Optimising the thermal characteristics of Williamson fluid flow through a microchannel influenced by the Hall effect using response surface methodology

Response surface methodology plays a crucial role in optimising system performance by analysing the effects of key variables, such as channel dimensions and fluid flow conditions, to enhance heat transfer efficiency while minimizing pressure drops. This study focuses on the parametric optimization o...

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Main Authors: Pradeep Kumar, M.N. Guruprasad, Felicita Almeida, Taseer Muhammad
Format: Article
Language:English
Published: Elsevier 2025-06-01
Series:Case Studies in Thermal Engineering
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2214157X25003995
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author Pradeep Kumar
M.N. Guruprasad
Felicita Almeida
Taseer Muhammad
author_facet Pradeep Kumar
M.N. Guruprasad
Felicita Almeida
Taseer Muhammad
author_sort Pradeep Kumar
collection DOAJ
description Response surface methodology plays a crucial role in optimising system performance by analysing the effects of key variables, such as channel dimensions and fluid flow conditions, to enhance heat transfer efficiency while minimizing pressure drops. This study focuses on the parametric optimization of Williamson fluid flow through a vertical, porous microchannel using response surface methodology, sensitivity analysis, and numerical simulations. The investigation incorporates the effects of the Hall current, non-linear thermal radiation, buoyancy forces, heat sources, convective heat transfer, and slip boundary conditions. The governing equations are solved numerically using the Runge-Kutta-Fehlberg method in conjunction with the shooting technique. The results reveal that increasing the magnetic parameter reduces entropy generation near the channel walls while increasing it within the flow region. The primary velocity diminishes, while the secondary velocity and thermal profile exhibit significant enhancements. Furthermore, an increase in the radiative parameter leads to higher entropy generation and Bejan number values, though the thermal profile declines with this parameter. Sensitivity analysis demonstrates that the magnetic parameter and Prandtl number exhibit positive sensitivity, while the temperature difference has a negative sensitivity. The squared coefficient is calculated to be 100 %, indicating excellent agreement between the predicted and observed values. These findings provide valuable insights into optimising the thermal and fluid characteristics of Williamson fluid flow in microchannel applications, with potential implications for advanced engineering systems.
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spelling doaj-art-54b95bacdb5c4e659358b638d0bea5112025-08-20T01:48:30ZengElsevierCase Studies in Thermal Engineering2214-157X2025-06-017010613910.1016/j.csite.2025.106139Optimising the thermal characteristics of Williamson fluid flow through a microchannel influenced by the Hall effect using response surface methodologyPradeep Kumar0M.N. Guruprasad1Felicita Almeida2Taseer Muhammad3Department of Mathematics, School of Engineering, Presidency University, Rajanakunte, Yelahanka, Bengaluru, 560064, Karnataka, India; Corresponding author.Department of Mathematics, School of Engineering, Presidency University, Rajanakunte, Yelahanka, Bengaluru, 560064, Karnataka, IndiaDepartment of Mathematics, JNN College of Engineering, Shivamogga, Karnataka, IndiaDepartment of Mathematics, College of Science, King Khalid University, Abha, 61413, Saudi Arabia; Corresponding author.Response surface methodology plays a crucial role in optimising system performance by analysing the effects of key variables, such as channel dimensions and fluid flow conditions, to enhance heat transfer efficiency while minimizing pressure drops. This study focuses on the parametric optimization of Williamson fluid flow through a vertical, porous microchannel using response surface methodology, sensitivity analysis, and numerical simulations. The investigation incorporates the effects of the Hall current, non-linear thermal radiation, buoyancy forces, heat sources, convective heat transfer, and slip boundary conditions. The governing equations are solved numerically using the Runge-Kutta-Fehlberg method in conjunction with the shooting technique. The results reveal that increasing the magnetic parameter reduces entropy generation near the channel walls while increasing it within the flow region. The primary velocity diminishes, while the secondary velocity and thermal profile exhibit significant enhancements. Furthermore, an increase in the radiative parameter leads to higher entropy generation and Bejan number values, though the thermal profile declines with this parameter. Sensitivity analysis demonstrates that the magnetic parameter and Prandtl number exhibit positive sensitivity, while the temperature difference has a negative sensitivity. The squared coefficient is calculated to be 100 %, indicating excellent agreement between the predicted and observed values. These findings provide valuable insights into optimising the thermal and fluid characteristics of Williamson fluid flow in microchannel applications, with potential implications for advanced engineering systems.http://www.sciencedirect.com/science/article/pii/S2214157X25003995Williamson fluidHall effectPorous mediumResponse surface methodologyVertical microchannel
spellingShingle Pradeep Kumar
M.N. Guruprasad
Felicita Almeida
Taseer Muhammad
Optimising the thermal characteristics of Williamson fluid flow through a microchannel influenced by the Hall effect using response surface methodology
Case Studies in Thermal Engineering
Williamson fluid
Hall effect
Porous medium
Response surface methodology
Vertical microchannel
title Optimising the thermal characteristics of Williamson fluid flow through a microchannel influenced by the Hall effect using response surface methodology
title_full Optimising the thermal characteristics of Williamson fluid flow through a microchannel influenced by the Hall effect using response surface methodology
title_fullStr Optimising the thermal characteristics of Williamson fluid flow through a microchannel influenced by the Hall effect using response surface methodology
title_full_unstemmed Optimising the thermal characteristics of Williamson fluid flow through a microchannel influenced by the Hall effect using response surface methodology
title_short Optimising the thermal characteristics of Williamson fluid flow through a microchannel influenced by the Hall effect using response surface methodology
title_sort optimising the thermal characteristics of williamson fluid flow through a microchannel influenced by the hall effect using response surface methodology
topic Williamson fluid
Hall effect
Porous medium
Response surface methodology
Vertical microchannel
url http://www.sciencedirect.com/science/article/pii/S2214157X25003995
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AT felicitaalmeida optimisingthethermalcharacteristicsofwilliamsonfluidflowthroughamicrochannelinfluencedbythehalleffectusingresponsesurfacemethodology
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