Experimental Heat Transfer · 2009 · 26 citations · 19 references
EngineeringFluid MechanicsMechanical EngineeringHeat PipeConvective Heat TransferHeat Transfer ProcessFluid PropertiesMixed ConvectionTransport PhenomenaMicroconvective Heat TransferThermodynamicsNatural ConvectionExperimental AnalysisPipe FlowConventional PipesHeat TransferLaminar ConditionsTurbulent Flow Heat TransferHeat Transfer EnhancementNusselt NumberThermal EngineeringTransitional RegionsThermo-fluid Systems
Abstract This article details experiments to determine the Nusselt number for laminar and transitional liquid flows (water and FC-72) through rough stainless-steel microtubes of 440-, 280-, and 146-μm inner diameter. Under laminar conditions, the average Nusselt number approaches the fully developed value for uniformly heated tubes as Reynolds decreases. For higher Reynolds, the region of thermal development increases the average convective heat transfer coefficient, which becomes a function of the Reynolds and Prandlt numbers and of the inner diameter-to-heated-length ratio. The effect of roughness is negligible in the laminar regime. Under transition, the average Nusselt steeply increases with Reynolds, more than for conventional pipes.
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