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Rachid Sehaqui

Researcher at University of Hassan II Casablanca

Publications -  38
Citations -  1397

Rachid Sehaqui is an academic researcher from University of Hassan II Casablanca. The author has contributed to research in topics: Nanofluid & Heat transfer. The author has an hindex of 14, co-authored 35 publications receiving 949 citations.

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Thermal radiation and surface roughness effects on the thermo-magneto-hydrodynamic stability of alumina–copper oxide hybrid nanofluids utilizing the generalized Buongiorno’s nanofluid model

TL;DR: In this paper, the effects of thermal radiation and surface roughness on the complex dynamics of water conveying alumina and copper oxide nanoparticles, in the case where the thermophysical properties of the resulting mixture vary meaningfully with the volume fraction of solid nanomaterials, as well as with the Brownian motion and thermophoresis microscopic phenomena.
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Numerical Analysis of the Unsteady Natural Convection MHD Couette Nanofluid Flow in the Presence of Thermal Radiation Using Single and Two-Phase Nanofluid Models for Cu–Water Nanofluids

TL;DR: In this article, the authors used the Gear-Chebyshev-Gauss-Lobatto collocation technique to solve the nonlinear dynamical system of partial differential equations for the MHD Couette nanofluid flow with thermal radiation.
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Influence of a uniform transverse magnetic field on the thermo-hydrodynamic stability in water-based nanofluids with metallic nanoparticles using the generalized Buongiorno’s mathematical model

TL;DR: In this article, the onset of convection in the presence of an externally applied magnetic field is investigated numerically based on the nonhomogeneous Buongiorno's mathematical model, in which the Brownian motion and thermophoresis effects on slip flow in nanofluids are taken into account.
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A semi-analytical analysis of electro-thermo-hydrodynamic stability in dielectric nanofluids using Buongiorno's mathematical model together with more realistic boundary conditions

TL;DR: In this article, the electro-thermo-hydrodynamic stability of a dielectric nanofluid is investigated under the influence of a perpendicularly applied alternating electric field, in which the effects of thermophoretic and Brownian diffusions are incorporated explicitly in the governing equations.