Lattice Boltzmann method for MHD natural convection of CuO/water nanofluid in a wavy-walled cavity with sinusoidal temperature distribution

In this paper, natural convection heat transfer of CuO-water Nanofluid within a wavy-walled cavity and subjected to a uniform magnetic field is examined by adopting the lattice Boltzmann model. The left wavy wall is heated sinusoidal, while the right flat wall is maintained at the constant temperatu...

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Main Author: Alireza Shahriari
Format: Article
Language:English
Published: University of Sistan and Baluchestan (USB) and the Iranian Society of Mechanical Engineers (ISME) 2017-07-01
Series:Transport Phenomena in Nano and Micro Scales
Subjects:
Online Access:http://tpnms.usb.ac.ir/article_3211_47b2c11c6d327895474e68384a90446f.pdf
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spelling doaj-167878e8b39d4b7c96d586fc3ca6d7162021-01-02T01:29:44ZengUniversity of Sistan and Baluchestan (USB) and the Iranian Society of Mechanical Engineers (ISME)Transport Phenomena in Nano and Micro Scales2322-36342322-36342017-07-015211112910.7508/tpnms.2017.02.0053211Lattice Boltzmann method for MHD natural convection of CuO/water nanofluid in a wavy-walled cavity with sinusoidal temperature distributionAlireza Shahriari0Department of Mechanical Engineering, University of Zabol, Zabol, IranIn this paper, natural convection heat transfer of CuO-water Nanofluid within a wavy-walled cavity and subjected to a uniform magnetic field is examined by adopting the lattice Boltzmann model. The left wavy wall is heated sinusoidal, while the right flat wall is maintained at the constant temperature of Tc. The top and the bottom horizontal walls are smooth and insulated against heat and mass. The influence of pertinent parameters such as solid volume fraction of nanoparticles (φ), Rayleigh number (Ra), Hartmann number (Ha) and phase deviation of sinusoidal boundary condition (Φ) are investigated on flow and heat transfer fields. Results show that the heat transfer decreases with the increase of the Hartmann number, but it increases by the increment of Rayleigh number and nanoparticle volume fraction. The magnetic field augments the effect produced by the presence of nanoparticles at Ra = 104 and 105 in contrast with Ra = 103. Moreover, the greatest effects of nanoparticles are observed for different values of the phase deviation with an increase in Rayleigh number. This study can, provide useful insight for enhancing the MHD natural convection heat transfer performance within wavy-walled cavity and sinusoidal temperature distribution.http://tpnms.usb.ac.ir/article_3211_47b2c11c6d327895474e68384a90446f.pdfLattice Boltzmann methodMagnetic fieldNanofluidSinusoidal temperature distributionWavy-walled cavity
collection DOAJ
language English
format Article
sources DOAJ
author Alireza Shahriari
spellingShingle Alireza Shahriari
Lattice Boltzmann method for MHD natural convection of CuO/water nanofluid in a wavy-walled cavity with sinusoidal temperature distribution
Transport Phenomena in Nano and Micro Scales
Lattice Boltzmann method
Magnetic field
Nanofluid
Sinusoidal temperature distribution
Wavy-walled cavity
author_facet Alireza Shahriari
author_sort Alireza Shahriari
title Lattice Boltzmann method for MHD natural convection of CuO/water nanofluid in a wavy-walled cavity with sinusoidal temperature distribution
title_short Lattice Boltzmann method for MHD natural convection of CuO/water nanofluid in a wavy-walled cavity with sinusoidal temperature distribution
title_full Lattice Boltzmann method for MHD natural convection of CuO/water nanofluid in a wavy-walled cavity with sinusoidal temperature distribution
title_fullStr Lattice Boltzmann method for MHD natural convection of CuO/water nanofluid in a wavy-walled cavity with sinusoidal temperature distribution
title_full_unstemmed Lattice Boltzmann method for MHD natural convection of CuO/water nanofluid in a wavy-walled cavity with sinusoidal temperature distribution
title_sort lattice boltzmann method for mhd natural convection of cuo/water nanofluid in a wavy-walled cavity with sinusoidal temperature distribution
publisher University of Sistan and Baluchestan (USB) and the Iranian Society of Mechanical Engineers (ISME)
series Transport Phenomena in Nano and Micro Scales
issn 2322-3634
2322-3634
publishDate 2017-07-01
description In this paper, natural convection heat transfer of CuO-water Nanofluid within a wavy-walled cavity and subjected to a uniform magnetic field is examined by adopting the lattice Boltzmann model. The left wavy wall is heated sinusoidal, while the right flat wall is maintained at the constant temperature of Tc. The top and the bottom horizontal walls are smooth and insulated against heat and mass. The influence of pertinent parameters such as solid volume fraction of nanoparticles (φ), Rayleigh number (Ra), Hartmann number (Ha) and phase deviation of sinusoidal boundary condition (Φ) are investigated on flow and heat transfer fields. Results show that the heat transfer decreases with the increase of the Hartmann number, but it increases by the increment of Rayleigh number and nanoparticle volume fraction. The magnetic field augments the effect produced by the presence of nanoparticles at Ra = 104 and 105 in contrast with Ra = 103. Moreover, the greatest effects of nanoparticles are observed for different values of the phase deviation with an increase in Rayleigh number. This study can, provide useful insight for enhancing the MHD natural convection heat transfer performance within wavy-walled cavity and sinusoidal temperature distribution.
topic Lattice Boltzmann method
Magnetic field
Nanofluid
Sinusoidal temperature distribution
Wavy-walled cavity
url http://tpnms.usb.ac.ir/article_3211_47b2c11c6d327895474e68384a90446f.pdf
work_keys_str_mv AT alirezashahriari latticeboltzmannmethodformhdnaturalconvectionofcuowaternanofluidinawavywalledcavitywithsinusoidaltemperaturedistribution
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