Best Scholar Award
Dr. Dr. Qayyum Shah
U.E.T (University of Engineering & Technology), Pakistan
| Dr. Dr. Qayyum Shah | |
|---|---|
| Affiliation | U.E.T (University of Engineering & Technology) |
| Country | Pakistan |
| Scopus ID | 57192100360 |
| Documents | 31 |
| Citations | 507 |
| h-index | 12 |
| Subject Area | Chemical Engineering |
| Event | International Forensic Scientist Awards |
| ORCID | 0000-0002-7507-2370 |
Dr. Dr. Qayyum Shah is a researcher in Chemical Engineering whose documented scholarly work addresses computational fluid dynamics, nanofluids, magnetized flows, viscoelastic liquids, heat transfer, bioconvection, entropy generation, and related transport phenomena. His Scopus profile records 31 documents, 507 citations, and an h-index of 12, providing a bibliometric basis for considering his research contribution within the stated subject area. [1]
Contents
Abstract
Dr. Dr. Qayyum Shah’s research profile reflects an emphasis on mathematical and computational analysis of complex fluid systems relevant to engineering transport processes. His published studies examine magnetic effects, non-Newtonian and viscoelastic fluids, hybrid nanoparticles, bioconvection, chemical reactions, entropy generation, and heat-transfer behavior. Four documented publications from 2020 and 2021 illustrate this research direction across Crystals, Scientific Reports, and Mathematical Problems in Engineering. [2] [3] [4] [5]
Keywords
Chemical engineering; nanofluids; magnetohydrodynamics; heat transfer; non-Newtonian fluids; viscoelastic fluids; bioconvection; entropy generation; hybrid nanoparticles; computational optimization.
Introduction
Advanced fluid modelling provides mathematical tools for studying transport, thermal, and reactive processes in engineering systems. Within this field, Shah’s documented publications investigate flow configurations involving stretching surfaces, rotating systems, magnetic influences, nanoparticles, and complex rheological properties. These topics connect fluid mechanics with thermal engineering and computational modelling. [2] [4]
Research Profile
The research profile is characterized by analytical and computational treatment of coupled fluid-flow and heat-transfer problems. The reported studies consider thixotropic nanofluid behavior, Oldroyd-B viscoelastic fluids, hybrid nanoparticle suspensions, chemical reactions, and slip conditions. Such models are commonly used to examine how physical parameters influence velocity, temperature, entropy generation, and related engineering quantities. [2] [3]
Research Contributions
- Analysis of magnetic dipole effects in thixotropic nanofluid flow over curved stretched surfaces. [2]
- Computational optimization of bioconvection thin Oldroyd-B nanofluid deposition and entropy generation. [3]
- Assessment of rotating magnetized hybrid-nanoparticle mixtures with chemical reactions. [4]
- Analytical treatment of UCM viscoelastic liquid with slip and heat-flux conditions using a Galerkin approach. [5]
Publications
A framework for the magnetic dipole effect on the thixotropic nanofluid flow past a continuous curved stretched surface was published in Crystals in 2021. [2] Other documented studies include Computational optimization for the deposition of bioconvection thin Oldroyd-B nanofluid with entropy generation in Scientific Reports, and Rotating flow assessment of magnetized mixture fluid suspended with hybrid nanoparticles and chemical reactions of species. [3] [4]
Research Impact
The available Scopus metrics provide a quantitative indication of the visibility of the research record, with 31 indexed documents, 507 citations, and an h-index of 12. [1] The publication record also demonstrates activity across established peer-reviewed journals and includes DOI-identified research outputs, allowing individual studies to be independently located and evaluated.
Award Suitability
The documented research record aligns with the academic scope of a Best Scholar Award through its concentration on Chemical Engineering and mathematically intensive studies of advanced fluid systems. The combination of indexed publications, citation activity, and a defined body of work in nanofluid and transport modelling provides relevant evidence for an academic recognition assessment. Final award decisions remain subject to the applicable evaluation criteria of the International Forensic Scientist Awards.
Conclusion
Dr. Dr. Qayyum Shah’s documented scholarly profile centers on Chemical Engineering research involving nanofluids, complex fluids, magnetic effects, heat transfer, and computational modelling. The available bibliometric information and selected publications establish a research record that can be examined through both quantitative indicators and publication-level evidence.
External Links
References
- Elsevier. (n.d.). Scopus author details: Dr. Dr. Qayyum Shah, Author ID 57192100360. Scopus.
https://www.scopus.com/authid/detail.uri?authorId=57192100360 - Shah, Q. (2021). A framework for the magnetic dipole effect on the thixotropic nanofluid flow past a continuous curved stretched surface. Crystals, 11(6), 645.
DOI: https://doi.org/10.3390/cryst11060645 - Shah, Q. (2021). Computational optimization for the deposition of bioconvection thin Oldroyd-B nanofluid with entropy generation. Scientific Reports.
DOI: https://doi.org/10.1038/s41598-021-91041-5 - Shah, Q. (2021). Rotating flow assessment of magnetized mixture fluid suspended with hybrid nanoparticles and chemical reactions of species. Scientific Reports.
DOI: https://doi.org/10.1038/s41598-021-90519-6 - Shah, Q. (2020). Analytical Solution of UCM Viscoelastic Liquid with Slip Condition and Heat Flux over Stretching Sheet: The Galerkin Approach. Mathematical Problems in Engineering.
DOI: https://doi.org/10.1155/2020/7563693 - ORCID. (n.d.). Dr. Dr. Qayyum Shah, ORCID record 0000-0002-7507-2370.
https://orcid.org/0000-0002-7507-2370 - International Forensic Scientist Awards. (n.d.). Official Award Website.
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