Three-dimensional optimization of a heat sink performance using the combined active and passive methods

被引:0
|
作者
Jamal-Eddine Salhi
Tarik Zarrouk
Mohammed Chennaif
Mohammed Benaichi
Merzouki Salhi
Najim Salhi
机构
[1] Mohammed 1er,équipe des Sciences des Matériaux, Énergies Nouvelles et Applications, Laboratoire LPTPME, Département de Physique, Faculté des sciences
[2] Université,undefined
[3] CREHEIO (Centre de Recherche de l’Ecole des Hautes Etudes d’Ingénierie),undefined
[4] University Mohammed 1st,undefined
关键词
CFD; SIMPLE algorithm; Nanofluid; Al; O; Heat transfer; Nusselt number; Colburn coefficient;
D O I
暂无
中图分类号
学科分类号
摘要
The present study aims to investigate the effects of the presence of vortex generators in the cooling fluid flow of a microchannel heat sink and to seek to optimize its performance in terms of heat transfer. In addition, the cooling fluid used is a pure water solution in the presence of aluminum oxide (Al2O3) nanoparticles. The numerical simulation is performed for different cases. Each case is characterized by the rate of the volume fraction of aluminum (Al2O3) in the presence of the base fluid (pure water). Four cases were studied in which the rate of the volume fraction of aluminum (Al2O3) suspended in the base fluid was chosen equal to 1%, 2%, 3%, and 4%, respectively. The heat sink is a microchannel, and the numerical simulations are performed for a Reynolds number in the range (600, 1400). A finite volume scheme resolves the system of differential equations governing the physical problem according to the imposed boundary conditions. The problem of pressure–velocity coupling, imposed by the presence of pressure by its gradient in the equations of the algebraic system to be solved, is solved by using the semi-implicit method for pressure-linked equation (SIMPLE) algorithm. The different thermal factors: the Nusselt number, the friction factor, and the thermal performance enhancement factor, and the two physical fields: the velocity and the temperature field, have been analyzed. The results obtained show that, for Re = 600, the value of Nu increased with increasing concentrations of 5.68, 8.16, 10.08, and 11.66 for a concentration equal to 1%, 2%, 3%, and 4%, respectively. The results also show that playing a vortex generator with a constant concentration equal to 2% could further improve the thermal performance improvement factor from 25 to 67%. Accordingly, the configuration corresponding to Case 2 performs better in heat transfer than the others. Finally, new correlations to predict the friction factor, Colburn j-factor, and Nusselt number as a Reynolds number and design function are located at the end of this study.
引用
收藏
页码:229 / 241
页数:12
相关论文
共 50 条
  • [31] Three-dimensional scapulothoracic motion during active and passive arm elevation
    Ebaugh, DD
    McClure, PW
    Karduna, AR
    CLINICAL BIOMECHANICS, 2005, 20 (07) : 700 - 709
  • [32] Modeling of nonlinear active and passive devices in three-dimensional TLM networks
    Cascio, L
    Tardioli, G
    Hoefer, WJR
    1997 IEEE MTT-S INTERNATIONAL MICROWAVE SYMPOSIUM DIGEST, VOLS I-III: HIGH FREQUENCIES IN HIGH PLACES, 1997, : 383 - 386
  • [33] Passive and active controls of three-dimensional wake of bluff-body
    Higuchi, H
    JSME INTERNATIONAL JOURNAL SERIES B-FLUIDS AND THERMAL ENGINEERING, 2005, 48 (02) : 322 - 327
  • [34] Performance prediction of an adsorption chiller combined with heat recovery and mass recovery by a three-dimensional model
    He, Fang
    Nagano, Katsunori
    Togawa, Junya
    ENERGY, 2023, 277
  • [35] Structural Optimization and Heat Transfer Performance Analysis of a Cone-Column Combined Heat Sink
    Zheng Wei
    Sun Jianjun
    Niu Tao
    Ma Chenbo
    Yu Qiuping
    Zhang Yuyan
    JOURNAL OF HEAT TRANSFER-TRANSACTIONS OF THE ASME, 2020, 142 (04):
  • [36] Performance analysis and optimization of three-dimensional FDTD on GPU using roofline model
    Kim, Ki-Hwan
    Kim, KyoungHo
    Park, Q-Han
    COMPUTER PHYSICS COMMUNICATIONS, 2011, 182 (06) : 1201 - 1207
  • [37] Parallelization methods for three-dimensional fluid code using high performance Fortran
    Sakagami, H
    Mizuno, T
    Furubayashi, S
    PARALLEL COMPUTATIONAL FLUID DYNAMICS: NEW FRONTIERS AND MULTI-DISCIPLINARY APPLICATIONS, PROCEEDINGS, 2003, : 203 - 210
  • [38] Three-dimensional analysis of fluid flow and heat transfer in the microchannel heat sink using additive-correction multigrid technique
    Asgari, Omid
    Saidi, Mohammad
    PROCEEDINGS OF THE MICRO/NANOSCALE HEAT TRANSFER INTERNATIONAL CONFERENCE 2008, PTS A AND B, 2008, : 679 - 689
  • [39] Study of combined heat transfer in a three-dimensional enclosure with a protruding heat source
    Baek, CI
    Lee, KS
    Kim, WS
    NUMERICAL HEAT TRANSFER PART A-APPLICATIONS, 1997, 32 (07) : 733 - 747
  • [40] Performance of three-dimensional slope stability methods in practice
    Stark, TD
    Eid, HT
    JOURNAL OF GEOTECHNICAL AND GEOENVIRONMENTAL ENGINEERING, 1998, 124 (11) : 1049 - 1060