عنوان البحث(Papers / Research Title)
Comparison of Natural Convection Around a Circular Cylinder With Different Geometries of Cylinders Inside a Square Enclosure Filled With Ag-Nanofluid Superposed Porous-Nanofluid Layers
الناشر \ المحرر \ الكاتب (Author / Editor / Publisher)
سلام هادي حسين أل عريو
Citation Information
سلام,هادي,حسين,أل,عريو ,Comparison of Natural Convection Around a Circular Cylinder With Different Geometries of Cylinders Inside a Square Enclosure Filled With Ag-Nanofluid Superposed Porous-Nanofluid Layers , Time 08/05/2021 22:01:09 : كلية الهندسة/المسيب
وصف الابستركت (Abstract)
الفائدة العلمية ونشر المعرفة
الوصف الكامل (Full Abstract)
Numerical simulations are carried out for fluid flow and natural convection heat transfer induced by a temperature difference between a hot inner cylinder with different geometries (i.e., circular; triangular; elliptic; rectangular; and rhombic) and a cold outer square enclosure filled with nanofluid superposed porous-nanofluid layers. The Darcy–Brinkman model is applied for the saturated porous layer with nanofluid. Moreover, the transport equations (mass, momentum, and energy) are solved numerically using the Galerkin weighted residual method by dividing the domain into two sets of equations for every layer with incorporating a nonuniform mesh size. The considered domains in this investigation are closely examined over a wide range of Rayleigh number (103 Ra 106), Darcy number (105 Da 101), the thickness of porous layer (0% Xp 100%), thermal conductivity ratio (1 Rk 20), and nanoparticle volume fraction (0 u 0.1), respectively. The nanofluid is considered to be composed of Ag nanoparticle and water as a base fluid. The results showed that the obtained total surfaces-averaged Nusselt numbers of the enclosure, in all cases, at the same operating conditions, the rate of heat transfer from the outer enclosure which the triangular cylinder is located inside is better. Also, as the thickness of the porous layer is increased from 20% to 80%, the free convection performance will decrease significantly (to about 50%) due to the hydrodynamic properties of the porous material.
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