remarkable increment of velocity fluctuations all over the boundary layer, while have the effect of stabilizing temperature fluctuation near the wall. (C) 2017 Elsevier Ltd. All rights reserved.
引用
收藏
页码:454 / 466
页数:13
相关论文
共 50 条
  • [31] Direct numerical simulation of a turbulent boundary layer over an anisotropic compliant wall
    Xia, Qian-Jin
    Huang, Wei-Xi
    Xu, Chun-Xiao
    ACTA MECHANICA SINICA, 2019, 35 (02) : 384 - 400
  • [32] Direct numerical simulation of turbulent boundary layer over hemispherical rough walls
    Liu, Xiaofei
    Zhao, Hui
    Luo, Kun
    Fan, Jianren
    INTERNATIONAL JOURNAL OF MULTIPHASE FLOW, 2016, 83 : 128 - 141
  • [33] Direct numerical simulation of supersonic turbulent boundary layer over a compression ramp
    Wu, M.
    Martin, M. P.
    AIAA JOURNAL, 2007, 45 (04) : 879 - 889
  • [34] Direct numerical simulation of heat transfer in a spatially developing turbulent boundary layer
    Li, Dong
    Luo, Kun
    Fan, Jianren
    PHYSICS OF FLUIDS, 2016, 28 (10)
  • [35] Direct Numerical Simulation of Supersonic Turbulent Boundary Layer with Spanwise Wall Oscillation
    Ni, Weidan
    Lu, Lipeng
    Le Ribault, Catherine
    Fang, Jian
    ENERGIES, 2016, 9 (03)
  • [36] Direct numerical simulation of the supersonic turbulent boundary layer of supercritical carbon dioxide
    Wang, Jinhong
    Yang, Bijie
    Martinez-Botas, Ricardo
    Cao, Teng
    PHYSICS OF FLUIDS, 2025, 37 (02)
  • [37] Direct numerical simulation of turbulent heat transfer over fully resolved anisotropic porous structures
    Nishiyama, Yudai
    Kuwata, Yusuke
    Suga, Kazuhiko
    INTERNATIONAL JOURNAL OF HEAT AND FLUID FLOW, 2020, 81
  • [38] Direct simulation of the turbulent boundary layer on a plate
    V. G. Krupa
    Computational Mathematics and Mathematical Physics, 2016, 56 : 1488 - 1505
  • [39] Direct simulation of the turbulent boundary layer on a plate
    Krupa, V. G.
    COMPUTATIONAL MATHEMATICS AND MATHEMATICAL PHYSICS, 2016, 56 (08) : 1488 - 1505
  • [40] Numerical simulation of turbulent thermal boundary layer and generation mechanisms of hairpin vortex
    Li, Heng
    Wang, Duo
    Xu, Hongyi
    AEROSPACE SCIENCE AND TECHNOLOGY, 2020, 98