Stagnation point flow of third-order nanofluid towards a lubrication surface using hybrid homotopy analysis method

Author:

Ahmad M.1,Bashir Basharat1,Muhammad Taseer2ORCID,Taj M.1,Faisal Muhammad1

Affiliation:

1. Department of Mathematics, University of Azad Jammu & Kashmir, Muzaffarabad 13100, Pakistan

2. Department of Mathematics, College of Science, King Khalid University, Abha 61413, Saudi Arabia

Abstract

In recent times, the interaction of nanoparticles has significantly enhanced the thermal association of heat transport. This phenomenon plays a crucial role in hydraulic systems, particularly in the context of lubrication and its associated consequences on mass and heat transport. Current studies have focused on investigating the thermal effects of a third-order nanofluid on a lubricated stretched surface near an analytical stagnation point. The lubrication process involves the use of a thin, adjustable coating of lubricant fluid. To analyze this complex system, we employ the Buongiorno model and explore thermophoresis and the Brownian motion phenomenon. For deriving analytical results of updated boundary layer ordinary differential equations, we rely on the dependable and effective hybrid homotopy analysis method (HHAM). To exhibit the effectiveness of our study, we provide a numerical comparison. Based on theoretical flow assumptions, we establish a range of flow parameters. In the presence of lubrication, we physically examine how these parameters affect temperatures, velocities, concentration, and other relevant quantities of thermal interest. These new findings have practical applications in polymer production, heat transmission, and hydraulic systems.

Funder

King Khalid University, Abha, Saudi Arabia

Publisher

World Scientific Pub Co Pte Ltd

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