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Shahab Khushnood

Researcher at University of Engineering and Technology

Publications -  72
Citations -  1332

Shahab Khushnood is an academic researcher from University of Engineering and Technology. The author has contributed to research in topics: Tube (fluid conveyance) & Bundle. The author has an hindex of 12, co-authored 67 publications receiving 882 citations. Previous affiliations of Shahab Khushnood include University of Engineering and Technology, Lahore & University of the Sciences.

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Recent advances on thermal conductivity enhancement of phase change materials for energy storage system: A review

TL;DR: In this paper, the enhancement of thermal conductivity by the introduction of highly thermally conductive metallic and carbon-based nanoparticles, metallic foams, expanded graphite and encapsulation of PCM is discussed.
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Experimental investigation of PCM based round pin-fin heat sinks for thermal management of electronics: Effect of pin-fin diameter

TL;DR: In this paper, a parametric analysis for the round pin-finned heat sinks subjected to steady heat densities for effective and reliable cooling of mobile electronic devices is presented, where phase change material (PCM) namely paraffin wax is adopted as energy storage material and aluminum made round pinfins are selected as thermal conductivity enhancers (TCEs).
Journal Article

Vortical Flow Topology on Windward and Leeward side of Delta Wing at Supersonic Speed

TL;DR: In this paper, a numerical study was carried out by using two different turbulence models at Mach No 16, to identify the influence of turbulence modeling and wing on overall pressure distribution and onset of flow separation.
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An experimental study of PCM based finned and un-finned heat sinks for passive cooling of electronics

TL;DR: In this paper, the thermal performance of finned and unfinned PCM-based heat sinks is analyzed. And the enhancement ratios are determined for passive cooling with the influence of PCMs and TCEs.
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Effect of Current in the EDM Machining of Aluminum 6061 T6 and its Effect on the Surface Morphology

TL;DR: In this paper, an attempt is made to relate the globule formation on the machined surface, with the machining current, and the white layer thickness, globule diameter and interglobule distance are found to increase with the increase in electric current.