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Taofik H. Nassan

Publications and source records attributed to Taofik H. Nassan.

2 recordsLinked to original sources

Experimental Investigation of nanofluid heat transfer in a square cross-sectional duct

English version Forced convective heat transfer of two different nanofluids including AL$_2$O$_3$-water and CuO-water in laminar flow through square cross section duct under constant heat flux has been investigated. The Nusselt number and average convective heat transfer coefficient for different nanoparticles concentrations as a function of Peclet number have been analyzed. AL$_2$O$_3$-water nanofluid with 0.2, 0.5, 1.0, 1.5, 2.0 and 2.5 percent volume fractions has been tested. The maximum enhancement of convective heat transfer coefficient for each of the above mentioned concentrations was 7, 10, 13, 18, 22, 27 percent, respectively. Also, CuO-water nanofluid was tested at 0.1, 0.2, 0.5, 0.8, 1.0 and 1.5 percent volume fractions and the results show that the maximum enhancement of convective heat transfer coefficient for each concentration was 8, 10, 14, 16, 19, 21 percent, respectively.

physics.gen-ph↗

Finite element modelling of immiscible two-phase flow in oil reservoirs

Reservoir simulators utilize numerical techniques to solve the governing equations of fluid flow in porous media and they are essential tool for oil and gas fields development. In practical reservoir simulation, the finite difference method (FDM) is the common numerical technique owing to its simplicity in application. In this paper, we introduce the finite element method (FEM) as a numerical tool to simulate an example in 3D and prior to that, Buckley-Leverett problem is used to validate using a commercial FEM-based software package that is applied through this paper. To achieve the proposed target, the mathematical model of the immiscible-two phase problem is reviewed and formulated to be applied easily in the proposed software. Immiscible two-phase flow in 3D is simulated on the 1/4th inverted five-spot benchmark and the results are shown and discussed. The results show that the FEM can be used efficiently to simulated immiscible two-phase flow in oil reservoirs with an acceptable CPU time and this is due to faster solvers advances in the last few years.

physics.flu-dyn↗