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Lim Yeou Jiann

Researcher at Universiti Teknologi Malaysia

Publications -  25
Citations -  80

Lim Yeou Jiann is an academic researcher from Universiti Teknologi Malaysia. The author has contributed to research in topics: Nanofluid & Nusselt number. The author has an hindex of 4, co-authored 19 publications receiving 48 citations.

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Non-coaxial rotation flow of MHD Casson nanofluid carbon nanotubes past a moving disk with porosity effect

TL;DR: In this article, a mixture of single-wall and multi-wall carbon nanotubes in the human Casson blood is used as the nanoparticles and the analytical solutions of the temperature and velocity profiles are obtained.
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Mixed Convection Flow of Viscoelastic Fluid over a Sphere under Convective Boundary Condition Embedded in Porous Medium

TL;DR: In this article, a mixed convection boundary layer of a viscoelastic fluid over a sphere which is embedded in porous medium under convective boundary condition is carried out in order to investigate the effects of the visco-elastic parameter on the skin friction and heat transfer as well as velocity and temperature profile.
Proceedings ArticleDOI

The effects of heat generation or absorption on MHD stagnation point of Jeffrey fluid

TL;DR: In this article, an analysis on the problem of heat generation/absorption effects on the MHD stagnation point of Jeffrey fluid is carried out, where the governing partial differential equations are first transform as first order ordinary differential equation using similarity transformation before solving using numerical scheme called Keller-box.
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Double Convection of Unsteady MHD Non-coaxial Rotation Viscous Fluid in a Porous Medium

TL;DR: In this article, the effects of heat and mass transfer (double convection) on unsteady magnetohydrodynamic flow of incompressible viscous fluids in a porous medium under the influence of non-coaxial rotation are analyzed.
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Suction effect on an unsteady Casson hybrid nanofluid film past a stretching sheet with heat transfer analysis

TL;DR: In this paper, the authors studied the heat transfer in the blood fluid-based copper and alumina nanoparticles over an unsteady permeable stretching sheet, which is governed by the governing equations consist of a series of ODEs that are reduced from PDEs by implementing the similarity transformations subjected to mixed boundary conditions.