Brownian motion's impact on MHD CuO-Al2O3/H2O hybrid nanofluid flow and heat transfer through annular duct

被引:0
作者
Ahmed, Farhan [1 ]
机构
[1] Govt Degree Coll Sherwan, Dept Math, Abbottabad 22010, Pakistan
关键词
H1 and T thermally fully developed conditions; KKL flow model; hybrid nanofluid; Lorentz force; Brownian motion's impact; forced convection; fanning friction factor; average Nusselt number; CONVECTION ENHANCEMENT; NATURAL-CONVECTION; MAGNETIC-FIELD;
D O I
10.1177/09544062251327842
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
The present numerical work is to explore the effect of variable electrically conductivity on magneto-hydrodynamic, ( MHD ) hybrid nanofluid flow through annular sector duct, for both H 1 and T thermally fully developed conditions. The nanofluid consists of basefluid water and aluminum oxide, (i.e. A l 2 O 3 / H 2 O nanofluid). The addition of copper oxide, ( CuO ) nanoparticles in A l 2 O 3 / H 2 O nanofluid, n , is known as hybrid nanofluid. Koo-Kleinstreuer-Li ( KKL ) model correlations are used to examine the effective dynamics viscosity and thermal conductivity of the resulting hybrid nanofluid. In this way, the Brownian motion's impact of CuO and A l 2 O 3 nanoparticles are also accounted. The finite volume based method, ( FVBM ) and strongly implicit procedure, ( SIP ) are adopted for the discretization and the numerical solution of the governing non-linear problem respectively. For this purpose, the well known technique 'the semi implicit method for pressure linked equations, ( SIMPLE ) revised' is utilized. Accordingly SIMPLER , the continuity equation is transformed into Poisson equation in term of the pressure by replacing the cross section velocity components' discretized form. During the work, it has been observed that the velocity contours and isotherms against pertinent parameters, n and M , have inversely and directly impacts respectively, for different values of apex angle, 2 alpha and the ratio of radii, R . Therefore, the velocity decreases and the temperature of the fluid increases. At M = 5 and 10 , the maximum addition of CuO nanoparticles in hybrid nanofluid, enhances the fanning friction factor, fRe , nearly up to 7.92 % and 8.04 % , while average Nusselt number, Nu , nearly up to 6.82 % and 6.79 % at R = 0 . 25 and 0 . 50 respectively, for all values of 2 alpha . Furthermore, the limiting case results are also examined for code validating and showed the good agreement with the literature results.
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页数:17
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