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Numerical investigation of nanofluid buoyant flow behavior and heat transfer characteristics in annular-shaped enclosure with internal baffle

N. Keerthi Reddy (Department of Mechanical Engineering, Ulsan National Institute of Science and Technology, Ulsan, Republic of Korea)
Aejung Yoon (Department of Mechanical Engineering, Ulsan National Institute of Science and Technology, Ulsan, Republic of Korea)
Sankar Mani (Department of Mathematics, University of Technology and Applied Sciences – Ibri, Ibri, Oman and Department of Mathematics, Presidency University, Bangalore, India)
H.A. Kumara Swamy (Department of Mathematics, Nonlinear Dynamics and Mathematical Application Center, Kyungpook National University, Daegu, Republic of Korea)

International Journal of Numerical Methods for Heat & Fluid Flow

ISSN: 0961-5539

Article publication date: 30 October 2023

Issue publication date: 2 January 2024

167

Abstract

Purpose

Natural convection in finite enclosures is a common phenomenon in various thermal applications. To provide the thermal design guidelines, this study aims to numerically explore the potential of using internal baffles and nanofluids to either enhance or suppress heat transport in a vertical annulus. Furthermore, the annular-shaped enclosure is filled with aqueous-silver nanofluid and the effects of five distinct nanoparticle shapes are examined. In addition, the influence of baffle design parameters, including baffle position, thickness and length, is thoroughly analyzed.

Design/methodology/approach

The finite difference method is used in conjunction with the alternating direction implicit and successive line over relaxation techniques to solve nonlinear and coupled partial differential equations. The single phase model is used for nanofluid which is considered as a homogeneous fluid with improved thermal properties. The independence tests are carried out for assessing the sufficiency of grid size and time step for obtaining results accurately.

Findings

The baffle dimension parameters and nanoparticle shape exhibit significant impact on the convective flow and heat transfer characteristics, leading to the following results: sphere- and blade-shaped nanoparticles demonstrate around 30% enhancement in the heat transport capability compared with platelet-shaped nanoparticles, which exhibit the least. When considering the baffle design parameter, either a decrease in the baffle length and thickness or an increase in baffle height leads to an improvement in heat transport rate. Consequently, a threefold increase in baffle height yields a 40% improvement in thermal performance.

Originality/value

Understanding the impact of nanoparticle shapes and baffle design parameters on flow and thermal behavior will enable engineers to provide valuable insight on thermal management and overall system efficiency. Therefore, the current work focuses on exploring buoyant nanofluid flow and thermal mechanism in a baffled annular-shaped enclosure. Specifically, an internal baffle that exhibits conductive heat transfer through it is considered, and the impact of baffle dimensions (thickness, length and position) on the fluid flow behavior and thermal characteristics is investigated. In addition, the current study also addresses the influence of five distinct nanoparticle shapes (e.g. spherical, cylindrical, platelet, blade and brick) on the flow and thermal behavior in the baffled annular geometry. In addition to deepening the understanding of nanofluid behavior in a baffled vertical annulus, the current study contributes to the ongoing advancements in thermal applications by providing certain guidelines to design application-specific enclosures.

Keywords

Acknowledgements

This work was supported by the National Research Foundation of Korea (NRF) grant funded by the Korea government (MSIT) (No. RS-2023–00279896). M.S acknowledges financial support rendered by Internal Research Funding DSR-IRPS2021-22-PROP-1, UTAS, Ibri, Oman. The authors thank Editage (www.editage.co.kr) for English language editing.

Funding: National Research Foundation of Korea.

Citation

Reddy, N.K., Yoon, A., Mani, S. and Swamy, H.A.K. (2024), "Numerical investigation of nanofluid buoyant flow behavior and heat transfer characteristics in annular-shaped enclosure with internal baffle", International Journal of Numerical Methods for Heat & Fluid Flow, Vol. 34 No. 1, pp. 203-230. https://doi.org/10.1108/HFF-09-2023-0524

Publisher

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Emerald Publishing Limited

Copyright © 2023, Emerald Publishing Limited

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