Two-Dimensional Laminar Boundary Layers Hydromagnetic Arrhenius Kinetics Dissipative Fluid Reactive Flow in Non-Slip Conditions with Variable Properties
1 Department of Mathematical Sciences, Lagos State University of Science and Technology, Ikorodu, Nigeria
2 Department of Mechanical Engineering, Lagos State University of Science and Technology, Ikorodu, Nigeria
* Corresponding author: raskareem4@yahoo.com
2 Department of Mechanical Engineering, Lagos State University of Science and Technology, Ikorodu, Nigeria
* Corresponding author: raskareem4@yahoo.com
Abstract
This study investigates non-slip hydromagnetic laminar dissipation flow with Arrhenius kinetics in binary reactions characterized
by reaction order and variable properties within an unbounded
isothermal device. The partial differentiation model is nondimensionalized to a thermofluidic dimensionless form. An invariant
quasi-linear coupled ordinary derivative model is obtained using
similarity quantities and solved using the Shooting scheme coupled with the Runge-Kutta method. Results show that species
mixture reduces flow velocity but increases binary species reaction
by 0.734%. Activation energy and material coefficients enhance
the thermal profile within the flow medium. This provides insights
for industrial development in selecting working fluid properties.
Keywords
No-slip condition; Activation energy; Reaction order; Arrhenius kinetics; Viscous dissipation
How to Cite
Kareem, R. A., Animashaun, L. A., & Ajilore, J. O. (2026). Two-Dimensional Laminar Boundary Layers Hydromagnetic Arrhenius Kinetics Dissipative Fluid Reactive Flow in Non-Slip Conditions with Variable Properties. Nigerian Journal of Mathematics and Applications, 36(1), 47-62. https://doi.org/10.67897/njma.2026.mq7kkwxh
R. A. Kareem, L. A. Animashaun, and J. O. Ajilore, "Two-Dimensional Laminar Boundary Layers Hydromagnetic Arrhenius Kinetics Dissipative Fluid Reactive Flow in Non-Slip Conditions with Variable Properties," Nigerian Journal of Mathematics and Applications, vol. 36, no. 1, pp. 47-62, June 2026. doi: 10.67897/njma.2026.mq7kkwxh