Conjugate natural convection from an array of discrete heat sources .2. A numerical parametric study

被引:35
|
作者
Heindel, TJ [1 ]
Incropera, FP [1 ]
Ramadhyani, S [1 ]
机构
[1] PURDUE UNIV,SCH MECH ENGN,HEAT TRANSFER LAB,W LAFAYETTE,IN
基金
美国国家科学基金会;
关键词
natural convection; conjugate heat transfer; electronic cooling; numerical simulation;
D O I
10.1016/0142-727X(95)00057-W
中图分类号
O414.1 [热力学];
学科分类号
摘要
Coupled conduction and natural convection transport within a discretely heated cavity have been investigated numerically. One vertical wall of the cavity is composed of discrete, isoflux heat sources mounted in a substrate of finite thermal conductivity. The opposite vertical wall and the horizontal walls are assumed to be isothermal and adiabatic, respectively. The governing steady-state partial differential equations for the fluid and solid region are solved simultaneously using a control volume formulation, coupled with an additive correction multigrid procedure that increases the convergence rate of the solution. The fluid Prandtl number and heater/fluid thermal conductivity ratio are fixed at 25 and 2350, respectively, corresponding to a dielectric fluid (FC-77) and heaters manufactured from silicon. With increasing modified Rayleigh number (10(4) less than or equal to Ra-Lz* less than or equal to 10(9)), the cavity flow becomes more boundary layer-like along the vertical walls and multiple fluid cells develop in the central region. Thermal spreading in the substrate increases with decreasing modified Rayleigh number and with increasing values of the substrate/fluid thermal conductivity ratio (10(-1) less than or equal to R(s) less than or equal to 10(3)). For large R(s), the discrete heat sources lose their thermal identity, and the streamlines and isotherms resemble those associated with a differentially heated cavity. Thermal spreading in the substrate also has a significant effect on circulation in the cavity a nd on maximum surface temperatures.
引用
收藏
页码:511 / 518
页数:8
相关论文
共 50 条
  • [1] Conjugate natural convection from an array of protruding heat sources
    Heindel, TJ
    Ramadhyani, S
    Incropera, FP
    NUMERICAL HEAT TRANSFER PART A-APPLICATIONS, 1996, 29 (01) : 1 - 18
  • [2] Numerical study of natural convection in a cavity with discrete heat sources
    Ali Doostali
    Marzieh Rezazadeh
    The European Physical Journal Plus, 133
  • [3] Numerical study of natural convection in a cavity with discrete heat sources
    Doostali, Ali
    Rezazadeh, Marzieh
    EUROPEAN PHYSICAL JOURNAL PLUS, 2018, 133 (12):
  • [4] Enhancement of natural convection heat transfer from an array of discrete heat sources
    Heindel, TJ
    Incropera, FP
    Ramadhyani, S
    INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 1996, 39 (03) : 479 - 490
  • [5] CHARACTERISTICS OF NATURAL CONVECTION HEAT TRANSFER IN AN ARRAY OF DISCRETE HEAT SOURCES
    Habib, M. A.
    Said, S. A. M.
    Ayinde, T.
    EXPERIMENTAL HEAT TRANSFER, 2014, 27 (01) : 91 - 111
  • [6] NATURAL CONVECTION IN A RECTANGULAR ENCLOSURE WITH AN ARRAY OF DISCRETE HEAT SOURCES
    Saravanan, S.
    Nayaki, V. P. M. Senthil
    Kandaswamy, P.
    HEAT TRANSFER RESEARCH, 2017, 48 (05) : 391 - 399
  • [7] An experimental study on convection heat transfer from an array of discrete heat sources
    Baskaya, S
    Erturhan, U
    Sivrioglu, M
    INTERNATIONAL COMMUNICATIONS IN HEAT AND MASS TRANSFER, 2005, 32 (1-2) : 248 - 257
  • [8] NUMERICAL STUDY OF NATURAL-CONVECTION FROM DISCRETE HEAT-SOURCES IN A VERTICAL SQUARE ENCLOSURE
    AHMED, GR
    YOVANOVICH, MM
    JOURNAL OF THERMOPHYSICS AND HEAT TRANSFER, 1992, 6 (01) : 121 - 127
  • [9] Conjugate natural convection from an array of discrete heat sources .1. Two- and three-dimensional model validation
    Heindel, TJ
    Ramadhyani, S
    Incropera, FP
    INTERNATIONAL JOURNAL OF HEAT AND FLUID FLOW, 1995, 16 (06) : 501 - 510
  • [10] Natural convection to air from an array of vertical parallel plates with discrete and protruding heat sources
    Fujii, M
    Gima, S
    Tomimura, T
    Zhang, X
    INTERNATIONAL JOURNAL OF HEAT AND FLUID FLOW, 1996, 17 (05) : 483 - 490