ABSTRACT
Ternary hybrid nanoliquid is employed in various engineering and science applications including electronic heaters, pharmaceutical, nuclear safety, and solar energy production. Hence, the current study focused on the thermal and entropy analysis of water-based ternary couple stress hybrid nanoliquid and couple stress hybrid nanoliquid flow in an oblique channel. The significance of heat flux, porous media, buoyant force, magnetic field, and convective condition on the couple stress ternary liquid has been scrutinized. The governing partial differential equations are transferred into ordinary differential equations with the help of dimensionless terms. In the next step, the ordinary differential equations were solved by utilizing the RKF-45 numerical method. The outturn elucidated that the inflated Brinkman number greatly promotes the thermal field. The flow profile declines with enhanced permeability parameters. The outcome of the scrutiny of the couple stress parameter concludes that highly reinforced by ternary fluid than hybrid couple stress nanofluid.
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Notes on contributors
B. J. Gireesha
Dr. B. J. Gireesha obtained his Master of Science in Mathematics from Kuvempu University in the year of 1997. He received his prestigious Ph. D degree in Applied Mathematics from Kuvempu University, Shimoga, Karnataka in the year 2003. He has published more than 380 International reputed articles through various Journals and conferences. His research interest is in Fluid Mechanics, Computational Fluid Dynamics, Heat and Mass Transfer, Stretching sheet problems, Heat Transfer through Fins, and Micro Fluidics. He has contributed tremendously in his core area of research. He is awarded the prestigious Raman Fellowship 2015 for his Postdoctoral research for Indian scholars in the USA. He has reviewed several research articles and books for many Journals and Publications.
L. Anitha
Mrs. L. Anitha obtained her Master of Science in Mathematics from Kuvempu University, Shimoga, Karnataka. She is a research scholar in Mathematics in the area of Micro Fluidics.