Turbulent thermal boundary layers with temperature-dependent viscosity

被引:15
|
作者
Lee, Jin [1 ]
Jung, Seo Yoon [2 ]
Sung, Hyung Jin [1 ]
Zaki, Tamer A. [2 ]
机构
[1] Korea Adv Inst Sci & Technol, Dept Mech Engn, Taejon 305701, South Korea
[2] Univ London Imperial Coll Sci Technol & Med, Dept Mech Engn, London SW7 2AZ, England
基金
英国工程与自然科学研究理事会; 新加坡国家研究基金会;
关键词
Direct numerical simulation; Turbulent boundary layer; Temperature-dependent viscosity; Scalar transport; CHANNEL FLOW; PRANDTL NUMBER; WALL; FLUCTUATIONS; TRANSITION; FLUID;
D O I
10.1016/j.ijheatfluidflow.2014.04.004
中图分类号
O414.1 [热力学];
学科分类号
摘要
Direct numerical simulations (DNS) of turbulent boundary layers (TBLs) over isothermally heated walls were performed, and the influence of the wall-heating on the thermal boundary layers was investigated. The DNS adopt an empirical relation for the temperature-dependent viscosity of water. The Prandtl number therefore changes with temperature, while the Peclet number is constant. Two wall temperatures (T-w = 70 degrees C and 99 degrees C) were considered relative to T-infinity = 30 degrees C, and a reference simulation of TBL with constant viscosity was also performed for comparison. In the variable viscosity flow, the mean and variance of the scalar, when normalized by the friction temperature deficit, decrease relative to the constant viscosity flow. A relation for the mean scalar which takes into account the variable viscosity is proposed. Appropriate scalings for the scalar fluctuations and the scalar flux are also introduced, and are shown to be applicable for both variable and constant viscosity flows. Due to the modification of the near-wall turbulence, the Stanton number and the Reynolds analogy factor are augmented by 10% and 44%, respectively, in the variable viscosity flow. An identity for the Stanton number is derived and shows that the mean wall-normal velocity and wall-normal scalar flux cause the increase in the heat transfer coefficient. Finally, the augmented near-wall velocity fluctuations lead to an increase of the wall-normal scalar flux, which contributes favorably to the enhanced heat transfer at the wall. (C) 2014 Elsevier Inc. All rights reserved.
引用
收藏
页码:43 / 52
页数:10
相关论文
共 50 条
  • [31] Melt spreading with temperature-dependent viscosity
    King, JR
    Riley, DS
    Sansom, A
    [J]. INTERACTIVE DYNAMICS OF CONVECTION AND SOLIDIFICATION, 2001, : 165 - 176
  • [32] Gravity currents with temperature-dependent viscosity
    King, John R.
    Riley, David S.
    Sansom, Ahmos
    [J]. Computer Assisted Mechanics and Engineering Sciences, 2000, 7 (03): : 251 - 277
  • [33] A time viscosity-splitting method for incompressible flows with temperature-dependent viscosity and thermal conductivity
    El-Amrani, Mofdi
    Obbadi, Anouar
    Seaid, Mohammed
    Yakoubi, Driss
    [J]. COMPUTER METHODS IN APPLIED MECHANICS AND ENGINEERING, 2024, 429
  • [34] Large eddy simulation of turbulent heat transfer in a non-isothermal channel: Effects of temperature-dependent viscosity and thermal conductivity
    Wang, Lei
    Liu, Jian
    Hussain, Safeer
    Sunden, Bengt
    [J]. INTERNATIONAL JOURNAL OF THERMAL SCIENCES, 2019, 146
  • [35] PREDICTION OF THE TEMPERATURE-DEPENDENT THERMAL CONDUCTIVITY AND SHEAR VISCOSITY FOR RIGID WATER MODELS
    Mao, Yijin
    Zhang, Yuwen
    [J]. PROCEEDINGS OF THE ASME INTERNATIONAL MECHANICAL ENGINEERING CONGRESS AND EXPOSITION - 2012, VOL 7, PTS A-D, 2013, : 2981 - 2984
  • [36] Effect of Rotation on Thermal Convection in an Anisotropic Porous Medium with Temperature-dependent Viscosity
    R. K. Vanishree
    P. G. Siddheshwar
    [J]. Transport in Porous Media, 2010, 81 : 73 - 87
  • [37] MEASURING THE TEMPERATURE-DEPENDENT THERMAL CONDUCTIVITY AND VISCOSITY OF SILVER-WATER NANOFLUIDS
    Godson, Lazarus
    Lal, D. Mohan
    [J]. MNHMT2009, VOL 1, 2010, : 431 - 439
  • [39] Prediction of the temperature-dependent thermal conductivity and shear viscosity for rigid water models
    Department of Mechanical and Aerospace Engineering, University of Missouri, Columbia, MO 65211, United States
    [J]. J. Nanotechnology Eng. Med., 2012, 3
  • [40] Thermal energy enhancement in blood conveying gold nanoparticles with temperature-dependent viscosity
    Gangadhar, Kotha
    Reddy, K. Shashidhar
    Wakif, Abderrahim
    [J]. INTERNATIONAL JOURNAL OF MODERN PHYSICS B, 2024,