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Asiful H. Seikh

Researcher at King Saud University

Publications -  105
Citations -  990

Asiful H. Seikh is an academic researcher from King Saud University. The author has contributed to research in topics: Corrosion & Microstructure. The author has an hindex of 12, co-authored 70 publications receiving 536 citations.

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Stability analysis and multiple solution of Cu–Al2O3/H2O nanofluid contains hybrid nanomaterials over a shrinking surface in the presence of viscous dissipation

TL;DR: In this article, the stability analysis of a non-linear shrinking sheet is examined in the presence of viscous dissipation and suction/injection effects, where the governing equations of mathematical models are transformed into selfsimilar solutions in the form of ODEs by using similarity transformation.
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Corrosion mechanism and kinetics of Al-Zn coating deposited by arc thermal spraying process in saline solution at prolong exposure periods

TL;DR: Electrochemical studies including open circuit potential (OCP) and electrochemical impedance spectroscopy (EIS) on the deposited coating at longer exposure durations revealed enhanced corrosion resistance properties while the morphology of corrosion products through field emission-scanning electron microscopy indicated their compactness and adherence.
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Magnetohydrodynamic (MHD) Flow of Micropolar Fluid with Effects of Viscous Dissipation and Joule Heating Over an Exponential Shrinking Sheet: Triple Solutions and Stability Analysis

TL;DR: A numerical study was carried out to examine the magnetohydrodynamic flow of micropolar fluid on a shrinking surface in the presence of both Joule heating and viscous dissipation effects, and showed that the velocity of the fluid increased as the non-Newtonian parameter rose in all solutions.
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Transverse magnetic flow over a Reiner–Philippoff nanofluid by considering solar radiation

TL;DR: In this paper, the effect of transverse magnetic field and thermal radiation on Reiner-Philippoff nanofluid over stretching sheet was explored for temperature and flow augmentation.