3D investigation of natural convection of nanofluids in a curved boundary enclosure applying lattice Boltzmann method

Author:

Hosseini Abadshapoori Mehdi,Saidi Mohammad Hassan

Abstract

Purpose The purpose of this paper is to investigate the natural convection behavior of nanofluids in an enclosure. The enclosure is a 3D capsule with curved boundaries filled with TiO2-water nanofluid. Design/methodology/approach In this paper, a multiple relaxation times lattice Boltzmann method (MRT-LBM) has been used. Two-component LBM has been conducted to consider the interaction forces between nanoparticles and the base fluid. Findings Results show that the enhanced Nusselt number (Nu*) increases with the increase in volume fraction of nanoparticles (ϕ) and Ra number and decrease of nanoparticle size (λ). Additionally, the findings indicate that increasing volume fraction beyond a certain value decreases Nu*. Originality/value This paper presents a MRT model of lattice Boltzmann in a 3D curved enclosure. A correlation is also presented based on the current results for Nu* depending on Ra number, volume fraction and size of nanoparticles. Furthermore, a comparison for the convergence rate and accuracy of this model and the SIMPLE algorithm is presented.

Publisher

Emerald

Subject

Applied Mathematics,Computer Science Applications,Mechanical Engineering,Mechanics of Materials

Reference33 articles.

1. Analytical and numerical study of buoyancy-driven convection in a vertical enclosure filled with nanofluids;Heat and Mass Transfer,2011

2. Natural convection of nanofluids in a shallow rectangular enclosure heated from the side;The Canadian Journal of Chemical Engineering,2012

3. Conjugate natural convection in an inclined nanofluid‐filled enclosure;International Journal of Numerical Methods for Heat and Fluid Flow,2012

4. Investigation of LBM curved boundary treatments for unsteady flows;European Journal of Mechanics – B/Fluids,2015

5. Natural convection in a nanofluids-filled portioned cavity: the Lattice-Boltzmann method;Numerical Heat Transfer, Part A: Applications,2011

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