The Graetz-Nusselt problem extended to continuum flows with finite slip

被引:17
作者
Haase, A. Sander [1 ]
Chapman, S. Jonathan [2 ]
Tsai, Peichun Amy [1 ]
Lohse, Detlef [1 ]
Lammertink, Rob G. H. [1 ]
机构
[1] Univ Twente, MESA Inst Nanotechnol, NL-7500 AE Enschede, Netherlands
[2] Univ Oxford, Inst Math, Oxford OX1 3LB, England
基金
欧洲研究理事会;
关键词
boundary layers; convection; free shear layers; HEAT-TRANSFER; SURFACES;
D O I
10.1017/jfm.2014.733
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
Graetz and Nusselt studied heat transfer between a developed laminar fluid flow and a tube at constant wall temperature. Here, we extend the Graetz-Nusselt problem to dense fluid flows with partial wall slip. Its limits correspond to the classical problems for no-slip and no-shear flow. The amount of heat transfer is expressed by the local Nusselt number Nu(x), which is defined as the ratio of convective to conductive radial heat transfer. In the thermally developing regime, Nu(x) scales with the ratio of position (x) over tilde = x/L to Graetz number Gz, i.e. Nu(x) alpha ((x) over tilde /Gz)(-beta). Here, L is the length of the heated or cooled tube section. The Graetz number Gz corresponds to the ratio of axial advective to radial diffusive heat transport. In the case of no slip, the scaling exponent beta equals 1/3. For no-shear flow, beta = 1/2. The results show that for partial slip, where the ratio of slip length b to tube radius R ranges from zero to infinity, beta transitions from 1/3 to 1/2 when 10(-4) < b/R < 10(0). For partial slip, beta is a function of both position and slip length. The developed Nusselt number Nu(infinity) for (x) over tilde /Gz > 0.1 transitions from 3.66 to 5.78, the classical limits, when 10(-2) < b/R < 10(2). A mathematical and physical explanation is provided for the distinct transition points for beta and Nu(infinity).
引用
收藏
页码:R31 / R312
页数:12
相关论文
共 28 条
  • [1] [Anonymous], 1928, Ann. Mines
  • [2] [Anonymous], 1928, ANN MINES MEMOIRES S
  • [3] The Graetz problem extended to slip-flow
    Barron, RF
    Wang, XM
    Ameel, TA
    Warrington, RO
    [J]. INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 1997, 40 (08) : 1817 - 1823
  • [4] Barrow H., 1970, Waerme- und Stoffuebertragung, V3, P227, DOI 10.1007/BF01106720
  • [5] Bird RB, 2007, TRANSPORT PHENOMENA, DOI [10.4236/jsea.2020.138011, DOI 10.4236/JSEA.2020.138011]
  • [6] Flow boundary conditions from nano- to micro-scales
    Bocquet, Lyderic
    Barrat, Jean-Louis
    [J]. SOFT MATTER, 2007, 3 (06) : 685 - 693
  • [7] Gas Microflows in the Slip Flow Regime: A Critical Review on Convective Heat Transfer
    Colin, Stephane
    [J]. JOURNAL OF HEAT TRANSFER-TRANSACTIONS OF THE ASME, 2012, 134 (02):
  • [8] Eckert E., 1972, ANAL HEAT MASS TRANS
  • [9] Isoflux Nusselt Number and Slip Length Formulae for Superhydrophobic Microchannels
    Enright, Ryan
    Hodes, Marc
    Salamon, Todd
    Muzychka, Yuri
    [J]. JOURNAL OF HEAT TRANSFER-TRANSACTIONS OF THE ASME, 2014, 136 (01):
  • [10] Graetz L., 1885, Ann Phys, V25, P337, DOI [10.1002/andp.18852610702, DOI 10.1002/ANDP.18822540106, DOI 10.1002/ANDP.18852610702]