Publication Type : Journal Article
Publisher : Taylor & Francis
Source : Journal of Computational and Theoretical Transport
Url : https://www.tandfonline.com/doi/abs/10.1080/23324309.2024.2379798
Campus : Chennai
School : School of Engineering
Year : 2024
Abstract : Inspired by the numerous applications of non-Newtonian nanomaterials in science and industries, the two-dimensional convective hydromagnetic movement in a micropolar nanofluid within an expanding permeable surface with the existence of binary chemical reaction and convective boundary constraints is examined in this study. Thermal radiation, energy generation, and activation energy interactions are employed to handle the nanofluid flow. The underlying equations are transformed via the similarity transitions into an array of non-linear ODE. The BVP4C MATLAB package is applied to solve the system of equations numerically. The necessary outcomes of the micropolar fluid velocity, micro-rotation, temperature, concentration, friction factor, mass transfer, and heat transfer rates are shown graphically and thoroughly analyzed quantitatively. The micropolar nanofluid’s mobility is reduced by the heating and solutal Grashof numbers. It is noted that the magnetic coefficient decreases velocity, it has the opposite impact on the degree of temperature. The plotted outcomes also show that the temperature increases as the increase in stimulation radiation variable. Meanwhile, the thermal field exhibits strengthen as the intensity of Biot number and Eckert number responses enhances. The growth of the activation energy leads to a noticeable enrichment in the concentration profile.
Cite this Research Publication : Ajithkumar, M., N. Ravi Kumar, Jintu Mani Nath, M. Vinodkumar Reddy, and Tusar Kanti Das. "A numerical simulation of the magneto-micropolar nanofluid flow configured by the stimulus energies and chemical interaction." Journal of Computational and Theoretical Transport 53, no. 7 (2024): 469-489.