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Hybridized nanofluidic convection in umbrella-shaped porous thermal systems with identical heating and cooling surfaces

Nirmalendu Biswas (Department of Power Engineering, Jadavpur University, Kolkata, India)
Dipak Kumar Mandal (Department of Mechanical Engineering, College of Engineering and Management, Kolaghat, India)
Nirmal K. Manna (Department of Mechanical Engineering, Jadavpur University, Kolkata, India)
Rama S.R. Gorla (Department of Aeronautics and Astronautics, Air Force Institute of Technology, Wright-Patterson AFB, Ohio, USA)
Ali J. Chamkha (Faculty of Engineering, Kuwait College of Science and Technology, Kuwait, Kuwait)

International Journal of Numerical Methods for Heat & Fluid Flow

ISSN: 0961-5539

Article publication date: 7 June 2023

Issue publication date: 21 July 2023

132

Abstract

Purpose

This study aims to investigate the impact of different heater geometries (flat, rectangular, semi-elliptical and triangular) on hybrid nanofluidic (Cu–Al2O3–H2O) convection in novel umbrella-shaped porous thermal systems. The system is top-cooled, and the identical heater surfaces are provided centrally at the bottom to identify the most enhanced configuration.

Design/methodology/approach

The thermal-fluid flow analysis is performed using a finite volume-based indigenous code, solving the nonlinear coupled transport equations with the Darcy number (10–5 ≤ Da ≤ 10–1), modified Rayleigh number (10 ≤ Ram ≤ 104) and Hartmann number (0 ≤ Ha ≤ 70) as the dimensionless operating parameters. The semi-implicit method for pressure linked equations algorithm is used to solve the discretized transport equations over staggered nonuniform meshes.

Findings

The study demonstrates that altering the heater surface geometry improves heat transfer by up to 224% compared with a flat surface configuration. The triangular-shaped heating surface is the most effective in enhancing both heat transfer and flow strength. In general, flow strength and heat transfer increase with rising Ram and decrease with increasing Da and Ha. The study also proposes a mathematical correlation to predict thermal characteristics by integrating all geometric and flow control variables.

Research limitations/implications

The present concept can be extended to further explore thermal performance with different curvature effects, orientations, boundary conditions, etc., numerically or experimentally.

Practical implications

The present geometry configurations can be applied in various engineering applications such as heat exchangers, crystallization, micro-electronic devices, energy storage systems, mixing processes, food processing and different biomedical systems (blood flow control, cancer treatment, medical equipment, targeted drug delivery, etc.).

Originality/value

This investigation contributes by exploring the effect of various geometric shapes of the heated bottom on the hydromagnetic convection of Cu–Al2O3–H2O hybrid nanofluid flow in a complex umbrella-shaped porous thermal system involving curved surfaces and multiphysical conditions.

Keywords

Acknowledgements

Funding: There is no financial support for this work.

Compliance with ethical standards.

Conflict of interest: The authors declare that they have no conflict of interest.

Citation

Biswas, N., Mandal, D.K., Manna, N.K., Gorla, R.S.R. and Chamkha, A.J. (2023), "Hybridized nanofluidic convection in umbrella-shaped porous thermal systems with identical heating and cooling surfaces", International Journal of Numerical Methods for Heat & Fluid Flow, Vol. 33 No. 9, pp. 3164-3201. https://doi.org/10.1108/HFF-11-2022-0639

Publisher

:

Emerald Publishing Limited

Copyright © 2023, Emerald Publishing Limited

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