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Role of Brownian motion in the enhanced thermal conductivity of nanofluids

Applied Physics Letters · 2004 · Vol. 84(21) · pp. 4316–4318
Seok Pil JangStephen U. S. Choi

Abstract

We have found that the Brownian motion of nanoparticles at the molecular and nanoscale level is a key mechanism governing the thermal behavior of nanoparticle–fluid suspensions (“nanofluids”). We have devised a theoretical model that accounts for the fundamental role of dynamic nanoparticles in nanofluids. The model not only captures the concentration and temperature-dependent conductivity, but also predicts strongly size-dependent conductivity. Furthermore, we have discovered a fundamental difference between solid/solid composites and solid/liquid suspensions in size-dependent conductivity. This understanding could lead to design of nanoengineered next-generation coolants with industrial and biomedical applications in high-heat-flux cooling.

Nanofluid Flow and Heat TransferThermal properties of materialsHeat Transfer and OptimizationIconCitationNanofluidDownloadComputer scienceInformation retrievalBrownian motionPhysicsWorld Wide WebThermal
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References
Mechanisms of heat flow in suspensions of nano-sized particles (nanofluids)
International Journal of Heat and Mass Transfer · 2002 · 2,167 citations
Anomalous thermal conductivity enhancement in nanotube suspensions
Applied Physics Letters · 2001 · 2,742 citations
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Journal of the Franklin Institute · 1954 · 9,128 citations
Micromechanics: Overall Properties of Heterogeneous Materials
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