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Entropy Generation and Statistical Analysis of MHD Hybrid Nanofluid Unsteady Squeezing Flow between Two Parallel Rotating Plates with Activation Energy

Squeezing flow is a flow where the material is squeezed out or disfigured within two parallel plates. Such flow is beneficial in various fields, for instance, in welding engineering and rheometry. The current study investigates the squeezing flow of a hybrid nanofluid (propylene glycol–water mixture...

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Autores principales: Murshid, Nimer, Mulki, Hasan, Abu-Samha, Mahmoud, Owhaib, Wahib, Raju, S. Suresh Kumar, Raju, Chakravarthula S. K., JayachandraBabu, Macherla, Homod, Raad Z., Al-Kouz, Wael
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9321199/
https://www.ncbi.nlm.nih.gov/pubmed/35889605
http://dx.doi.org/10.3390/nano12142381
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author Murshid, Nimer
Mulki, Hasan
Abu-Samha, Mahmoud
Owhaib, Wahib
Raju, S. Suresh Kumar
Raju, Chakravarthula S. K.
JayachandraBabu, Macherla
Homod, Raad Z.
Al-Kouz, Wael
author_facet Murshid, Nimer
Mulki, Hasan
Abu-Samha, Mahmoud
Owhaib, Wahib
Raju, S. Suresh Kumar
Raju, Chakravarthula S. K.
JayachandraBabu, Macherla
Homod, Raad Z.
Al-Kouz, Wael
author_sort Murshid, Nimer
collection PubMed
description Squeezing flow is a flow where the material is squeezed out or disfigured within two parallel plates. Such flow is beneficial in various fields, for instance, in welding engineering and rheometry. The current study investigates the squeezing flow of a hybrid nanofluid (propylene glycol–water mixture combined with paraffin wax–sand) between two parallel plates with activation energy and entropy generation. The governing equations are converted into ordinary differential equations using appropriate similarity transformations. The shooting strategy (combined with Runge–Kutta fourth order method) is applied to solve these transformed equations. The results of the conducted parametric study are explained and revealed in graphs. This study uses a statistical tool (correlation coefficient) to illustrate the impact of the relevant parameters on the engineering parameters of interest, such as the surface friction factor at both plates. This study concludes that the squeezing number intensifies the velocity profiles, and the rotating parameter decreases the fluid velocity. In addition, the magnetic field, rotation parameter, and nanoparticle volumetric parameter have a strong negative relationship with the friction factor at the lower plate. Furthermore, heat source has a strong negative relationship with heat transfer rate near the lower plate, and a strong positive correlation with the same phenomena near the upper plate. In conclusion, the current study reveals that the entropy generation is increased with the Brinkman number and reduced with the squeezing parameter. Moreover, the results of the current study verify and show a decent agreement with the data from earlier published research outcomes.
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spelling pubmed-93211992022-07-27 Entropy Generation and Statistical Analysis of MHD Hybrid Nanofluid Unsteady Squeezing Flow between Two Parallel Rotating Plates with Activation Energy Murshid, Nimer Mulki, Hasan Abu-Samha, Mahmoud Owhaib, Wahib Raju, S. Suresh Kumar Raju, Chakravarthula S. K. JayachandraBabu, Macherla Homod, Raad Z. Al-Kouz, Wael Nanomaterials (Basel) Article Squeezing flow is a flow where the material is squeezed out or disfigured within two parallel plates. Such flow is beneficial in various fields, for instance, in welding engineering and rheometry. The current study investigates the squeezing flow of a hybrid nanofluid (propylene glycol–water mixture combined with paraffin wax–sand) between two parallel plates with activation energy and entropy generation. The governing equations are converted into ordinary differential equations using appropriate similarity transformations. The shooting strategy (combined with Runge–Kutta fourth order method) is applied to solve these transformed equations. The results of the conducted parametric study are explained and revealed in graphs. This study uses a statistical tool (correlation coefficient) to illustrate the impact of the relevant parameters on the engineering parameters of interest, such as the surface friction factor at both plates. This study concludes that the squeezing number intensifies the velocity profiles, and the rotating parameter decreases the fluid velocity. In addition, the magnetic field, rotation parameter, and nanoparticle volumetric parameter have a strong negative relationship with the friction factor at the lower plate. Furthermore, heat source has a strong negative relationship with heat transfer rate near the lower plate, and a strong positive correlation with the same phenomena near the upper plate. In conclusion, the current study reveals that the entropy generation is increased with the Brinkman number and reduced with the squeezing parameter. Moreover, the results of the current study verify and show a decent agreement with the data from earlier published research outcomes. MDPI 2022-07-12 /pmc/articles/PMC9321199/ /pubmed/35889605 http://dx.doi.org/10.3390/nano12142381 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
Murshid, Nimer
Mulki, Hasan
Abu-Samha, Mahmoud
Owhaib, Wahib
Raju, S. Suresh Kumar
Raju, Chakravarthula S. K.
JayachandraBabu, Macherla
Homod, Raad Z.
Al-Kouz, Wael
Entropy Generation and Statistical Analysis of MHD Hybrid Nanofluid Unsteady Squeezing Flow between Two Parallel Rotating Plates with Activation Energy
title Entropy Generation and Statistical Analysis of MHD Hybrid Nanofluid Unsteady Squeezing Flow between Two Parallel Rotating Plates with Activation Energy
title_full Entropy Generation and Statistical Analysis of MHD Hybrid Nanofluid Unsteady Squeezing Flow between Two Parallel Rotating Plates with Activation Energy
title_fullStr Entropy Generation and Statistical Analysis of MHD Hybrid Nanofluid Unsteady Squeezing Flow between Two Parallel Rotating Plates with Activation Energy
title_full_unstemmed Entropy Generation and Statistical Analysis of MHD Hybrid Nanofluid Unsteady Squeezing Flow between Two Parallel Rotating Plates with Activation Energy
title_short Entropy Generation and Statistical Analysis of MHD Hybrid Nanofluid Unsteady Squeezing Flow between Two Parallel Rotating Plates with Activation Energy
title_sort entropy generation and statistical analysis of mhd hybrid nanofluid unsteady squeezing flow between two parallel rotating plates with activation energy
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9321199/
https://www.ncbi.nlm.nih.gov/pubmed/35889605
http://dx.doi.org/10.3390/nano12142381
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