Effect of external magnetic field on thermal conductivity and viscosity of magnetic nanofluids: a review

被引:52
作者
Doganay, Serkan [1 ]
Alsangur, Rahime [1 ]
Turgut, Alpaslan [2 ]
机构
[1] Dokuz Eylul Univ, Grad Sch Nat & Appl Sci, Mechatron Engn Dept, Izmir, Turkey
[2] Dokuz Eylul Univ, Dept Mech Engn, Izmir, Turkey
关键词
magnetic nanofluid; thermal conductivity; viscosity; magnetic field; microfluidics; magnetic actuation; PARTICLE-SIZE DISTRIBUTION; FATTY-ACID SURFACTANT; HEAT-TRANSFER; RHEOLOGICAL PROPERTIES; FE3O4; NANOFLUIDS; FLUID; FERROFLUIDS; NANOPARTICLES; ENHANCEMENT; TEMPERATURE;
D O I
10.1088/2053-1591/ab44e9
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Magnetic nanofluids are colloidal mixtures of ferromagnetic nanoparticles dispersed in a base fluid. They can be actuated and manipulated under the influence of the external magnetic field. This makes them especially attractive to be employed in microfluidics and nanofluidics. In the presence of the external magnetic field, thermal conductivity and viscosity of the magnetic nanofluids can be tuned, hence magnetic field dependent thermal conductivity and viscosity measurements have become a hot topic for the researchers. In this paper, studies in the available literature on the thermal conductivity and the viscosity of the magnetic nanofluids in the presence of the magnetic field have been collected, compared and discussed. The observations reveal that there is a contradiction between the results which were presented in the literature. The differences between the available experimental results which may be caused by the application of the external magnetic field have been discussed by categorizing and comparing the studies which investigated the influence of the similar parameters by using most similar samples. Additionally, magnetic field dependent thermal conductivity and viscosity models available in the literature have been reviewed.
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页数:29
相关论文
共 136 条
[21]   Nanofluids for enhanced economics and safety of nuclear reactors: An evaluation of the potential features, issues, and research gaps [J].
Buongiorno, Jacopo ;
Hu, Lin-Wen ;
Kim, Sung Joong ;
Hannink, Ryan ;
Truong, Bao ;
Forrest, Eric .
NUCLEAR TECHNOLOGY, 2008, 162 (01) :80-91
[22]   A coaxial cable magnetic field sensor based on ferrofluid filled Fabry-Perot interferometer structure [J].
Cheng, Baokai ;
Yuan, Lei ;
Zhu, Wenge ;
Song, Yang ;
Xiao, Hai .
SENSORS AND ACTUATORS A-PHYSICAL, 2017, 257 :194-197
[23]   Effects of Surface Modification on the Stability of Suspension and Thermal Conductivity Enhancement of Composite Fe Nanofluids [J].
Cheng, Haibin ;
Zhang, Pan ;
Zhang, Qingjie ;
Wu, Jianfeng ;
Dai, Yawen ;
Hu, Wei ;
Wereley, Norman M. .
IEEE TRANSACTIONS ON MAGNETICS, 2014, 50 (11)
[24]   Effect of the magnetic field direction on forced convection heat transfer enhancements in ferrofluids [J].
Cherief, Wahid ;
Avenas, Yvan ;
Ferrouillat, Sebastien ;
Kedous-Lebouc, Afef ;
Jossic, Laurent ;
Berard, Jean ;
Petit, Mickael .
EUROPEAN PHYSICAL JOURNAL-APPLIED PHYSICS, 2015, 71 (01)
[25]   Influence of chain length of long-chain fatty acid surfactant on the thermal conductivity of magnetite nanofluids in a magnetic field [J].
Dadwal, Arun ;
Joy, P. A. .
COLLOIDS AND SURFACES A-PHYSICOCHEMICAL AND ENGINEERING ASPECTS, 2018, 555 :525-531
[26]   Suitability of magnetic nanofluid in heat transfer loops [J].
Devi, Praveena N. ;
Rao, Ch Srinivasa ;
Kumar, Kiran K. .
INTERNATIONAL JOURNAL OF HEAT AND TECHNOLOGY, 2018, 36 (01) :195-200
[27]  
Djurek I, 2007, CROAT CHEM ACTA, V80, P529
[28]   Magnetic field dependent thermal conductivity measurements of magnetic nanofluids by 3ω method [J].
Doganay, Serkan ;
Turgut, Alpaslan ;
Cetin, Levent .
JOURNAL OF MAGNETISM AND MAGNETIC MATERIALS, 2019, 474 :199-206
[29]   Fe3O4/sepiolite magnetic composite particles and their magneto- responsive characteristics [J].
Dong, Yu Zhen ;
Piao, Shang Hao ;
Choi, Hyoung Jin .
COLLOID AND POLYMER SCIENCE, 2018, 296 (01) :11-19
[30]   Magnetic nanoparticles adapted for specific biomedical applications [J].
Dutz, Silvio ;
Mueller, Robert ;
Eberbeck, Dietmar ;
Hilger, Ingrid ;
Zeisberger, Matthias .
BIOMEDICAL ENGINEERING-BIOMEDIZINISCHE TECHNIK, 2015, 60 (05) :405-416