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- W4295165964 abstract "The contribution of viscosity is quite dynamical and important in different industrial and engineering processes where the thermal management system is based on fluid flows. For such transportation processes, the thermal system is highly fluctuated with variation of viscosities. It is commonly noticed that in most of recent investigations, the contribution of viscosity is assumed to be constant. Owing to importance of variable viscosity, this communication highlights the role of variable viscosity regarding the slip flow of Maxwell fluid in bidirectional moving porous space. In order to generalize the problem, the applications of thermal radiation, external heating source and magnetic force are considered. Moreover, the evaluation of heat transfer is further supported with viscous dissipation. The variable on set of thermal conductivity and viscosity are predicted via Reynolds viscosity model. The model of a nonlinear system with appropriate boundary conditions is transformed to nonlinear differential system. The Runge-Kutta (RK-4) numerical scheme is followed to presenting the approximate simulations. A parametric examination of determined parameters is carried out. The graphical results of chemical reactions are also brought into discussion. A fall in transverse velocity component due to interaction of slip is noted. It is summarized that variable viscosity of fluids is more effective to enhance the thermal mechanism. • Chemical reactive radiative flow of Maxwell fluid subject to heat and mass transfer phenomenon has been observed. • The fluid thermal conductivity and fluid viscosity are assumed to be variable. • Math metical modelling is based on Reynolds viscosity model. • The numerical computations are performed via shooting technique." @default.
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- W4295165964 date "2022-10-01" @default.
- W4295165964 modified "2023-09-29" @default.
- W4295165964 title "Heat and mass transfer inspection for slip flow of radiative Maxwell fluid when role of thermal conductivity and viscosity is variable: A Reynolds viscosity model" @default.
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- W4295165964 doi "https://doi.org/10.1016/j.jics.2022.100709" @default.
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