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    Thermal Nanofluid Property Model With Application to Nanofluid Flow in a Parallel-Disk System—Part I: A New Thermal Conductivity Model for Nanofluid Flow

    Source: Journal of Heat Transfer:;2012:;volume( 134 ):;issue: 005::page 51002
    Author:
    Clement Kleinstreuer
    ,
    Yu Feng
    DOI: 10.1115/1.4005632
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: This is a two-part paper, which proposes a new theory explaining the experimentally observed enhancement of the thermal conductivity, knf , of nanofluids (Part I) and discusses simulation results of nanofluid flow in a radial parallel-plate channel using different knf -models (Part II). Specifically, Part I provides the derivation of the new model as well as comparisons with benchmark experimental data sets and other theories, focusing mainly on aluminum and copper oxide nanoparticles in water. The new thermal conductivity expression consists of a base-fluid static part, kbf , and a new “micromixing” part, kmm , i.e., knf = kbf + kmm . While kbf relies on Maxwell’s theory, kmm encapsulates nanoparticle characteristics and liquid properties as well as Brownian-motion induced nanoparticle fluctuations, nanoparticle volume fractions, mixture-temperature changes, particle–particle interactions, and random temperature fluctuations causing liquid-particle interactions. Thus, fundamental physics principles include the Brownian-motion effect, an extended Langevin equation with scaled interaction forces, and a turbulence-inspired heat transfer equation. The new model predicts experimental data for several types of metal-oxide nanoparticles (20 < dp < 50 nm) in water with volume fractions up to 5% and mixture temperatures below 350 K. While the three competitive theories considered match selectively experimental data, their needs for curve-fitted functions and arbitrary parameters make these models not generally applicable. The new theory can be readily extended to accommodate other types of nanoparticle-liquid pairings and to include nonspherical nanomaterial.
    keyword(s): Force , Temperature , Fluids , Particulate matter , Nanoparticles , Thermal conductivity , Equations , Nanofluids , Water AND Brownian motion ,
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      Thermal Nanofluid Property Model With Application to Nanofluid Flow in a Parallel-Disk System—Part I: A New Thermal Conductivity Model for Nanofluid Flow

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    http://yetl.yabesh.ir/yetl1/handle/yetl/149455
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    contributor authorClement Kleinstreuer
    contributor authorYu Feng
    date accessioned2017-05-09T00:52:14Z
    date available2017-05-09T00:52:14Z
    date copyrightMay, 2012
    date issued2012
    identifier issn0022-1481
    identifier otherJHTRAO-27940#051002_1.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/149455
    description abstractThis is a two-part paper, which proposes a new theory explaining the experimentally observed enhancement of the thermal conductivity, knf , of nanofluids (Part I) and discusses simulation results of nanofluid flow in a radial parallel-plate channel using different knf -models (Part II). Specifically, Part I provides the derivation of the new model as well as comparisons with benchmark experimental data sets and other theories, focusing mainly on aluminum and copper oxide nanoparticles in water. The new thermal conductivity expression consists of a base-fluid static part, kbf , and a new “micromixing” part, kmm , i.e., knf = kbf + kmm . While kbf relies on Maxwell’s theory, kmm encapsulates nanoparticle characteristics and liquid properties as well as Brownian-motion induced nanoparticle fluctuations, nanoparticle volume fractions, mixture-temperature changes, particle–particle interactions, and random temperature fluctuations causing liquid-particle interactions. Thus, fundamental physics principles include the Brownian-motion effect, an extended Langevin equation with scaled interaction forces, and a turbulence-inspired heat transfer equation. The new model predicts experimental data for several types of metal-oxide nanoparticles (20 < dp < 50 nm) in water with volume fractions up to 5% and mixture temperatures below 350 K. While the three competitive theories considered match selectively experimental data, their needs for curve-fitted functions and arbitrary parameters make these models not generally applicable. The new theory can be readily extended to accommodate other types of nanoparticle-liquid pairings and to include nonspherical nanomaterial.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleThermal Nanofluid Property Model With Application to Nanofluid Flow in a Parallel-Disk System—Part I: A New Thermal Conductivity Model for Nanofluid Flow
    typeJournal Paper
    journal volume134
    journal issue5
    journal titleJournal of Heat Transfer
    identifier doi10.1115/1.4005632
    journal fristpage51002
    identifier eissn1528-8943
    keywordsForce
    keywordsTemperature
    keywordsFluids
    keywordsParticulate matter
    keywordsNanoparticles
    keywordsThermal conductivity
    keywordsEquations
    keywordsNanofluids
    keywordsWater AND Brownian motion
    treeJournal of Heat Transfer:;2012:;volume( 134 ):;issue: 005
    contenttypeFulltext
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    DSpace software copyright © 2002-2015  DuraSpace
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