CFD simulation of nanofluid heat transfer considering the aggregation of nanoparticles in population balance model

被引:0
|
作者
Yavar Karimi
Ali Reza Solaimany Nazar
Mohsen Motevasel
机构
[1] University of Isfahan,Department of Chemical Engineering
[2] Petroleum University of Technology,Shahid Tondgooyan Faculty of Petroleum
关键词
Nanofluid heat transfer; Computational fluid dynamics; Population balance model; Nanoparticles aggregation;
D O I
暂无
中图分类号
学科分类号
摘要
The effect of nanoparticles aggregation on the heat transfer coefficient in a heat dissipation process of a circular tube is evaluated through computational fluid dynamics (CFD) technique, and the simulation results are compared to experimental data. The experimental data of MgO/CuO/Al2O3 water-based nanofluids which were obtained in our previous study under turbulent flow regime and Reynolds numbers ranging from 11,000 to 47,000 are used to validate the CFD results. Two-phase mixture and k-ε RNG turbulence models are coupled with the population balance model (PBM) to consider the impact of nanoparticles aggregation in the flow domain using the commercial CFD software ANSYS Fluent 17.2. The particle size distribution (PSD) determined by conducting dynamic light scattering (DLS) analysis for nanoparticle concentrations of 0.02, 0.05, 0.07 and 0.09%v. is fed to solve the governing equations. The CFD model with aggregation results is in very good agreement with the experimental data, and the maximum relative absolute average deviation (RAAD) from the experiments is about 7.5%, while the CFD model without aggregation leads to less accurate results with maximum 17.56% deviation compared to experimental data. The consideration of the aggregation effect with accurate PSD data enhances the CFD simulation and makes its outcomes more reliable.
引用
收藏
页码:671 / 684
页数:13
相关论文
共 50 条
  • [21] SIMULATION OF NANOFLUID HEAT TRANSFER ENHANCEMENT WITH LBM
    Guo, Yali
    Qin, Daoyang
    Shen, Shengqiang
    Xu, Hehan
    Yang, Yong
    Li, Yeqing
    PROCEEDINGS OF THE ASME SUMMER HEAT TRANSFER CONFERENCE, 2012, VOL 2, 2012, : 125 - 132
  • [22] Simulation of oscillatory baffled column: CFD and population balance
    Ekambara, K.
    Dhotre, M. T.
    CHEMICAL ENGINEERING SCIENCE, 2007, 62 (24) : 7205 - 7213
  • [23] Numerical simulation of convective heat transfer of nonhomogeneous nanofluid using Buongiorno model
    Sayyar, Ramin Onsor
    Saghafian, Mohsen
    HEAT AND MASS TRANSFER, 2017, 53 (08) : 2627 - 2636
  • [24] Numerical simulation of convective heat transfer of nonhomogeneous nanofluid using Buongiorno model
    Ramin Onsor Sayyar
    Mohsen Saghafian
    Heat and Mass Transfer, 2017, 53 : 2627 - 2636
  • [25] Numerical simulation for heat transfer intensification of nanofluid in a porous curved enclosure considering shape effect of Fe3O4 nanoparticles
    Sheikholeslami, M.
    Shamlooei, M.
    Moradi, R.
    CHEMICAL ENGINEERING AND PROCESSING-PROCESS INTENSIFICATION, 2018, 124 : 71 - 82
  • [26] Axial dispersion/population balance model of heat transfer in turbulent fluidization
    Suele, Zoltan
    Lakatos, Bela G.
    Mihalyko, Csaba
    19TH EUROPEAN SYMPOSIUM ON COMPUTER AIDED PROCESS ENGINEERING, 2009, 26 : 719 - 724
  • [27] CFD SIMULATION OF FORCED CONVECTIVE HEAT TRANSFER BY TETRAKAIDECAHEDRON MODEL IN METAL FOAMS
    Zafari, Mohammad
    Panjepour, Masoud
    Meratian, Mahmood
    Emami, Mohsen Davazdah
    JOURNAL OF POROUS MEDIA, 2016, 19 (01) : 1 - 11
  • [28] Simulation of a Plate Heat Exchanger Operating with Nanofluid Coolant Using CFD
    Rezende, Tiari R.
    Vianna, Regina F.
    Luporini, Samuel
    INTERNATIONAL JOURNAL OF HEAT AND TECHNOLOGY, 2021, 39 (01) : 235 - 240
  • [29] Heat Transfer by Nanofluid with Different Nanoparticles in a Solar Collector
    Nasrin, Rehena
    Alim, M.
    HEAT TRANSFER-ASIAN RESEARCH, 2014, 43 (01): : 61 - 79
  • [30] Simulation of MHD CuO-water nanofluid flow and convective heat transfer considering Lorentz forces
    Sheikholeslami, Mohsen
    Bandpy, Mofid Gorji
    Ellahi, R.
    Zeeshan, A.
    Journal of Magnetism and Magnetic Materials, 2014, 369 : 69 - 80