Dr. Qayyum Shah | Thermal Management Systems | Best Faculty Award
Lecturer | U.E.T (University of Engineering & Technology) Peshawar | Pakistan
Dr. Qayyum Shah is a distinguished academic and researcher with extensive experience in applied mathematics, fluid mechanics, and interdisciplinary engineering applications. His professional career reflects long-standing engagement in university-level teaching, curriculum development, research supervision, and international collaboration, with recognized excellence in student-centered pedagogy and outcome-based education systems. His research interests span non-Newtonian fluid dynamics, heat and mass transfer, nanofluids, magnetohydrodynamics, entropy generation, oscillatory flows, and advanced mathematical modeling using analytical and numerical techniques. He possesses strong research skills in scientific computing, numerical analysis, MATLAB, Mathematica, LaTeX, and scholarly publishing in high-impact journals. His awards and honors include multiple Best Teacher and Best Research Paper awards, international research grants, and professional recognition through chartered and institutional memberships. Overall, his contributions demonstrate sustained academic leadership, impactful research productivity, and commitment to advancing applied mathematical sciences. He has acheived 471 Citations, 30 Documents,12 h-index.
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Featured Publications
Entropy generation in bioconvection nanofluid flow between two stretchable rotating disks
– Scientific Reports (Nature), 2020 · 155 citations
Entropy generation in two-phase model for simulating flow and heat transfer of carbon nanotubes
– Applied Nanoscience, 2019 · 56 citations
Dynamics with Cattaneo–Christov heat and mass flux theory of bioconvection Oldroyd-B nanofluid
– Advances in Mechanical Engineering, 2020 · 53 citations
Mechanical aspects of Maxwell nanofluid in dynamic system with irreversible analysis
– ZAMM Journal of Applied Mathematics & Mechanics, 2021 · 36 citations
Implementation of shooting technique for Buongiorno nanofluid model driven by a permeable surface
– Heat Transfer, 2023 · 29 citations