Dynamics of water conveying SWCNT nanoparticles and swimming microorganisms over a Riga plate subject to heat source/sink

Electromagnetohydrodynamic (EMHD) is very important because of its numerous advantages such as flow control in fluidics networks, fluid pumping, thermal reactors, mixing, fluid stirring, liquid chromatography, and micro coolers. Based on the above applications in this article discussed the electroma...

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Autores principales: J.K. Madhukesh, G.K. Ramesh, Emad H. Aly, Ali J. Chamkha
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Lenguaje:EN
Publicado: Elsevier 2022
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Acceso en línea:https://doaj.org/article/421a34e2e68c4c139220f4186a7290c2
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spelling oai:doaj.org-article:421a34e2e68c4c139220f4186a7290c22021-12-02T04:59:38ZDynamics of water conveying SWCNT nanoparticles and swimming microorganisms over a Riga plate subject to heat source/sink1110-016810.1016/j.aej.2021.06.104https://doaj.org/article/421a34e2e68c4c139220f4186a7290c22022-03-01T00:00:00Zhttp://www.sciencedirect.com/science/article/pii/S111001682100466Xhttps://doaj.org/toc/1110-0168Electromagnetohydrodynamic (EMHD) is very important because of its numerous advantages such as flow control in fluidics networks, fluid pumping, thermal reactors, mixing, fluid stirring, liquid chromatography, and micro coolers. Based on the above applications in this article discussed the electromagnetic forces on the SWCNT/water flow with microorganisms over a Riga plate subject to slip effects. In addition, the uniform heat source/sink effect is used in the energy equation, as well as the thermophoretic effect in the concentration equation. The governing nonlinear system of partial differential equations (PDEs) was reduced to ordinary differential equations (ODEs) by applying the appropriate similarity variables. Hence, Runge-Kutta-Fehlberg (RKF-45) method was applied to numerically solve the extremely nonlinear system. Based on the analysis of the results, it is worth concluding that raising the role of slip effects lowers the velocity, temperature, and concentration curves, while increasing the solid volume fraction increases the temperature, concentration, and motile microorganism density.J.K. MadhukeshG.K. RameshEmad H. AlyAli J. ChamkhaElsevierarticleRiga plateCarbon nanotubesUniform heat source/sinkThermophoretic particle depositionBioconvectionEngineering (General). Civil engineering (General)TA1-2040ENAlexandria Engineering Journal, Vol 61, Iss 3, Pp 2418-2429 (2022)
institution DOAJ
collection DOAJ
language EN
topic Riga plate
Carbon nanotubes
Uniform heat source/sink
Thermophoretic particle deposition
Bioconvection
Engineering (General). Civil engineering (General)
TA1-2040
spellingShingle Riga plate
Carbon nanotubes
Uniform heat source/sink
Thermophoretic particle deposition
Bioconvection
Engineering (General). Civil engineering (General)
TA1-2040
J.K. Madhukesh
G.K. Ramesh
Emad H. Aly
Ali J. Chamkha
Dynamics of water conveying SWCNT nanoparticles and swimming microorganisms over a Riga plate subject to heat source/sink
description Electromagnetohydrodynamic (EMHD) is very important because of its numerous advantages such as flow control in fluidics networks, fluid pumping, thermal reactors, mixing, fluid stirring, liquid chromatography, and micro coolers. Based on the above applications in this article discussed the electromagnetic forces on the SWCNT/water flow with microorganisms over a Riga plate subject to slip effects. In addition, the uniform heat source/sink effect is used in the energy equation, as well as the thermophoretic effect in the concentration equation. The governing nonlinear system of partial differential equations (PDEs) was reduced to ordinary differential equations (ODEs) by applying the appropriate similarity variables. Hence, Runge-Kutta-Fehlberg (RKF-45) method was applied to numerically solve the extremely nonlinear system. Based on the analysis of the results, it is worth concluding that raising the role of slip effects lowers the velocity, temperature, and concentration curves, while increasing the solid volume fraction increases the temperature, concentration, and motile microorganism density.
format article
author J.K. Madhukesh
G.K. Ramesh
Emad H. Aly
Ali J. Chamkha
author_facet J.K. Madhukesh
G.K. Ramesh
Emad H. Aly
Ali J. Chamkha
author_sort J.K. Madhukesh
title Dynamics of water conveying SWCNT nanoparticles and swimming microorganisms over a Riga plate subject to heat source/sink
title_short Dynamics of water conveying SWCNT nanoparticles and swimming microorganisms over a Riga plate subject to heat source/sink
title_full Dynamics of water conveying SWCNT nanoparticles and swimming microorganisms over a Riga plate subject to heat source/sink
title_fullStr Dynamics of water conveying SWCNT nanoparticles and swimming microorganisms over a Riga plate subject to heat source/sink
title_full_unstemmed Dynamics of water conveying SWCNT nanoparticles and swimming microorganisms over a Riga plate subject to heat source/sink
title_sort dynamics of water conveying swcnt nanoparticles and swimming microorganisms over a riga plate subject to heat source/sink
publisher Elsevier
publishDate 2022
url https://doaj.org/article/421a34e2e68c4c139220f4186a7290c2
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AT gkramesh dynamicsofwaterconveyingswcntnanoparticlesandswimmingmicroorganismsoverarigaplatesubjecttoheatsourcesink
AT emadhaly dynamicsofwaterconveyingswcntnanoparticlesandswimmingmicroorganismsoverarigaplatesubjecttoheatsourcesink
AT alijchamkha dynamicsofwaterconveyingswcntnanoparticlesandswimmingmicroorganismsoverarigaplatesubjecttoheatsourcesink
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