Abstract
This work addresses the ability to manage the distribution of heat transmission for fluid flow occurs upon a paraboloid thin shaped hot needle by using hybrid nanoparticles containing Copper Oxide (CuO) and Silver (Ag) with water as pure fluid. The needle is placed horizontally in nanofluid with an application of Hall current and viscous dissipation. The popular Buongiorno model has employed in the current investigation in order to explore the impact of Brownian and thermophoretic forces exerted by the fluid. The modeled equations with boundary conditions are transformed to non-dimensional form by incorporating a suitable group of similarity variables. This set of ordinary differential equations is then solved by employing homotopy analysis method (HAM). After detail study of the current work, it has established that the flow of fluid reduces with growth in magnetic effects and volume fractions of nanoparticles. Thermal characteristics increase with augmentation of Eckert number, magnetic field, volume fractions of nanoparticles, Brownian motion parameter and decline with increase in Prandtl number. Moreover, concentration of nanoparticles reduces with corresponding growth in Lewis number and thermophoresis, chemical reaction parameters while increases with growth in Brownian motion parameter.
Funder
Center of Excellence in Theoretical and Computational Science (TaCS-CoE), KMUTT
Thailand Science Research and Innovation (TSRI) Basic Research Fund: Fiscal year 2021
Publisher
Public Library of Science (PLoS)
Reference41 articles.
1. Enhancing thermal conductivity of fluids with nanoparticles;SUS Choi;ASME Int Mech Eng,1995
2. Water-carbon nanofluid flow with variable heat flux by a thin needle;T Hayat;Journal of Molecular Liquids,2016
3. Hybrid nanofluid flow and heat transfer past a vertical thin needle with prescribed surface heat flux;I Waini;International Journal of Numerical Methods for Heat & Fluid Flow,2019
4. A rheological analysis of nanofluid subjected to melting heat transport characteristics;WA Khan;Applied Nanoscience,2019
5. Hybrid nanofluid flow past a permeable moving thin needle;I Waini;Mathematics,2020
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