EFFECT OF INCLINED MAGNETIC FIELD AND CHEMICAL REACTION ON RADIATIVE HYBRID NANOFLUID FLOW THROUGH AN EXPONENTIALLY STRETCHED POROUS SURFACE IN THE PRESENCE OF HEAT SOURCE

Authors:

K. Fatima,J. L. Rama Prasad,

DOI NO:

https://doi.org/10.26782/jmcms.2025.05.00004

Keywords:

Chemical reaction,Heat source,Hybrid nanofluid,Porosity,Stretching sheet,

Abstract

This study examines the flow of a hybrid nanofluid from Cu-Al2O3/ water through an exponentially stretched porous surface under the influence of an inclined magnetic field, chemical reaction, and heat source. The reduced ordinary differential equations derived from the governing equations of continuity, momentum, energy, and concentration are solved using the Keller Box Technique, and results are presented through graphs. The effects of magnetic parameter, radiation parameter, heat source, and porosity parameter on velocity, temperature, and concentration profiles are studied.

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