Brownian motion and thermophoretic diffusion impact on Darcy-Forchheimer flow of bioconvective micropolar nanofluid between double disks with Cattaneo-Christov heat flux
dc.authorid | Abdullaev, Sherzod/0000-0002-2454-6708 | |
dc.authorid | Tahir, Madeeha/0000-0002-6634-2877 | |
dc.authorid | Zahran, Heba Yehia/0000-0002-0549-5044 | |
dc.authorid | Imran, Muhammad/0000-0002-2363-5039 | |
dc.contributor.author | Shahzad, Arfan | |
dc.contributor.author | Imran, Muhammad | |
dc.contributor.author | Tahir, Madeeha | |
dc.contributor.author | Khan, Shan Ali | |
dc.contributor.author | Akgul, Ali | |
dc.contributor.author | Abdullaev, Sherzod | |
dc.contributor.author | Park, Choonkil | |
dc.date.accessioned | 2024-12-24T19:25:13Z | |
dc.date.available | 2024-12-24T19:25:13Z | |
dc.date.issued | 2023 | |
dc.department | Siirt Üniversitesi | |
dc.description.abstract | The topic of fluid flow through disks is important due to a broad range of its applications in industries, engineering, and scientific fields. The objective of the current article is to analyze the bioconvective micropolar nanofluid flow between the coaxial, parallel, and radially stretching dou-ble disks in the occurrence of gyrotactic motile microorganisms with convective thermal boundary conditions. Darcy-Forchheimer medium is considered between the double disks that allow the flow horizontally with additional effects of porosity and friction. The flow is also considered under the impacts of thermal conductivity and thermal radiations. The influence of gyrotactic microorganisms is accommodated through the bioconvection, which increases the strength of thermal transporta-tion. Furthermore, the Cattaneo-Christov heat flux theory is also accounted. The flow model is trans moved into a system of ordinary differential equations (ODEs) utilizing appropriate similarity transformation functions. The bvp4c technique has been used to solve the transformed flow model. The implication of some prominent physical and bioconvection parameters on velocities, microro-tation, thermal field, volumetric concentration of nanoparticles, and microorganisms' fields are pre-sented through graphs and tabular ways. It is observed that the stretching ratio parameter of the disks accelerates the axial and micro rotational velocities of the nanofluid. In contrast, the stretch-ing Reynolds number slows down the radial velocity near the plane's center. The temperature pro-file goes high against the Brownian motion, thermal radiation, and thermal conductivity parameters, while an inverse trend has been observed for increasing magnitudes of Prandtl number. The nanoparticles concentration profile is upsurged against the thermophoresis parameter. The density profile of gyrotactic motile microorganisms is de-escalated by the Peclet number and the bioconvection Lewis number. Micropolar parameters cause an increase of couple stresses and a decrement in shear stresses. A comparison with published work is provided under certain limita-tions to test the validity of numerical scheme accuracy. (c) 2022 THE AUTHORS. Published by Elsevier BV on behalf of Faculty of Engineering, Alexandria University This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/ licenses/by-nc-nd/4.0/). | |
dc.description.sponsorship | Deanship of Scientific Research at King Khalid University [RGP.2/238/43]; Deputyship for Research & Innovation, Ministry of Education, in Saudi Arabia [IFP-KKU-2020/10]; Government College University, Faisalabad; Higher Education Commission, Pakistan | |
dc.description.sponsorship | The authors extend their appreciation to the Deanship of Scientific Research at King Khalid University for funding this project under grant number (RGP.2/238/43). The authors express their appreciation to the Deputyship for Research & Innovation, Ministry of Education, in Saudi Arabia, for funding this research work through the project number: (IFP-KKU-2020/10). This work is financially supported by the Government College University, Faisalabad, and Higher Education Commission, Pakistan. | |
dc.identifier.doi | 10.1016/j.aej.2022.07.023 | |
dc.identifier.endpage | 15 | |
dc.identifier.issn | 1110-0168 | |
dc.identifier.issn | 2090-2670 | |
dc.identifier.scopus | 2-s2.0-85135182030 | |
dc.identifier.scopusquality | Q1 | |
dc.identifier.startpage | 1 | |
dc.identifier.uri | https://doi.org/10.1016/j.aej.2022.07.023 | |
dc.identifier.uri | https://hdl.handle.net/20.500.12604/6319 | |
dc.identifier.volume | 62 | |
dc.identifier.wos | WOS:000888079700001 | |
dc.identifier.wosquality | Q1 | |
dc.indekslendigikaynak | Web of Science | |
dc.indekslendigikaynak | Scopus | |
dc.language.iso | en | |
dc.publisher | Elsevier | |
dc.relation.ispartof | Alexandria Engineering Journal | |
dc.relation.publicationcategory | Makale - Uluslararası Hakemli Dergi - Kurum Öğretim Elemanı | |
dc.rights | info:eu-repo/semantics/openAccess | |
dc.snmz | KA_20241222 | |
dc.subject | Bioconvection | |
dc.subject | Cattaneo-Christov Heat flux | |
dc.subject | Micropolar Nanofluid | |
dc.subject | Stretching disks | |
dc.title | Brownian motion and thermophoretic diffusion impact on Darcy-Forchheimer flow of bioconvective micropolar nanofluid between double disks with Cattaneo-Christov heat flux | |
dc.type | Article |