Numerical simulation of natural convection of latent heat phase-change-material microcapsulate slurry packed in a horizontal rectangular enclosure heated from below and cooled from above

被引:0
作者
Hideo Inaba
Yanlai Zhang
Akihiko Horibe
Naoto Haruki
机构
[1] Okayama University,Graduate School of Natural Science and Technology
来源
Heat and Mass Transfer | 2007年 / 43卷
关键词
Heat Transfer Coefficient; Nusselt Number; Natural Convection; Mass Concentration; Rayleigh Number;
D O I
暂无
中图分类号
学科分类号
摘要
A two-dimensional numerical simulation of natural convection in a rectangular enclosure heated from below and cooled from above has been conducted with non-Newtonian phase-change-material (PCM) microcapsulate slurry with latent heat capacities. The formulation of the mathematical model in dimensionless co-ordinates and discretization of the governing equations have been done using the finite volume method. Both natural convection and heat transfer characteristics are discussed about natural convection with PCM microcapsulate slurry, which exhibits the pseudoplastic non-Newtonian fluid behavior and a peak value in the specific heat capacity with latent heat. The viscosity of the present PCM microcapsulate slurry is assumed to follow the Ostwald-de Waele power law fluid model with the power-law index n and the consistency coefficient K. The effects of phase-change material, the mass concentration, and the aspect ratio Ar on the natural convection heat transfer are described, respectively. By comparing with the results of microcapsule slurry without phase change, the enhancement in heat transfer is found in microcapsule slurry with phase change during the phase change temperature range. Numerical simulations are performed in the following parametric ranges: the width–height aspect ratio of the enclosure Ar from 2 to 20, the mass concentrations Cm of the slurry from 10 to 40%, power law index n of the slurry from 0.89 to 1.0 and Rayleigh numbers Ra ranges from 103 to 107.
引用
收藏
页码:459 / 470
页数:11
相关论文
共 47 条
  • [1] Inaba H(2003)Numerical simulation of Rayleigh–Bénard convection in non-Newtonian phase-change-material slurry Int J Therm Sci 42 471-480
  • [2] Dai C(1995)Cold heat-release characteristics of phase-change by air-emulsion direct-contact heat exchange method Int J Heat Mass Transf 39 1797-1803
  • [3] Horibe A(2004)An experimental study of enhanced heat transfer in rectangular PCM thermal storage Int J Heat Mass Transf 47 2841-2847
  • [4] Inaba H(2003)Review on thermal energy storage with phase change: materials, heat transfer analysis and applications Appl Therm Eng 23 251-283
  • [5] Morita S(2000)New challenge in advanced thermal energy transportation using functionally thermal fluid Int J Therm Sci 39 991-1003
  • [6] Uroš S(1977)Natural convection patterns in a long inclined rectangular box heated from below Int J Heat Mass Transf 20 123-129
  • [7] Zalba B(1994)Laminar forced convection heat transfer in microcapsulated phase change material suspensions Int J Heat Mass Transf 37 593-604
  • [8] Marín JM(1995)Flow and cold heat-storage characteristics of phase-change emulsion in a coiled double-tube heat exchanger ASME J Heat Transf 117 440-446
  • [9] Cabeza LF(2003)Natural convection heat transfer of microemulsion phase-change-material slurry in rectangular cavities heated from below and cooling from above Int J Heat Mass Transf 46 4427-4438
  • [10] Mehling H(1993)A comparison of different solution methodologies for melting and solidification problems in enclosures Numer Heat Transf Part B 24 77-105