Lower stagnation point flow of convectively heated horizontal circular cylinder in Jeffrey nanofluid with suction/injection

Lower stagnation point flow of Jeffrey nanofluid from a horizontal circular cylinder is addressed under the influences of suction/injection, mixed convection and convective boundary conditions. Copper (Cu) is taken as the nanoparticles while Carboxymethyl cellulose (CMC) water is taken as the base f...

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Main Authors: Syazwani, Mohd Zokri, Nur Syamilah, Arifin, Abdul Rahman, Mohd Kasim, Mohd Zuki, Salleh
Format: Article
Language:English
English
Published: Akademia Baru Publishing (M) Sdn Bhd 2020
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Online Access:http://umpir.ump.edu.my/id/eprint/27899/1/1.%20Lower%20stagnation%20point%20flow%20of%20convectively%20heated.pdf
http://umpir.ump.edu.my/id/eprint/27899/2/1.1%20Lower%20stagnation%20point%20flow%20of%20convectively%20heated.pdf
http://umpir.ump.edu.my/id/eprint/27899/
http://akademiabaru.com/submit/index.php/arfmts/article/view/1165/128
https://doi.org/10.37934/arfmts.76.1.135144
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spelling my.ump.umpir.278992020-12-21T08:07:56Z http://umpir.ump.edu.my/id/eprint/27899/ Lower stagnation point flow of convectively heated horizontal circular cylinder in Jeffrey nanofluid with suction/injection Syazwani, Mohd Zokri Nur Syamilah, Arifin Abdul Rahman, Mohd Kasim Mohd Zuki, Salleh QA75 Electronic computers. Computer science Lower stagnation point flow of Jeffrey nanofluid from a horizontal circular cylinder is addressed under the influences of suction/injection, mixed convection and convective boundary conditions. Copper (Cu) is taken as the nanoparticles while Carboxymethyl cellulose (CMC) water is taken as the base fluid. The transformed boundary layer equations through the nondimensional variables and non-similarity transformation variables are subsequently tackled by means of the Runge-Kutta Fehlberg method (RKF 45). The impact of dimensionless parameters such as the suction/injection, nanoparticles volume fraction and Deborah number are graphically presented and discussed in detail. The outcomes reveal that both the velocity and temperature profiles are augmented with upsurge volume fraction values of nanoparticles. Velocity profile escalates as suction/injection parameter rises but declines as Deborah number upsurges. Temperature profile reduces when suction/injection parameter enlarges and augments when Deborah number increases. Akademia Baru Publishing (M) Sdn Bhd 2020-12 Article PeerReviewed pdf en http://umpir.ump.edu.my/id/eprint/27899/1/1.%20Lower%20stagnation%20point%20flow%20of%20convectively%20heated.pdf pdf en http://umpir.ump.edu.my/id/eprint/27899/2/1.1%20Lower%20stagnation%20point%20flow%20of%20convectively%20heated.pdf Syazwani, Mohd Zokri and Nur Syamilah, Arifin and Abdul Rahman, Mohd Kasim and Mohd Zuki, Salleh (2020) Lower stagnation point flow of convectively heated horizontal circular cylinder in Jeffrey nanofluid with suction/injection. Journal of Advanced Research in Fluid Mechanics and Thermal Sciences, 76 (1). pp. 135-144. ISSN 2289-7879 http://akademiabaru.com/submit/index.php/arfmts/article/view/1165/128 https://doi.org/10.37934/arfmts.76.1.135144
institution Universiti Malaysia Pahang
building UMP Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Malaysia Pahang
content_source UMP Institutional Repository
url_provider http://umpir.ump.edu.my/
language English
English
topic QA75 Electronic computers. Computer science
spellingShingle QA75 Electronic computers. Computer science
Syazwani, Mohd Zokri
Nur Syamilah, Arifin
Abdul Rahman, Mohd Kasim
Mohd Zuki, Salleh
Lower stagnation point flow of convectively heated horizontal circular cylinder in Jeffrey nanofluid with suction/injection
description Lower stagnation point flow of Jeffrey nanofluid from a horizontal circular cylinder is addressed under the influences of suction/injection, mixed convection and convective boundary conditions. Copper (Cu) is taken as the nanoparticles while Carboxymethyl cellulose (CMC) water is taken as the base fluid. The transformed boundary layer equations through the nondimensional variables and non-similarity transformation variables are subsequently tackled by means of the Runge-Kutta Fehlberg method (RKF 45). The impact of dimensionless parameters such as the suction/injection, nanoparticles volume fraction and Deborah number are graphically presented and discussed in detail. The outcomes reveal that both the velocity and temperature profiles are augmented with upsurge volume fraction values of nanoparticles. Velocity profile escalates as suction/injection parameter rises but declines as Deborah number upsurges. Temperature profile reduces when suction/injection parameter enlarges and augments when Deborah number increases.
format Article
author Syazwani, Mohd Zokri
Nur Syamilah, Arifin
Abdul Rahman, Mohd Kasim
Mohd Zuki, Salleh
author_facet Syazwani, Mohd Zokri
Nur Syamilah, Arifin
Abdul Rahman, Mohd Kasim
Mohd Zuki, Salleh
author_sort Syazwani, Mohd Zokri
title Lower stagnation point flow of convectively heated horizontal circular cylinder in Jeffrey nanofluid with suction/injection
title_short Lower stagnation point flow of convectively heated horizontal circular cylinder in Jeffrey nanofluid with suction/injection
title_full Lower stagnation point flow of convectively heated horizontal circular cylinder in Jeffrey nanofluid with suction/injection
title_fullStr Lower stagnation point flow of convectively heated horizontal circular cylinder in Jeffrey nanofluid with suction/injection
title_full_unstemmed Lower stagnation point flow of convectively heated horizontal circular cylinder in Jeffrey nanofluid with suction/injection
title_sort lower stagnation point flow of convectively heated horizontal circular cylinder in jeffrey nanofluid with suction/injection
publisher Akademia Baru Publishing (M) Sdn Bhd
publishDate 2020
url http://umpir.ump.edu.my/id/eprint/27899/1/1.%20Lower%20stagnation%20point%20flow%20of%20convectively%20heated.pdf
http://umpir.ump.edu.my/id/eprint/27899/2/1.1%20Lower%20stagnation%20point%20flow%20of%20convectively%20heated.pdf
http://umpir.ump.edu.my/id/eprint/27899/
http://akademiabaru.com/submit/index.php/arfmts/article/view/1165/128
https://doi.org/10.37934/arfmts.76.1.135144
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score 13.211869