Lattice Boltzmann simulation of natural convection heat transfer of a nanofluid in a L-shape enclosure with a baffle

In the present study, the fluid flow and heat transfer of a Cu-water nanofluid in a L-shaped enclosure with a baffle is numerically simulated using the Lattice Boltzmann Method (LBM). The implementation of different baffle combinations with the L shape cavity is the novel contribution of this study....

Full description

Bibliographic Details
Main Authors: Shayan Naseri Nia, Faranak Rabiei, M.M. Rashidi, T.M. Kwang
Format: Article
Language:English
Published: Elsevier 2020-12-01
Series:Results in Physics
Subjects:
LBM
Online Access:http://www.sciencedirect.com/science/article/pii/S2211379720318805
id doaj-aa2398d42f59493ba444ae69e13c7b62
record_format Article
spelling doaj-aa2398d42f59493ba444ae69e13c7b622020-12-25T05:08:29ZengElsevierResults in Physics2211-37972020-12-0119103413Lattice Boltzmann simulation of natural convection heat transfer of a nanofluid in a L-shape enclosure with a baffleShayan Naseri Nia0Faranak Rabiei1M.M. Rashidi2T.M. Kwang3School of Engineering, Monash University Malaysia, 47500 Selangor, MalaysiaSchool of Engineering, Monash University Malaysia, 47500 Selangor, Malaysia; Corresponding author.Shanghai Key Lab of Vehicle Aerodynamics and Vehicle Thermal Management Systems, Tongji University, Shanghai, ChinaSchool of Engineering, Monash University Malaysia, 47500 Selangor, MalaysiaIn the present study, the fluid flow and heat transfer of a Cu-water nanofluid in a L-shaped enclosure with a baffle is numerically simulated using the Lattice Boltzmann Method (LBM). The implementation of different baffle combinations with the L shape cavity is the novel contribution of this study. The effect of baffle configuration on natural convection in different parameter ranges of Rayleigh number (103–105) and nanoparticle volume fraction (0–0.05) is investigated. Various baffle configuration cases are examined based on baffle length (L) and position (S). The baffled L shape results are also compared to the results obtained from a L shape without a baffle that were also achieved in this study and are validated with excellent agreement with existing data. Different models are used for evaluating the dynamic viscosity and thermal conductivity, to compare the effects of nanofluid properties. The results show that at low Rayleigh numbers (103–104), the addition of baffle always enhances natural convection. In high Rayleigh numbers (105), only the longer baffle (L = 0.30 m) can improve natural convection regardless of its positioning. The longer baffle is always more effective with proper positioning (S = 0.4 m) and the case C baffle configuration (L = 0.30 m, S = 0.4 m) is the most effective in all conditions.http://www.sciencedirect.com/science/article/pii/S2211379720318805LBMNanofluidNatural ConvectionL-shape enclosureBaffle
collection DOAJ
language English
format Article
sources DOAJ
author Shayan Naseri Nia
Faranak Rabiei
M.M. Rashidi
T.M. Kwang
spellingShingle Shayan Naseri Nia
Faranak Rabiei
M.M. Rashidi
T.M. Kwang
Lattice Boltzmann simulation of natural convection heat transfer of a nanofluid in a L-shape enclosure with a baffle
Results in Physics
LBM
Nanofluid
Natural Convection
L-shape enclosure
Baffle
author_facet Shayan Naseri Nia
Faranak Rabiei
M.M. Rashidi
T.M. Kwang
author_sort Shayan Naseri Nia
title Lattice Boltzmann simulation of natural convection heat transfer of a nanofluid in a L-shape enclosure with a baffle
title_short Lattice Boltzmann simulation of natural convection heat transfer of a nanofluid in a L-shape enclosure with a baffle
title_full Lattice Boltzmann simulation of natural convection heat transfer of a nanofluid in a L-shape enclosure with a baffle
title_fullStr Lattice Boltzmann simulation of natural convection heat transfer of a nanofluid in a L-shape enclosure with a baffle
title_full_unstemmed Lattice Boltzmann simulation of natural convection heat transfer of a nanofluid in a L-shape enclosure with a baffle
title_sort lattice boltzmann simulation of natural convection heat transfer of a nanofluid in a l-shape enclosure with a baffle
publisher Elsevier
series Results in Physics
issn 2211-3797
publishDate 2020-12-01
description In the present study, the fluid flow and heat transfer of a Cu-water nanofluid in a L-shaped enclosure with a baffle is numerically simulated using the Lattice Boltzmann Method (LBM). The implementation of different baffle combinations with the L shape cavity is the novel contribution of this study. The effect of baffle configuration on natural convection in different parameter ranges of Rayleigh number (103–105) and nanoparticle volume fraction (0–0.05) is investigated. Various baffle configuration cases are examined based on baffle length (L) and position (S). The baffled L shape results are also compared to the results obtained from a L shape without a baffle that were also achieved in this study and are validated with excellent agreement with existing data. Different models are used for evaluating the dynamic viscosity and thermal conductivity, to compare the effects of nanofluid properties. The results show that at low Rayleigh numbers (103–104), the addition of baffle always enhances natural convection. In high Rayleigh numbers (105), only the longer baffle (L = 0.30 m) can improve natural convection regardless of its positioning. The longer baffle is always more effective with proper positioning (S = 0.4 m) and the case C baffle configuration (L = 0.30 m, S = 0.4 m) is the most effective in all conditions.
topic LBM
Nanofluid
Natural Convection
L-shape enclosure
Baffle
url http://www.sciencedirect.com/science/article/pii/S2211379720318805
work_keys_str_mv AT shayannaserinia latticeboltzmannsimulationofnaturalconvectionheattransferofananofluidinalshapeenclosurewithabaffle
AT faranakrabiei latticeboltzmannsimulationofnaturalconvectionheattransferofananofluidinalshapeenclosurewithabaffle
AT mmrashidi latticeboltzmannsimulationofnaturalconvectionheattransferofananofluidinalshapeenclosurewithabaffle
AT tmkwang latticeboltzmannsimulationofnaturalconvectionheattransferofananofluidinalshapeenclosurewithabaffle
_version_ 1724371234562506752