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Convective heat transport and entropy generation in butterfly-shaped magneto-nanofluidic systems with bottom heating and top cooling

Aniket Halder (Department of Civil Engineering, Jadavpur University, Kolkata, India)
Arabdha Bhattacharya (Department of Civil Engineering, Jadavpur University, Kolkata, India)
Nirmalendu Biswas (Department of Power Engineering, Jadavpur University, Kolkata, India)
Nirmal K. Manna (Department of Mechanical Engineering, Jadavpur University, Kolkata, India)
Dipak Kumar Mandal (Department of Mechanical Engineering, College of Engineering and Management, Kolaghat, India)

International Journal of Numerical Methods for Heat & Fluid Flow

ISSN: 0961-5539

Article publication date: 26 December 2023

Issue publication date: 23 February 2024

58

Abstract

Purpose

The purpose of this study is to carry out a comprehensive analysis of magneto-hydrodynamics (MHD), nanofluidic flow dynamics and heat transfer as well as thermodynamic irreversibility, within a novel butterfly-shaped cavity. Gaining a thorough understanding of these phenomena will help to facilitate the design and optimization of thermal systems with complex geometries under magnetic fields in diverse applications.

Design/methodology/approach

To achieve the objective, the finite element method is used to solve the governing equations of the problem. The effects of various controlling parameters such as butterfly-shaped triangle vertex angle (T), Rayleigh number (Ra), Hartmann number (Ha) and magnetic field inclination angle (γ ) on the hydrothermal performance are analyzed meticulously. By investigating the effects of these parameters, the authors contribute to the existing knowledge by shedding light on their influence on heat and fluid transport within butterfly-shaped cavities.

Findings

The major findings of this study reveal that the geometrical shape significantly alters fluid motion, heat transfer and irreversibility production. Maximum heat transfer, as well as entropy generation, occurs when the Rayleigh number reaches its maximum, the Hartmann number is minimized and the angle of the magnetic field is set to 30° or 150°, while the butterfly wings angle or vertex angle is kept at a maximum of 120°. The intensity of the magnetic field significantly controls the heat flow dynamics, with higher magnetic field strength causing a reduction in the flow strength as well as heat transfer. This configuration optimizes the heat transfer characteristics in the system.

Research limitations/implications

Further research can be expanded on this study by examining thermal performance under different curvature effects, orientations, boundary conditions and additional factors. This can be accomplished through numerical simulations or experimental investigations under various multiphysical scenarios.

Practical implications

The geometric configurations explored in this research have practical applications in various engineering fields, including heat exchangers, crystallization processes, microelectronic devices, energy storage systems, mixing processes, food processing, air-conditioning, filtration and more.

Originality/value

This study brings value by exploring a novel geometric configuration comprising the nanofluidic flow, and MHD effect, providing insights and potential innovations in the field of thermal fluid dynamics. The findings contribute a lot toward maximizing thermal performance in diverse fields of applications. The comparison of different hydrothermal behavior and thermodynamic entropy production under the varying geometric configuration adds novelty to this study.

Keywords

Acknowledgements

Since acceptance of this article, the following author has updated their affiliation: Dipak Kumar Mandal is at the Government Engineering College, Samastipur, India.

Citation

Halder, A., Bhattacharya, A., Biswas, N., Manna, N.K. and Mandal, D.K. (2024), "Convective heat transport and entropy generation in butterfly-shaped magneto-nanofluidic systems with bottom heating and top cooling", International Journal of Numerical Methods for Heat & Fluid Flow, Vol. 34 No. 2, pp. 837-877. https://doi.org/10.1108/HFF-06-2023-0353

Publisher

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Emerald Publishing Limited

Copyright © 2023, Emerald Publishing Limited

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