Heat and fluid flow analysis of metal foam embedded in a double-layered sinusoidal heat sink under local thermal non-equilibrium condition using nanofluid

被引:0
作者
Hossein Arasteh
Ramin Mashayekhi
Marjan Goodarzi
S. Hossein Motaharpour
Mahidzal Dahari
Davood Toghraie
机构
[1] Isfahan University of Technology,Department of Mechanical Engineering
[2] Islamic Azad University,Young Researchers and Elite Club, Khomeinishahr Branch
[3] Ton Duc Thang University,Sustainable Management of Natural Resources and Environment Research Group, Faculty of Environment and Labour Safety
[4] University of Malaya,Department of Electrical Engineering, Faculty of Engineering
[5] Islamic Azad University,Department of Mechanical Engineering, Khomeinishahr Branch
来源
Journal of Thermal Analysis and Calorimetry | 2019年 / 138卷
关键词
Porous medium; Metal foam; Local thermal non-equilibrium; Nanofluid; Double-layered channel; Sinusoidal channel; Heat sink;
D O I
暂无
中图分类号
学科分类号
摘要
The present study aims to enhance the hydrothermal performance of a porous sinusoidal double-layered heat sink using nanofluid. The optimum thickness of metal foam (nickel) for different Reynolds numbers ranging from 10 to 100 for the laminar regime and Darcy numbers ranging from 10−4 to 10−2 is obtained. At the optimum porous thicknesses, nanofluid (silver–water) with three volume fractions of nanoparticles equal to 2, 3, and 4% is employed to enhance the heat sink thermal performance. Darcy–Brinkman–Forchheimer model and the local thermal non-equilibrium model or two equations method are employed to model the momentum equation and energy equations in the porous region, respectively. It was found that in the cases of Darcy numbers 10−4, 10−3, and 10−2 the dimensionless optimum porous thicknesses are 0.8, 0.8, and 0.2, respectively. It was also obtained that the maximum PEC number is 2.12 and it corresponds to the case with Darcy number 10−2, Reynolds number 40, and volume fraction of nanoparticles 0.04. The validity of local thermal equilibrium (LTE) assumption was investigated, and it was found that increasing the Darcy number which results in an enhancement in porous particle diameter leads to some errors in results, under LTE condition.
引用
收藏
页码:1461 / 1476
页数:15
相关论文
共 185 条
  • [1] Heydari A(2018)The effect of attack angle of triangular ribs on heat transfer of nanofluids in a microchannel J Therm Anal Calorim 131 2893-2912
  • [2] Akbari OA(2017)Application of a novel conical strip insert to improve the efficacy of water–Ag nanofluid for utilization in thermal systems: a two-phase simulation Energy Convers Manag 151 573-586
  • [3] Safaei MR(2017)The numerical investigation of heat transfer and pressure drop of turbulent flow in a triangular microchannel Physica E 93 179-189
  • [4] Derakhshani M(2017)Analysis of heat transfer and nanofluid fluid flow in microchannels with trapezoidal, rectangular and triangular shaped ribs Physica E 91 15-31
  • [5] Alrashed AAAA(1999)Analysis of variants within the porous media transport models ASME J Heat Transf 122 303-326
  • [6] Mashayekhi R(2017)Experiment and Lattice Boltzmann numerical study on nanofluids flow in a micromodel as porous medium Physica E 94 15-21
  • [7] Ahmadi Sheikh Shabani Gh(2000)Flow and heat transfer correlations for porous fin in a plate-fin heat exchanger ASME J Heat Transf 122 572-578
  • [8] Zarringhalam M(2016)The effects of porosity and permeability on fluid flow and heat transfer of multi walled carbon nano-tubes suspended in oil (MWCNT/Oil nano-fluid) in a microchannel filled with a porous medium Physica E 84 423-433
  • [9] Khang Nguyen T(2018)Investigation of permeability effect on slip velocity and temperature jump boundary conditions for FMWNT/water nanofluid flow and heat transfer inside a microchannel filled by a porous media Physica E 97 226-238
  • [10] Mashayekhi R(2019)Optimal distribution of metal foam inserts in a double-pipe heat exchanger Int J Numer Meth Heat Fluid Flow 82 1-17