Experimental investigation of heat transfer enhancement, thermal efficiency, and pressure drop in forced convection of magnetic hybrid nanofluid (Fe3O4/TiO2) under varied magnetic field strengths and waveforms

被引:1
|
作者
Adogbeji, Victor O. [1 ]
Sharifpur, Mohsen [1 ,2 ,3 ]
Meyer, Josua P. [1 ,4 ]
机构
[1] Univ Pretoria, Dept Mech & Aeronaut Engn, Private Bag X20, ZA-0028 Pretoria, South Africa
[2] Univ Witwatersrand, Sch Mech Ind & Aeronaut Engn, Private Bag 3, ZA-2050 Johannesburg, South Africa
[3] China Med Univ, China Med Univ Hosp, Dept Med Res, Taichung, Taiwan
[4] Stellenbosch Univ, Dept Mech & Mechatron Engn, Stellenbosch, South Africa
关键词
Varied magnetic field strengths; Waveforms; Hybrid nanofluid; Heat transfer; Convective flow; Thermal efficiency; Pressure drop; Frequency optimization; Nanoparticle concentration; Turbulent forced convection; FLOW; CONSTANT; WATER;
D O I
10.1016/j.csite.2024.105313
中图分类号
O414.1 [热力学];
学科分类号
摘要
Applying a magnetic field to influence convective flow of ferrofluids has become an efficient method for enhancing heat transfer in thermal systems, particularly in straight tubes. This study investigates the heat transfer properties of Fe3O4/TiO2 nanofluids within a heated copper tube under varied magnetic field strengths and waveforms. Optimal magnetic field conditions were determined at 4 V and 60 Hz across all waveform types, as higher frequencies and voltages increased magnetic field intensity, thereby reducing heat transfer rates. Magnetic waveforms exerted differential influences on pressure drop, indicating varied nanoparticle alignment and turbulence levels, impacting fluid flow dynamics and viscosity. Higher nanoparticle concentration (0.1% vol) correlated with increased pressure drops across sine, square, and triangular waveforms, suggesting heightened flow resistance and potential nanoparticle agglomeration, thus reducing thermal efficiency. Conversely, lower concentrations exhibited enhanced thermal performance due to improved nanoparticle dispersion and reduced thermal resistance. At 0.1% vol, heat transfer enhancement without a magnetic field was 16.5%. The introduction of magnetic field waveforms attenuated this enhancement: 15.3% (sine), 13.26% (square), and 12.59% (triangular). Conversely, at lower volume fractions, heat transfer enhancements with magnetic fields exceeded those without at 0.05% vol, enhancements were 20.92% (sine), 21.3% (square), and 21.34% (triangular); at 0.025% vol, enhancements were 22.07% (sine), 22.3% (square), and 21.32% (triangular); at 0.0125% vol, enhancements were 27.87% (sine), 28.21% (square), and 26.74% (triangular); and at 0.0065% vol, enhancements were 22.24% (sine), 22.3% (square), and 24.49% (triangular).
引用
收藏
页数:23
相关论文
共 50 条
  • [31] Modeling of turbulent forced convective heat transfer and friction factor in a tube for Fe3o4 magnetic nanofluid with computational fluid dynamics
    Moraveji, Mostafa Keshavarz
    Hejazian, Majid
    INTERNATIONAL COMMUNICATIONS IN HEAT AND MASS TRANSFER, 2012, 39 (08) : 1293 - 1296
  • [32] Experimental evaluation of forced convective heat transfer of Fe3O4 ferrofluid in a horizontal u-shaped tube under variable magnetic field effect based on Taguchi approach
    Eslahchi, Ali
    Nobakhti, Mohammad Hasan
    Shafii, Mohammad Behshad
    Bonab, Mohammad Hosein Dibaei
    JOURNAL OF THE BRAZILIAN SOCIETY OF MECHANICAL SCIENCES AND ENGINEERING, 2021, 43 (04)
  • [33] Predicting heat transfer performance of Fe3O4-Cu/water hybrid nanofluid under constant magnetic field using ANN
    Taskesen, Edip
    Dirik, Mahmut
    Tekir, Mutlu
    Pazarlioglu, Hayati Kadir
    JOURNAL OF THERMAL ENGINEERING, 2023, 9 (03): : 811 - 822
  • [34] Thermophysical properties of Fe3O4@CNT nanofluid and controllable heat transfer performance under magnetic field
    Shi, Lei
    He, Yurong
    Hu, Yanwei
    Wang, Xinzhi
    ENERGY CONVERSION AND MANAGEMENT, 2018, 177 : 249 - 257
  • [35] Magnetic field dependent thermal conductivity investigation of water based Fe3O4/CNT and Fe3O4/graphene magnetic hybrid nanofluids using a Helmholtz coil system setup
    Alsangur, R.
    Doganay, S.
    Ates, I
    Turgut, A.
    Cetin, L.
    Rebay, M.
    DIAMOND AND RELATED MATERIALS, 2024, 141
  • [36] AN EXPERIMENTAL STUDY ON THE THERMAL EFFICIENCY OF AN AIR-TO-AIR HEAT EXCHANGER WITH ETHYLENE GLYCOL (EG)-BASED HYBRID NANOFLUID Al2O3 + TiO2
    Ozturk, Ahmet
    HEAT TRANSFER RESEARCH, 2022, 53 (13) : 59 - 73
  • [37] Experimental Study of Thermal Performance of a Newly Designed Pulsating Heat Pipe with Fe3O4 Nanofluid-Exposed Magnetic Field and Corrugated Evaporator
    Jajarm, Ali Reza Alizadeh
    Goshayeshi, Hamid Reza
    Bashirnezhad, Kazem
    INTERNATIONAL JOURNAL OF THERMOPHYSICS, 2022, 43 (03)
  • [38] The effect of external force and magnetic field on atomic behavior and pool boiling heat transfer of Fe3O4/ammonia nanofluid: A molecular dynamics simulation
    Dong, Shouliang
    Majdi, Hasan Sh.
    Alizadeh, As'ad
    Thaibat, Russul
    Hashim, Furqan S.
    Abdullah, Hasan Mohammed
    Aziz, Qusay Husam
    Hekmatifar, Maboud
    Sabetvand, Rozbeh
    JOURNAL OF THE TAIWAN INSTITUTE OF CHEMICAL ENGINEERS, 2023, 145
  • [39] Investigating control of convective heat transfer and flow resistance of Fe3O4/deionized water nanofluid in magnetic field in laminar flow
    Gao, Dongdong
    Bai, Minli
    Hu, Chengzhi
    Lv, Jizu
    Wang, Chenfei
    Zhang, Xue
    NANOTECHNOLOGY, 2020, 31 (49)
  • [40] Natural convection of Al2O3-Cu/water hybrid nanofluid within a tilted cavity: Investigation of effect of thermal boundary conditions and angle of magnetic field
    Irshad, Sadia
    Jahan, Shah
    Ali, Muhammad Hussain
    Sohail, Muhammad
    INTERNATIONAL JOURNAL OF COMPUTATIONAL MATERIALS SCIENCE AND ENGINEERING, 2024,