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Heat Transport Exploration for Hybrid Nanoparticle (Cu, Fe(3)O(4))—Based Blood Flow via Tapered Complex Wavy Curved Channel with Slip Features

Curved veins and arteries make up the human cardiovascular system, and the peristalsis process underlies the blood flowing in these ducts. The blood flow in the presence of hybrid nanoparticles through a tapered complex wavy curved channel is numerically investigated. The behavior of the blood is ch...

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Autores principales: Abbasi, A., Farooq, W., Tag-ElDin, El Sayed Mohamed, Khan, Sami Ullah, Khan, M. Ijaz, Guedri, Kamel, Elattar, Samia, Waqas, M., Galal, Ahmed M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9505697/
https://www.ncbi.nlm.nih.gov/pubmed/36144038
http://dx.doi.org/10.3390/mi13091415
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author Abbasi, A.
Farooq, W.
Tag-ElDin, El Sayed Mohamed
Khan, Sami Ullah
Khan, M. Ijaz
Guedri, Kamel
Elattar, Samia
Waqas, M.
Galal, Ahmed M.
author_facet Abbasi, A.
Farooq, W.
Tag-ElDin, El Sayed Mohamed
Khan, Sami Ullah
Khan, M. Ijaz
Guedri, Kamel
Elattar, Samia
Waqas, M.
Galal, Ahmed M.
author_sort Abbasi, A.
collection PubMed
description Curved veins and arteries make up the human cardiovascular system, and the peristalsis process underlies the blood flowing in these ducts. The blood flow in the presence of hybrid nanoparticles through a tapered complex wavy curved channel is numerically investigated. The behavior of the blood is characterized by the Casson fluid model while the physical properties of iron (Fe(3)O(4)) and copper (Cu) are used in the analysis. The fundamental laws of mass, momentum and energy give rise the system of nonlinear coupled partial differential equations which are normalized using the variables, and the resulting set of governing relations are simplified in view of a smaller Reynolds model approach. The numerical simulations are performed using the computational software Mathematica’s built-in ND scheme. It is noted that the velocity of the blood is abated by the nanoparticles’ concentration and assisted in the non-uniform channel core. Furthermore, the nanoparticles’ volume fraction and the dimensionless curvature of the channel reduce the temperature profile.
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spelling pubmed-95056972022-09-24 Heat Transport Exploration for Hybrid Nanoparticle (Cu, Fe(3)O(4))—Based Blood Flow via Tapered Complex Wavy Curved Channel with Slip Features Abbasi, A. Farooq, W. Tag-ElDin, El Sayed Mohamed Khan, Sami Ullah Khan, M. Ijaz Guedri, Kamel Elattar, Samia Waqas, M. Galal, Ahmed M. Micromachines (Basel) Article Curved veins and arteries make up the human cardiovascular system, and the peristalsis process underlies the blood flowing in these ducts. The blood flow in the presence of hybrid nanoparticles through a tapered complex wavy curved channel is numerically investigated. The behavior of the blood is characterized by the Casson fluid model while the physical properties of iron (Fe(3)O(4)) and copper (Cu) are used in the analysis. The fundamental laws of mass, momentum and energy give rise the system of nonlinear coupled partial differential equations which are normalized using the variables, and the resulting set of governing relations are simplified in view of a smaller Reynolds model approach. The numerical simulations are performed using the computational software Mathematica’s built-in ND scheme. It is noted that the velocity of the blood is abated by the nanoparticles’ concentration and assisted in the non-uniform channel core. Furthermore, the nanoparticles’ volume fraction and the dimensionless curvature of the channel reduce the temperature profile. MDPI 2022-08-28 /pmc/articles/PMC9505697/ /pubmed/36144038 http://dx.doi.org/10.3390/mi13091415 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Abbasi, A.
Farooq, W.
Tag-ElDin, El Sayed Mohamed
Khan, Sami Ullah
Khan, M. Ijaz
Guedri, Kamel
Elattar, Samia
Waqas, M.
Galal, Ahmed M.
Heat Transport Exploration for Hybrid Nanoparticle (Cu, Fe(3)O(4))—Based Blood Flow via Tapered Complex Wavy Curved Channel with Slip Features
title Heat Transport Exploration for Hybrid Nanoparticle (Cu, Fe(3)O(4))—Based Blood Flow via Tapered Complex Wavy Curved Channel with Slip Features
title_full Heat Transport Exploration for Hybrid Nanoparticle (Cu, Fe(3)O(4))—Based Blood Flow via Tapered Complex Wavy Curved Channel with Slip Features
title_fullStr Heat Transport Exploration for Hybrid Nanoparticle (Cu, Fe(3)O(4))—Based Blood Flow via Tapered Complex Wavy Curved Channel with Slip Features
title_full_unstemmed Heat Transport Exploration for Hybrid Nanoparticle (Cu, Fe(3)O(4))—Based Blood Flow via Tapered Complex Wavy Curved Channel with Slip Features
title_short Heat Transport Exploration for Hybrid Nanoparticle (Cu, Fe(3)O(4))—Based Blood Flow via Tapered Complex Wavy Curved Channel with Slip Features
title_sort heat transport exploration for hybrid nanoparticle (cu, fe(3)o(4))—based blood flow via tapered complex wavy curved channel with slip features
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9505697/
https://www.ncbi.nlm.nih.gov/pubmed/36144038
http://dx.doi.org/10.3390/mi13091415
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