Stability analysis of unsteady hybrid nanofluid flow over the Falkner-Skan wedge

Numerous manufacturing processes, including the drawing of plastic films, have a major impact on mass transport. These functionalities necessitate the solution of the Falkner-Skan equation and some of its configurations when applied to various geometries and boundary conditions. Hence, the current p...

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Main Authors: Zainal, Nurul Amira, Nazar, Roslinda, Naganthran, Kohilavani, Pop, Ioan
Format: Article
Published: MDPI 2022
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Online Access:http://eprints.um.edu.my/42253/
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spelling my.um.eprints.422532023-10-13T01:39:41Z http://eprints.um.edu.my/42253/ Stability analysis of unsteady hybrid nanofluid flow over the Falkner-Skan wedge Zainal, Nurul Amira Nazar, Roslinda Naganthran, Kohilavani Pop, Ioan QC Physics QD Chemistry Numerous manufacturing processes, including the drawing of plastic films, have a major impact on mass transport. These functionalities necessitate the solution of the Falkner-Skan equation and some of its configurations when applied to various geometries and boundary conditions. Hence, the current paper discusses the impact of unsteady hybrid nanofluid flow on a moving Falkner-Skan wedge with a convective boundary condition. This problem is modeled by partial differential equations, which are then converted into ordinary (similar) differential equations using appropriate similarity transformations. The bvp4c technique in MATLAB solves these ordinary differential equations numerically. Since more than one solution is possible in this paper, stability analysis is conducted. Thus, it is found that only one stable solution is identified as reliable (physically realizable in practice). The skin friction coefficient and heat transfer rate, along with the velocity and temperature profile distributions, are examined to determine the values of several parameters. The findings reveal that dual-type nanoparticles and wedge angle parameters improve thermal efficiency. A lower value of the unsteadiness parameter reduces the efficiency of hybrid nanofluids in terms of heat transfer and skin friction coefficient, whereas increasing the Biot number of the working fluid does not affect the critical point in the current analysis. MDPI 2022-05 Article PeerReviewed Zainal, Nurul Amira and Nazar, Roslinda and Naganthran, Kohilavani and Pop, Ioan (2022) Stability analysis of unsteady hybrid nanofluid flow over the Falkner-Skan wedge. Nanomaterials, 12 (10). ISSN 2079-4991, DOI https://doi.org/10.3390/nano12101771 <https://doi.org/10.3390/nano12101771>. 10.3390/nano12101771
institution Universiti Malaya
building UM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Malaya
content_source UM Research Repository
url_provider http://eprints.um.edu.my/
topic QC Physics
QD Chemistry
spellingShingle QC Physics
QD Chemistry
Zainal, Nurul Amira
Nazar, Roslinda
Naganthran, Kohilavani
Pop, Ioan
Stability analysis of unsteady hybrid nanofluid flow over the Falkner-Skan wedge
description Numerous manufacturing processes, including the drawing of plastic films, have a major impact on mass transport. These functionalities necessitate the solution of the Falkner-Skan equation and some of its configurations when applied to various geometries and boundary conditions. Hence, the current paper discusses the impact of unsteady hybrid nanofluid flow on a moving Falkner-Skan wedge with a convective boundary condition. This problem is modeled by partial differential equations, which are then converted into ordinary (similar) differential equations using appropriate similarity transformations. The bvp4c technique in MATLAB solves these ordinary differential equations numerically. Since more than one solution is possible in this paper, stability analysis is conducted. Thus, it is found that only one stable solution is identified as reliable (physically realizable in practice). The skin friction coefficient and heat transfer rate, along with the velocity and temperature profile distributions, are examined to determine the values of several parameters. The findings reveal that dual-type nanoparticles and wedge angle parameters improve thermal efficiency. A lower value of the unsteadiness parameter reduces the efficiency of hybrid nanofluids in terms of heat transfer and skin friction coefficient, whereas increasing the Biot number of the working fluid does not affect the critical point in the current analysis.
format Article
author Zainal, Nurul Amira
Nazar, Roslinda
Naganthran, Kohilavani
Pop, Ioan
author_facet Zainal, Nurul Amira
Nazar, Roslinda
Naganthran, Kohilavani
Pop, Ioan
author_sort Zainal, Nurul Amira
title Stability analysis of unsteady hybrid nanofluid flow over the Falkner-Skan wedge
title_short Stability analysis of unsteady hybrid nanofluid flow over the Falkner-Skan wedge
title_full Stability analysis of unsteady hybrid nanofluid flow over the Falkner-Skan wedge
title_fullStr Stability analysis of unsteady hybrid nanofluid flow over the Falkner-Skan wedge
title_full_unstemmed Stability analysis of unsteady hybrid nanofluid flow over the Falkner-Skan wedge
title_sort stability analysis of unsteady hybrid nanofluid flow over the falkner-skan wedge
publisher MDPI
publishDate 2022
url http://eprints.um.edu.my/42253/
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score 13.159267