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Flow of magnetohydrodynamic blood-based hybrid nanofluids with double diffusion in the presence of Riga plate for heat optimization and drug applications

Abdul Samad KhanResearch Center for Computational Science, School of Mathematics and Statistics, Northwestern Polytechnical University, Xi’an, ChinaMuhammad IshaqDepartment of Mathematics, Government Superior Science College, Higher Education Department, Peshawar, Khyber Pakhtunkhwa, PakistanFuad A. AwwadDepartment of Quantitative analysis, College of Business Administration, King Saud University, Riyadh, Saudi ArabiaEmad A. A. IsmailDepartment of Quantitative analysis, College of Business Administration, King Saud University, Riyadh, Saudi ArabiaTaza GulCambridge Graphene Center, University of Cambridge, Cambridge, UK
2024en
ABI

Аннотация

In a recent study, researchers investigated the flow behavior of Casson Hybrid nanofluids (HNFs) combination of single and multi-walled carbon nanotubes (SWCNTs), (MWCNTs) on a Riga plate for drug delivery applications. The study found that the Casson HNFs exhibited non-Newtonian behavior on the Riga plate, with the presence of nanoparticles causing an increase in viscosity and shear-thinning behavior. This rheological behavior is favorable for drug delivery applications as it improves the stability and dispersion of drug particles in the fluid. The similarity equations of the flow problem are easily tackled with the homotopy analysis method (HAM) built on fundamental homotopy mapping. In high-speed flows, Riga actuators are expected to achieve the requirements, since HNF is enhanced by modified Hartmann numbers. As the Eckert number, heat generation/absorption parameter, and thermal relaxation time parameter decrease the temperature, thermal transport increases. Furthermore, with the increments in paramount parameters, the skin friction coefficient and heat transfer rate are remarkably meliorated under higher modified Hartmann number. Furthermore, the study also found that the Casson Hybrid nanofluids showed enhanced heat transfer properties on the Riga plate, which is beneficial for localized drug delivery applications that require precise temperature control.

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