4.5 Article

Entropy generation in a ciliary flow of an Eyring-Powell ternary hybrid nanofluid through a channel with electroosmosis and mixed convection

Journal

ELECTROPHORESIS
Volume -, Issue -, Pages -

Publisher

WILEY
DOI: 10.1002/elps.202300199

Keywords

cilia flow; electroosmosis; entropy generation; mixed convection; ternary hybrid nanofluid

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This study investigates the behavior of nanofluids in biological systems and their application in drug delivery systems using a numerical model. The results indicate that increasing the Hartman number, fluid factor, ohmic heating, and cilia length leads to an increase in temperature. The presence of ternary hybrid nanoparticles affects the flow rate and temperature curves.
Drug delivery systems, where the nanofluid flow with electroosmosis and mixed convection can help in efficient and targeted drug delivery to specific cells or organs, could benefit from understanding the behavior of nanofluids in biological systems. In current work, authors have studied the theoretical model of two-dimensional ciliary flow of blood-based (Eyring-Powell) nanofluid model with the insertion of ternary hybrid nanoparticles along with the effects of electroosmosis, magnetohydrodynamics, thermal radiations, and mixed convection. Moreover, the features of entropy generation are also taken into consideration. The system is modeled in a wave frame with the approximations of large wave number and neglecting turbulence effects. The problem is solved numerically by using the shooting method with the assistance of computational software Mathematica for solving the governing equation. According to the temperature curves, the temperature will increase as the Hartman number, fluid factor, ohmic heating, and cilia length increase. It is also disclosed that ternary hybrid nanoparticles result in a change in flow rate when other problem parameters are varied, and the same is true for temperature graphs. Engineers and scientists can make better use of nanofluid-based cooling systems in electronics, automobiles, and industrial processes with the aid of the study's findings.

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