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Journal ArticleDOI

Numerical simulation of unsteady mixed convection in a driven cavity using an externally excited sliding lid

TLDR
In this article, a numerical investigation of unsteady laminar mixed convection heat transfer in a lid driven cavity is executed, where the forced convective flow inside the cavity is attained by a mechanically induced sliding lid, which is set to oscillate horizontally in a sinusoidal fashion.
Abstract
A numerical investigation of unsteady laminar mixed convection heat transfer in a lid driven cavity is executed. The forced convective flow inside the cavity is attained by a mechanically induced sliding lid, which is set to oscillate horizontally in a sinusoidal fashion. The natural convection effect is sustained by subjecting the bottom wall to a higher temperature than its top counterpart. In addition, the two vertical walls of the enclosure are kept insulated. Discretization of the governing equations is achieved through a finite element scheme based on the Galerkin method of weighted residuals. Comparisons with previously reported investigations are performed and the results show excellent agreement. Temporal variations of streamlines, isotherms, and dimensionless drag force, and Nusselt number are presented in this investigation for various pertinent dimensionless groups. Fluid flow and heat transfer characteristics are examined in the domain of the Reynolds number, Grashof number and the dimensionless lid oscillation frequency such that: 10 2 ⩽ Re ⩽ 10 3 , 10 2 ⩽ Gr ⩽ 10 5 and 0.1 ⩽ ϖ ⩽ 5 . The working fluid is assigned a Prandtl number of 0.71 throughout this investigation. The obtained results reveal that the Reynolds number and Grashof number would either enhance or retard the energy transport process and drag force behavior depending on the conduct of the velocity cycle. Moreover, relatively small lid oscillation values are found to constrain the lid associated motion to a shallow depth from the sliding lid plane.

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Citations
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Journal ArticleDOI

Mixed convection flow in a lid-driven inclined square enclosure filled with a nanofluid

TL;DR: In this article, the numerical modeling of steady laminar mixed convection flow in a lid-driven inclined square enclosure filled with water-Al2O3 nanofluid is presented.
Journal ArticleDOI

Investigation of nanofluid mixed convection in a shallow cavity using a two-phase mixture model

TL;DR: In this paper, the effects of nanoparticle concentration, shear and buoyancy forces, and turbulence on flow and thermal behavior of nanofluid flow were studied, and the model predictions for very low solid volume fraction were found to be in good agreement with earlier numerical studies for a base fluid.
Journal ArticleDOI

Mixed convection flow in single- and double-lid driven square cavities filled with water–Al2O3 nanofluid: Effect of viscosity models

TL;DR: In this article, the authors focused on numerical modeling of steady laminar mixed convection flow in single and double-lid square cavities filled with a water-Al2O3 nanofluid.
Journal ArticleDOI

Effect of sinusoidal wavy bottom surface on mixed convection heat transfer in a lid-driven cavity

TL;DR: In this paper, a numerical study was conducted to analyze mixed convection heat transfer in a lid-driven cavity with a sinusoidal wavy bottom surface, where the cavity vertical walls were insulated while the bottom surface was maintained at a uniform temperature higher than the top lid.
Journal ArticleDOI

Effects of heat sink and source and entropy generation on MHD mixed convection of a Cu-water nanofluid in a lid-driven square porous enclosure with partial slip

TL;DR: In this paper, the effects of the presence of a heat sink and a heat source and their lengths and locations and the entropy generation on MHD mixed convection flow and heat transfer in a porous enclosure filled with a Cu-water nanofluid was investigated numerically.
References
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