Stagnation-Point Flow and Heat Transfer over an Exponentially Stretching/Shrinking Inclined Plate in a Micropolar Fluid

The study investigates the fluid flow characteristics and heat transfer over an exponentially stretching/shrinking inclined plate immersed in a micropolar fluid. The micropolar fluid model considers the rotational effects of microelements relevant to complex industrial fluid behavior. Using similari...

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Published in:Journal of Advanced Research in Numerical Heat Transfer
Main Author: Bakar F.N.A.; Soid S.K.; Norzawary N.H.A.; Sohut F.H.
Format: Article
Language:English
Published: Penerbit Akademia Baru 2024
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85185655914&doi=10.37934%2farnht.16.1.1734&partnerID=40&md5=5d04790a9af84fe7aa7a60c9cc23ba9b
id 2-s2.0-85185655914
spelling 2-s2.0-85185655914
Bakar F.N.A.; Soid S.K.; Norzawary N.H.A.; Sohut F.H.
Stagnation-Point Flow and Heat Transfer over an Exponentially Stretching/Shrinking Inclined Plate in a Micropolar Fluid
2024
Journal of Advanced Research in Numerical Heat Transfer
16
1
10.37934/arnht.16.1.1734
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85185655914&doi=10.37934%2farnht.16.1.1734&partnerID=40&md5=5d04790a9af84fe7aa7a60c9cc23ba9b
The study investigates the fluid flow characteristics and heat transfer over an exponentially stretching/shrinking inclined plate immersed in a micropolar fluid. The micropolar fluid model considers the rotational effects of microelements relevant to complex industrial fluid behavior. Using similarity variables, the governing equations for fluid flow and heat transfer are transformed from Partial Differential Equations (PDEs) to Ordinary Differential Equations (ODEs), and appropriate boundary conditions are incorporated to simulate the behavior of the micropolar fluid over the inclined plate. The ODEs are numerically solved using MATLAB software with BVP4c, and the results are compared with previous findings, showing good agreement. The effects of critical parameters such as plate inclination angle, stretching/shrinking rate, and micropolar fluid parameters are examined. Notably, the micropolar parameter significantly influences the skin friction for stretching and shrinking flows. An increase in the micropolar parameter leads to increased skin friction for stretching flows, while for shrinking flows, the skin friction decreases within a specific range of stretching/shrinking values. The behavior of the local couple stress becomes complex as the micropolar parameter increases. Additionally, the local Nusselt number decreases as the micropolar parameter increases for shrinking flows, indicating a reduction in heat transfer from the solid surface during shrinking flow. Moreover, an increase in the Sherwood number suggests a relatively slower mass transfer rate than momentum transfer. These findings offer valuable insights into the behavior of micropolar fluids over exponentially stretching/shrinking inclined plates, guiding optimizing heat transfer and fluid flow in practical engineering systems. © 2024, Penerbit Akademia Baru. All rights reserved.
Penerbit Akademia Baru
27350142
English
Article

author Bakar F.N.A.; Soid S.K.; Norzawary N.H.A.; Sohut F.H.
spellingShingle Bakar F.N.A.; Soid S.K.; Norzawary N.H.A.; Sohut F.H.
Stagnation-Point Flow and Heat Transfer over an Exponentially Stretching/Shrinking Inclined Plate in a Micropolar Fluid
author_facet Bakar F.N.A.; Soid S.K.; Norzawary N.H.A.; Sohut F.H.
author_sort Bakar F.N.A.; Soid S.K.; Norzawary N.H.A.; Sohut F.H.
title Stagnation-Point Flow and Heat Transfer over an Exponentially Stretching/Shrinking Inclined Plate in a Micropolar Fluid
title_short Stagnation-Point Flow and Heat Transfer over an Exponentially Stretching/Shrinking Inclined Plate in a Micropolar Fluid
title_full Stagnation-Point Flow and Heat Transfer over an Exponentially Stretching/Shrinking Inclined Plate in a Micropolar Fluid
title_fullStr Stagnation-Point Flow and Heat Transfer over an Exponentially Stretching/Shrinking Inclined Plate in a Micropolar Fluid
title_full_unstemmed Stagnation-Point Flow and Heat Transfer over an Exponentially Stretching/Shrinking Inclined Plate in a Micropolar Fluid
title_sort Stagnation-Point Flow and Heat Transfer over an Exponentially Stretching/Shrinking Inclined Plate in a Micropolar Fluid
publishDate 2024
container_title Journal of Advanced Research in Numerical Heat Transfer
container_volume 16
container_issue 1
doi_str_mv 10.37934/arnht.16.1.1734
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85185655914&doi=10.37934%2farnht.16.1.1734&partnerID=40&md5=5d04790a9af84fe7aa7a60c9cc23ba9b
description The study investigates the fluid flow characteristics and heat transfer over an exponentially stretching/shrinking inclined plate immersed in a micropolar fluid. The micropolar fluid model considers the rotational effects of microelements relevant to complex industrial fluid behavior. Using similarity variables, the governing equations for fluid flow and heat transfer are transformed from Partial Differential Equations (PDEs) to Ordinary Differential Equations (ODEs), and appropriate boundary conditions are incorporated to simulate the behavior of the micropolar fluid over the inclined plate. The ODEs are numerically solved using MATLAB software with BVP4c, and the results are compared with previous findings, showing good agreement. The effects of critical parameters such as plate inclination angle, stretching/shrinking rate, and micropolar fluid parameters are examined. Notably, the micropolar parameter significantly influences the skin friction for stretching and shrinking flows. An increase in the micropolar parameter leads to increased skin friction for stretching flows, while for shrinking flows, the skin friction decreases within a specific range of stretching/shrinking values. The behavior of the local couple stress becomes complex as the micropolar parameter increases. Additionally, the local Nusselt number decreases as the micropolar parameter increases for shrinking flows, indicating a reduction in heat transfer from the solid surface during shrinking flow. Moreover, an increase in the Sherwood number suggests a relatively slower mass transfer rate than momentum transfer. These findings offer valuable insights into the behavior of micropolar fluids over exponentially stretching/shrinking inclined plates, guiding optimizing heat transfer and fluid flow in practical engineering systems. © 2024, Penerbit Akademia Baru. All rights reserved.
publisher Penerbit Akademia Baru
issn 27350142
language English
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