Bioconvection transport of upper convected Maxwell nanoliquid with gyrotactic microorganism, nonlinear thermal radiation, and chemical reaction

被引:9
作者
Li, Shuguang [3 ]
Nasir, Muhammad [4 ]
Waqas, Muhammad [1 ,2 ]
Abdelmohsen, Shaimaa A. M. [5 ]
Eldin, Sayed M. [6 ]
Abdullaev, Sherzod Shukhratovich [7 ,8 ]
Khan, Waqar Azeem [9 ]
机构
[1] Natl Univ Technol, NUTECH Sch Appl Sci & Humanities, Islamabad 44000, Pakistan
[2] Lebanese Amer Univ, Dept Mech Engn, Beirut 1102, Lebanon
[3] Shandong Technol & Business Univ, Sch Comp Sci & Technol, Yantai 264005, Peoples R China
[4] Univ Sultan Zainal Abidin, Fac Informat & Comp, Besut Campus, Besut 22200, Terengganu, Malaysia
[5] Princess Nourah Bint Abdulrahman Univ, Coll Sci, Dept Phys, POB 84428, Riyadh 11671, Saudi Arabia
[6] Future Univ Egypt, Fac Engn, Ctr Res, New Cairo 11835, Egypt
[7] New Uzbekistan Univ, Fac Chem Engn, Tashkent, Uzbekistan
[8] Tashkent State Pedag Univ, Sci Dept, Tashkent, Uzbekistan
[9] Mohi Ud Din Islamic Univ, Dept Math, Nerian Sharif 12010, Azad Jammu & Ka, Pakistan
关键词
Maxwell nanoliquid; gyrotactic microorganisms; Brownian diffusion; Robin conditions; thermophoresis; chemical reaction; transpiration; nonlinear thermal radiation; HEAT-TRANSFER; FLUID-FLOW; NANOMATERIAL;
D O I
10.1515/ntrev-2022-0569
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The microorganisms' concept has appealed substantial consideration of modern researchers because of its utilization in commercial and industrial products, for illustration, biofuel (prepared from the waste), drug delivery, and fertilizers. Keeping such utilizations of microorganisms in mind, an analysis based on gyrotactic microorganisms featuring the mixed convective nonlinear radiative Maxwell nanoliquid stagnation point flow configured by permeable stretching surface is presented. Boundary layer stretching flow subjected to transpiration effects is formulated. Modeling is based on Buongiorno's nanoliquid model. This model captures Brownian diffusion along with thermophoresis aspects. Energy expression is formulated under nonlinear version of radiative heat-flux, heat source, thermal Robin conditions, and heat sink. Mass transport analysis is presented considering solutal Robin conditions and chemical reaction. In addition, the Robin conditions for motile microorganisms are also considered. The complex mathematical expressions of Maxwell liquid are simplified utilizing the Boundary layer concept and then suitable transformations assist to obtain the mathematical problems in ordinary differential forms. The analytical approach (that is homotopy analysis methodology) is utilized for computational analysis. The outcomes obtained are presented graphically and numerically. The detailed description of emerging physical non-dimensional parameters is included. Our findings indicate that the motile density field strongly boosted with the increment in Peclet number and microorganisms Biot number; however, they are suppressed with the increase in the values of bioconvection Schmidt number and motile microorganism concentration difference parameter.
引用
收藏
页数:15
相关论文
共 31 条
[1]   Significance of bioconvection analysis for thermally stratified 3D Cross nanofluid flow with gyrotactic microorganisms and activation energy aspects [J].
Anjum, N. ;
Khan, W. A. ;
Azam, M. ;
Ali, M. ;
Waqas, M. ;
Hussain, I. .
THERMAL SCIENCE AND ENGINEERING PROGRESS, 2023, 38
[2]   Numerical investigation of non-Darcian nanofluid flow across a stretchy elastic medium with velocity and thermal slips [J].
Bhatti, M. M. ;
Ellahi, R. .
NUMERICAL HEAT TRANSFER PART B-FUNDAMENTALS, 2023, 83 (05) :323-343
[3]   Study of the Magnetized Hybrid Nanofluid Flow through a Flat Elastic Surface with Applications in Solar Energy [J].
Bhatti, Muhammad Mubashir ;
Oztop, Hakan F. ;
Ellahi, Rahmat .
MATERIALS, 2022, 15 (21)
[4]   Mathematical modeling and computational outcomes for the thermal oblique stagnation point investigation for non-uniform heat source and nonlinear chemical reactive flow of Maxwell nanofluid [J].
Chu, Yu -Ming ;
Abbasi, Aamar ;
Al-Khaled, Kamel ;
Farooq, Waseh ;
Khan, Sami Ullah ;
Khan, M. Ijaz ;
Eldin, Sayed M. ;
Guedri, Kamel .
CASE STUDIES IN THERMAL ENGINEERING, 2023, 41
[5]   Intensification of heat and mass transfer process in MHD carreau nanofluid flow containing gyrotactic microorganisms [J].
Elayarani, M. ;
Shanmugapriya, M. ;
Kumar, Senthil P. .
CHEMICAL ENGINEERING AND PROCESSING-PROCESS INTENSIFICATION, 2021, 160
[6]   Molecularly imprinted polymers and their use in biomimetic sensors [J].
Haupt, K ;
Mosbach, K .
CHEMICAL REVIEWS, 2000, 100 (07) :2495-2504
[7]   MIXED CONVECTION RADIATIVE FLOW OF MAXWELL FLUID NEAR A STAGNATION POINT WITH CONVECTIVE CONDITION [J].
Hayat, T. ;
Waqas, M. ;
Shehzad, S. A. ;
Alsaedi, A. .
JOURNAL OF MECHANICS, 2013, 29 (03) :403-409
[8]   Eyring-Powell model flow near a convectively heated porous wedge with chemical reaction effects [J].
Hussain, Majid ;
Ranjha, Qasim A. ;
Anwar, Muhammad Shoaib ;
Jahan, Shah ;
Ali, Akhtar .
JOURNAL OF THE TAIWAN INSTITUTE OF CHEMICAL ENGINEERS, 2022, 139
[9]   Double diffusive natural convection of CO2 in a brine saturated geothermal reservoir: Study of non-modal growth of perturbations and heterogeneity effects [J].
Islam, Akand W. ;
Lashgari, Hamid Reza ;
Sephernoori, Kamy .
GEOTHERMICS, 2014, 51 :325-336
[10]   Heat transmission in Darcy-Forchheimer flow of Sutterby nanofluid containing gyrotactic microorganisms [J].
Khan, Ambreen A. ;
Arshad, Alina ;
Ellahi, R. ;
Sait, Sadiq M. .
INTERNATIONAL JOURNAL OF NUMERICAL METHODS FOR HEAT & FLUID FLOW, 2023, 33 (01) :135-152