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Interpretation of entropy generation in Williamson fluid flow with nonlinear thermal radiation and first‐order velocity slip

Sumaira QayyumDepartment of Mathematics Quaid‐I‐Azam University Islamabad PakistanM. Ijaz KhanDepartment of Mathematics Riphah International University Faisalabad Faisalabad PakistanFaria MasoodDepartment of Mathematics Quaid‐I‐Azam University Islamabad PakistanYu‐Ming ChuDepartment of Mathematics Huzhou University Huzhou ChinaSeifedine KadryDepartment of Mathematics and Computer Science Beirut Arab University Beirut LebanonMubbashar NazeerDepartment of Mathematics, Institute of Arts and Sciences Government College University Faisalabad Faisalabad Pakistan
2020en
ABI

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This research article investigates the impacts of magnetohydrodynamics (MHD), nonlinear thermal radiation, Darcy‐Forchheimer porous medium, viscous dissipation, first‐order velocity slip, and convective boundary condition on the entropy generation optimization in flow of non‐Newtonian fluid (Williamson fluid) towards a flat and stretchable surface. A general entropy equation is derived for thermal heat irreversibility, porosity irreversibility, Joule heating irreversibility, and fluid friction irreversibility. The bvp4c (built‐in‐shooting) technique is utilized to solve the governing equations for the entropy generation. Our obtained results highlight that enhancement in the thermal radiation and magnetic causes an abrupt change in the entropy generation rate. Moreover, the heat transfer rate and velocity gradient (skin friction) are calculated numerically subject to pertinent parameter, and the results are displayed in tabular form.

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