Axisymmetric boundary layer slip flow with heat transfer over an exponentially stretching bullet-shaped object: A numerical assessment

The slip flow and thermal transfer inside the boundary layer are extremely significant for various problems in aerodynamics, wing stall, skin friction drag on an entity, high-level velocity aircraft, etc. The current research investigated the effect of the slip factor and shape factor on the axisymm...

Full description

Bibliographic Details
Main Authors: Mohammad Ali, R. Nasrin, M.A. Alim
Format: Article
Language:English
Published: Elsevier 2023-03-01
Series:Heliyon
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2405844023008782
_version_ 1827972705621639168
author Mohammad Ali
R. Nasrin
M.A. Alim
author_facet Mohammad Ali
R. Nasrin
M.A. Alim
author_sort Mohammad Ali
collection DOAJ
description The slip flow and thermal transfer inside the boundary layer are extremely significant for various problems in aerodynamics, wing stall, skin friction drag on an entity, high-level velocity aircraft, etc. The current research investigated the effect of the slip factor and shape factor on the axisymmetric bullet-shaped object by taking the viscous dissipation parameter and location parameter. The analysis is conducted for both fixed and moving bullet-shaped objects due to thinner and thicker surfaces. The governing equations are transformed into a system of ordinary differential equations using suitable local axisymmetric similarity transformations and solved by applying the spectral quasi-linearization method. A new correlation analysis is made for velocity and temperature gradients. It is observed that the boundary layer structure has no defined shape due to a thicker bullet-shaped object instead it forms a steep angle with the axis which is contradictory to the formation of the boundary layer. A negative correlation is observed for the parameters M, Ec, Q*, and s but a positive correlation is observed for the parameters such as Pr, P, λ, and ε. The surface thickness and stretching ratio significantly affect the fluid flow and heat transfer processes. It is also noticed that the thinner bullet-shaped object performs as a better cooling conductor compared to a thicker one. The skin friction is reduced in the case of a thinner bullet-shaped object compared to a thicker one. The present analysis reveals that the heat transfer rate and the friction factor may be helpful in industrial sectors for controlling the cooling rate and quality of the final product. This research brings forward to increase in the rate of heat transfer inside the boundary layer region. The result may help to design the various types of moving objects in the automobile engineering sector when the objects pass through the fluid.
first_indexed 2024-04-09T19:25:40Z
format Article
id doaj.art-824319c4da734cd0bf43d0d28f40bac9
institution Directory Open Access Journal
issn 2405-8440
language English
last_indexed 2024-04-09T19:25:40Z
publishDate 2023-03-01
publisher Elsevier
record_format Article
series Heliyon
spelling doaj.art-824319c4da734cd0bf43d0d28f40bac92023-04-05T08:15:49ZengElsevierHeliyon2405-84402023-03-0193e13671Axisymmetric boundary layer slip flow with heat transfer over an exponentially stretching bullet-shaped object: A numerical assessmentMohammad Ali0R. Nasrin1M.A. Alim2Department of Mathematics, Bangladesh University of Engineering and Technology, Dhaka, 1000, Bangladesh; Department of Mathematics, Chittagong University of Engineering and Technology, Chittagong, 4349, BangladeshDepartment of Mathematics, Bangladesh University of Engineering and Technology, Dhaka, 1000, Bangladesh; Corresponding author.Department of Mathematics, Bangladesh University of Engineering and Technology, Dhaka, 1000, BangladeshThe slip flow and thermal transfer inside the boundary layer are extremely significant for various problems in aerodynamics, wing stall, skin friction drag on an entity, high-level velocity aircraft, etc. The current research investigated the effect of the slip factor and shape factor on the axisymmetric bullet-shaped object by taking the viscous dissipation parameter and location parameter. The analysis is conducted for both fixed and moving bullet-shaped objects due to thinner and thicker surfaces. The governing equations are transformed into a system of ordinary differential equations using suitable local axisymmetric similarity transformations and solved by applying the spectral quasi-linearization method. A new correlation analysis is made for velocity and temperature gradients. It is observed that the boundary layer structure has no defined shape due to a thicker bullet-shaped object instead it forms a steep angle with the axis which is contradictory to the formation of the boundary layer. A negative correlation is observed for the parameters M, Ec, Q*, and s but a positive correlation is observed for the parameters such as Pr, P, λ, and ε. The surface thickness and stretching ratio significantly affect the fluid flow and heat transfer processes. It is also noticed that the thinner bullet-shaped object performs as a better cooling conductor compared to a thicker one. The skin friction is reduced in the case of a thinner bullet-shaped object compared to a thicker one. The present analysis reveals that the heat transfer rate and the friction factor may be helpful in industrial sectors for controlling the cooling rate and quality of the final product. This research brings forward to increase in the rate of heat transfer inside the boundary layer region. The result may help to design the various types of moving objects in the automobile engineering sector when the objects pass through the fluid.http://www.sciencedirect.com/science/article/pii/S2405844023008782Axisymmetric boundary layerExponentially stretching surfaceSlip flow and heat transferNumerical assessmentBullet-shaped object
spellingShingle Mohammad Ali
R. Nasrin
M.A. Alim
Axisymmetric boundary layer slip flow with heat transfer over an exponentially stretching bullet-shaped object: A numerical assessment
Heliyon
Axisymmetric boundary layer
Exponentially stretching surface
Slip flow and heat transfer
Numerical assessment
Bullet-shaped object
title Axisymmetric boundary layer slip flow with heat transfer over an exponentially stretching bullet-shaped object: A numerical assessment
title_full Axisymmetric boundary layer slip flow with heat transfer over an exponentially stretching bullet-shaped object: A numerical assessment
title_fullStr Axisymmetric boundary layer slip flow with heat transfer over an exponentially stretching bullet-shaped object: A numerical assessment
title_full_unstemmed Axisymmetric boundary layer slip flow with heat transfer over an exponentially stretching bullet-shaped object: A numerical assessment
title_short Axisymmetric boundary layer slip flow with heat transfer over an exponentially stretching bullet-shaped object: A numerical assessment
title_sort axisymmetric boundary layer slip flow with heat transfer over an exponentially stretching bullet shaped object a numerical assessment
topic Axisymmetric boundary layer
Exponentially stretching surface
Slip flow and heat transfer
Numerical assessment
Bullet-shaped object
url http://www.sciencedirect.com/science/article/pii/S2405844023008782
work_keys_str_mv AT mohammadali axisymmetricboundarylayerslipflowwithheattransferoveranexponentiallystretchingbulletshapedobjectanumericalassessment
AT rnasrin axisymmetricboundarylayerslipflowwithheattransferoveranexponentiallystretchingbulletshapedobjectanumericalassessment
AT maalim axisymmetricboundarylayerslipflowwithheattransferoveranexponentiallystretchingbulletshapedobjectanumericalassessment