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Journal ArticleDOI

Numerical analysis of MHD nanofluid flow and heat transfer in a circular porous medium containing a Cassini oval under the influence of the Lorentz and buoyancy forces

Bahram Jalili, +3 more
- 09 May 2022 - 
- Vol. 51, Iss: 7, pp 6122-6138
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TLDR
In this article , a two-dimensional (2D) mathematical model is developed based on a homogeneous model for magnetohydrodynamics (MHD) nanofluid in an innovative porous, circleshaped enclosure incorporating a Cassini oval cavity using the Darcy law.
Abstract
This paper reports our study on the flow characteristics and heat transfer performance of magnetohydrodynamics (MHD) nanofluid in an innovative porous, circle‐shaped enclosure incorporating a Cassini oval cavity using the Darcy law. The MHD nanofluid considered in this study is Al2O3–H2O. A two‐dimensional (2D) mathematical model is developed based on a homogeneous model. The formulation of the vorticity stream function is then used to obtain coupled equations. Finally, the coupled partial differential equations are solved numerically using the finite element method. Model predictions are then compared against results from the previously published study to verify the accuracy and validity of the developed model, and a good agreement is achieved. Figures demonstrate the effects of nanoparticle volume fraction, inclined angle, Lorentz, and buoyancy forces on the MHD nanofluid flow. The results indicate that the convection mechanism becomes weaker with an increase in solid nanoparticle volume fraction. A significant increase in the Rayleigh number will lead to a stronger and more cohesive core vortex. In addition, when magnetic force is applied horizontally, favorable Nuave occurs. Based on the numerical results, a correlation to predict the average Nusselt number within the enclosure is developed as a function of Hartmann number (Ha), Rayleigh number (Ra), and inclined angle (γ).

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Citations
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Numerical analysis of magnetic hybrid Nano-fluid natural convective flow in an adjusted porous trapezoidal enclosure

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Thermal analysis of Williamson fluid flow with Lorentz force on the stretching plate

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Impacts of heater-cooler position and Lorentz force on heat transfer and entropy generation of hybrid nanofluid convection in quarter-circular cavity

TL;DR: In this paper , the authors performed heat transfer and entropy generation analysis for a hybrid nanofluid flow in a quarter circular cavity considering different orientations of magnetic fields, and the results revealed that the mutual exchange of heater-cooler positions on adjacent straight edges of the quadrant cavity does not have any impact on the flow direction.
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A case study of heat transmission in a Williamson fluid flow through a ciliated porous channel: A semi-numerical approach

TL;DR: In this article , the heat transmission in Williamson fluid flow through a ciliated channel under a Magnetic field and Porous medium is discussed, and the existence of a solution has been established with the differential transform method and the outcomes of the boundary layer distribution are found in mathematical and graphical forms.
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Thermal Analysis of Fluid Flow with Heat Generation for Different Logarithmic Surfaces

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References
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Journal ArticleDOI

Numerical simulation of magnetic nanofluid natural convection in porous media

TL;DR: In this paper, the free convection of magnetic nanofluid in a porous curved cavity is investigated, and an innovative numerical approach, namely CVFEM, is applied to evaluate the effect of Darcy number (Da ), Rayleigh ( Ra ), Hartmann ( Ha ) numbers and volume fraction of Fe 3 O 4 ( ϕ ) on hydrothermal characteristics.
Journal ArticleDOI

CuO-water nanofluid flow due to magnetic field inside a porous media considering Brownian motion

TL;DR: In this paper, the role of Darcy number, Hartmann number, Reynolds number, and CuO-water volume fraction was investigated in the presence of Lorentz forces and shape factor influence on nanofluid treatment were taken into consideration.
Journal ArticleDOI

Influence of magnetic field on nanofluid free convection in an open porous cavity by means of Lattice Boltzmann method

TL;DR: In this paper, the Brownian motion influence on nanofluid properties is considered by means of Koo-Kleinstreuer-Li (KKL) model.
Journal ArticleDOI

Finite element method for PCM solidification in existence of CuO nanoparticles

TL;DR: In this paper, a complex shaped energy storage enclosure was simulated by Galerkin finite element method considering adaptive mesh to estimate nanofluid properties, Brownian motion impact was taken into account.
Journal ArticleDOI

Mesoscopic method for MHD nanofluid flow inside a porous cavity considering various shapes of nanoparticles

TL;DR: In this article, a lattice Boltzmann method has been used to investigate magnetic field impact on nanofluid natural convection inside a porous enclosure with four square heat sources.
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