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Anomalously increased effective thermal conductivities of ethylene glycol-based nanofluids containing copper nanoparticles

Applied Physics Letters · 2001 · Vol. 78(6) · pp. 718–720
J. A. EastmanSoo-Chang ChoiShuai LiWilliam W. YuL. J. Thompson

Abstract

It is shown that a “nanofluid” consisting of copper nanometer-sized particles dispersed in ethylene glycol has a much higher effective thermal conductivity than either pure ethylene glycol or ethylene glycol containing the same volume fraction of dispersed oxide nanoparticles. The effective thermal conductivity of ethylene glycol is shown to be increased by up to 40% for a nanofluid consisting of ethylene glycol containing approximately 0.3 vol % Cu nanoparticles of mean diameter <10 nm. The results are anomalous based on previous theoretical calculations that had predicted a strong effect of particle shape on effective nanofluid thermal conductivity, but no effect of either particle size or particle thermal conductivity.

Nanofluid Flow and Heat TransferPower Transformer Diagnostics and InsulationHeat and Mass Transfer in Porous MediaNanofluidEthylene glycolThermal conductivityNanoparticleMaterials scienceVolume fractionCopperParticle (ecology)Particle sizeChemical engineering
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A treatise on electricity and magnetism
Journal of the Franklin Institute · 1954 · 9,128 citations
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