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Hussein A. Mohammed

Researcher at Edith Cowan University

Publications -  200
Citations -  8214

Hussein A. Mohammed is an academic researcher from Edith Cowan University. The author has contributed to research in topics: Nanofluid & Heat transfer. The author has an hindex of 47, co-authored 190 publications receiving 6485 citations. Previous affiliations of Hussein A. Mohammed include University College of Engineering & Universiti Teknologi Malaysia.

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Thermal Performance of Hybrid-Inspired Coolant for Radiator Application

TL;DR: Investigation of the performance of mono or hybrid metal oxide such as Al2O3 and TiO2 with or without plant base-extracted CNC with varying concentrations as a better heat transfer nanofluid in comparison to distilled water as a radiator coolant finds superior thermal conductivity and superior viscosity.
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MHD Heat Transfer in W-Shaped Inclined Cavity Containing a Porous Medium Saturated with Ag/Al2O3 Hybrid Nanofluid in the Presence of Uniform Heat Generation/Absorption

TL;DR: In this article, a 2D numerical study of natural convection heat transfer in a W-shaped inclined enclosure with a variable aspect ratio was performed, which contained a porous medium saturated with Ag/Al2O3 hybrid nanofluid in the presence of uniform heat generation or absorption under the effect of a uniform magnetic field.
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Performance improvement of solar chimneys using phase change materials: A review

TL;DR: In this article, a literature survey on the incorporation of phase change materials (PCMs) for performance improvement of solar chimneys in both buildings and power plant applications is provided, where the results obtained from the previous studies showed a great potential of PCM in enhancing the building's thermal comfort, extending the ventilation time, improving the electricity generation of the solar chimney power plants, and prolonging the generation period.
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Energy efficiency of a flat-plate solar collector using thermally treated graphene-based nanofluids: Experimental study:

TL;DR: In this paper, a covalent functionalization approach was used for the preparation of highly dispersed pentaethylene glycol-thermally treated graphene-water as the absorbing material inside a flat-plate solar array.