Mixed Convective Stagnation Point Flow Of A Hybrid Nanofluid Toward A Vertical Cylinder

Purpose: The purpose of this paper is to numerically analyze the stagnation point flow of Cu-Al2O3/water hybrid nanofluid with mixed convection past a flat plate and circular cylinder. Design/methodology/approach: The similarity equations that reduced from the boundary layer and energy equations are...

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Bibliographic Details
Main Authors: Khashi’ie, Najiyah Safwa, M. Arifin, Norihan, Merkin, John H., Yahaya, Rusya Iryanti, Pop, Ioan
Format: Article
Language:English
Published: Emerald Group Publishing Ltd. 2021
Online Access:http://eprints.utem.edu.my/id/eprint/25914/2/KHASHI%27IE%20ET%20AL.%20%282021%29-HFF.PDF
http://eprints.utem.edu.my/id/eprint/25914/
https://www.emerald.com/insight/content/doi/10.1108/HFF-11-2020-0725/full/html
https://doi.org/10.1108/HFF-11-2020-0725
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Institution: Universiti Teknikal Malaysia Melaka
Language: English
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Summary:Purpose: The purpose of this paper is to numerically analyze the stagnation point flow of Cu-Al2O3/water hybrid nanofluid with mixed convection past a flat plate and circular cylinder. Design/methodology/approach: The similarity equations that reduced from the boundary layer and energy equations are solved using the bvp4c solver. The duality of solutions is observed within the specific range of the control parameters, namely, mixed convection parameter λ, curvature parameter (Formula presented.) and nanoparticles volumetric concentration (Formula presented.) for alumina, while for copper (Formula presented.). The stability analysis is also designed to justify the particular solutions’ stability. Additionally, the idea to obtain the solution for large value of (Formula presented.) and (Formula presented.) is also presented in this paper. Findings: Two solutions exist in opposing and assisting flows up to a critical value (Formula presented.) where (Formula presented.) lies in the opposing region. An upsurge of the curvature parameter tends to extend the critical value (delay the separation process), whilst increase the heat transfer performance of the working fluid. Meanwhile, the application of hybrid Cu-Al2O3/water nanofluid also can decelerate the separation of laminar boundary layer flow and produce higher heat transfer rate than the Cu–water nanofluid and pure water. Originality/value: The results are new and original. This study benefits to the other researchers, specifically in the observation of the fluid flow characteristics and heat transfer rate of the hybrid nanofluid. Also, this paper features with the mathematical formulation for the solution with large values of (Formula presented.) and (Formula presented.)