Litcius/Paper detail

Numerical studies on heat and fluid flow of nanofluid in a partially heated vertical annulus

Suhail Ahmad Khan, M. Altamush Siddiqui

2020Heat Transfer21 citationsDOI

Abstract

Abstract A numerical investigation on natural convective heat transfer of nanofluid (Al 2 O 3 +water) inside a partially heated vertical annulus of high aspect ratio (352) has been carried out. The computational fluid dynamics solver Ansys Fluent is used for simulation and results are presented for various volume fraction of nanoparticles (0‐0.04) at different heat flux values (3‐12 kW/m 2 ). Two well‐known correlations for evaluating thermal conductivity and viscosity have been used. Thus different combinations of the available correlations have been set to form four models (I, II, III, and IV). Therefore, a detailed analysis has been executed to identify effects of thermophysical properties on heat transfer and fluid flow of nanofluids using different models. The results show enhancement in heat transfer coefficient with volume fraction of nanoparticles. Highest enhancement achieved is found to be 14.17% based on model III, while the minimum is around 7.27% based on model II. Dispersion of nanoparticles in base fluid declines the Nusselt number and Reynolds number with different rates depending on various models. A generalized correlation is proposed for Nusselt number of nanofluids in the annulus in terms of volume fraction of nanoparticles, Rayleigh number, Reynolds number, and Prandtl number.

Topics & Concepts

NanofluidNusselt numberPrandtl numberMaterials scienceRayleigh numberHeat transfer coefficientHeat transferThermodynamicsAnnulus (botany)Reynolds numberMechanicsHeat fluxHeat transfer enhancementVolume fractionNatural convectionPhysicsTurbulenceComposite materialNanofluid Flow and Heat TransferHeat Transfer MechanismsFluid Dynamics and Turbulent Flows