Bidirectional non-linear stretched flow of Williamson nanofluid with swimming of motile gyrotactic microorganisms

被引:9
|
作者
Song, Ying-Qing [1 ]
Khan, Sami Ullah [2 ]
Khan, M. Ijaz [3 ,4 ]
Awais, Muhammad [5 ]
Abbasi, Aamar [6 ]
Shi, Qiu-Hong [7 ]
机构
[1] Hunan City Univ, Coll Sci, Yiyang 413000, Peoples R China
[2] COMSATS Univ Islamabad, Dept Math, Sahiwal 57000, Pakistan
[3] Riphah Int Univ, Dept Math, I-14 Islamabad 44000, Pakistan
[4] King Abdulaziz Univ, Dept Math, Nonlinear Anal & Appl Math NAAM Res Grp, Fac Sci, P Box 80257, Jeddah 21589, Saudi Arabia
[5] PMAS Arid Agr Univ, Univ Inst Biochem & Biotechnol, Rawalpindi, Pakistan
[6] Univ Azad Jammu & Kashmir, Dept Math, Muzaffarabad 13100, Pakistan
[7] Huzhou Univ, Dept Math, Huzhou 313000, Peoples R China
关键词
Three-dimensional flow; Williamson nanofluid; Motile microorganisms; Numerical technique; NANOPARTICLES; FLUID; SLIP;
D O I
10.1016/j.amc.2021.126502
中图分类号
O29 [应用数学];
学科分类号
070104 ;
摘要
The fields of material manufacture, graphic designing, information science, aerodynamics, plastic industry and biotechnology have been found to have a greater reliance on the phenomenon of fluid flow over three-dimensional realms. Consequently, this article has been focused to the study of Williamson nanofluid containing microorganisms over three-dimensional surface under the influence of magnetic field through bidirectional nonlinearly stretched surface. To transform the set of nonlinear partial differential equations into ordinary differentials equations by using appropriate similarity transformation. These obtained fundamental ordinary differential equations are solved numerically by exploiting bvp4c process built-in MATLAB mathematical software. The presentation of the results has been made in form of graphs and tables to warrant the comparison between different scenarios. More specifically the parameters like temperature profile, velocity profile, motility of organisms, concentration profiles, Peclet numbers, Lewis number, Williamson parameters, material parameter, Brownian motion parameters, Rayleigh numbers and Prandtl number were presented as the graphical outcomes. The numerical data suggested that greater values of Schmidt number, thermophoresis parameters and Brownian motion reduce the coefficient of wall heat transfer. The study has its applications in transportation hypothesis that is utilized in many automotive and industrial processes. The field of industrial manufacturing has also many applications that consider flow over a bidirectional stretched surface. The current approach explores the cumulative effect of different physical features on the flow of Williamson fluid, and there is no such effort in the reviewed studies. (C) 2021 Elsevier Inc. All rights reserved.
引用
收藏
页数:13
相关论文
共 50 条
  • [41] Response surface optimization and sensitive analysis on biomagnetic blood Carreau nanofluid flow in stenotic artery with motile gyrotactic microorganisms
    Tang, Tao-Qian
    Shah, Zahir
    Thumma, Thirupathi
    Rooman, Muhammad
    Vrinceanu, Narcisa
    Alshehri, Mansoor H.
    [J]. SN APPLIED SCIENCES, 2023, 5 (12)
  • [42] Numerical Simulation of Bioconvection Maxwell Nanofluid Flow due to Stretching/Shrinking Cylinder with Gyrotactic Motile Microorganisms: A Biofuel Applications
    Khan, Shan Ali
    Ramzan, Aleena
    Ali, Muhammad
    Imran, Muhammad
    Machado, Jose Mendes
    Kedzia, Krzysztof
    Jan, Ahmed Zubair
    [J]. BIONANOSCIENCE, 2024,
  • [43] Effective Similarity Variables for the Computations of MHD Flow of Williamson Nanofluid over a Non-Linear Stretching Surface
    Ahmed, Kamran
    McCash, Luthais B.
    Akbar, Tanvir
    Nadeem, Sohail
    [J]. PROCESSES, 2022, 10 (06)
  • [44] Nonlinear radiative flow of nanofluid in presence of gyrotactic microorganisms and magnetohydrodynamic
    Hayat, Tasawar
    Bashir, Zeenat
    Qayyum, Sumaira
    Alsaedi, Ahmed
    [J]. INTERNATIONAL JOURNAL OF NUMERICAL METHODS FOR HEAT & FLUID FLOW, 2019, 29 (09) : 3039 - 3055
  • [45] Nanofluid Flow Comprising Gyrotactic Microorganisms through a Porous Medium
    Ahmad, S.
    Ashraf, M.
    Ali, K.
    [J]. JOURNAL OF APPLIED FLUID MECHANICS, 2020, 13 (05) : 1539 - 1549
  • [46] Shape Effect of Nanoparticles on Nanofluid Flow Containing Gyrotactic Microorganisms
    Rashid, Umair
    Iqbal, Azhar
    Alsharif, Abdullah M.
    [J]. CMES-COMPUTER MODELING IN ENGINEERING & SCIENCES, 2023, 134 (01): : 483 - 494
  • [47] Chemically reactive magnetized tangent hyperbolic bidirectional nanofluid flow subject to interaction of gyrotactic moment of microorganisms and nanoparticles
    Hussain, Zubair
    Khan, Waqar Azeem
    Ali, Mehboob
    Waqas, Muhammad
    Kebail, Imen
    Abbas, Syed Zaheer
    [J]. TRIBOLOGY INTERNATIONAL, 2023, 187
  • [48] Darcy–forchheimer porosity effects on nanofluid with motile gyrotactic microorganisms over convectively heated surface
    Sangeetha, E.
    De, Poulomi
    [J]. Nanoscience and Technology, 2021, 12 (04): : 19 - 38
  • [49] Computational Analysis to Explore Bioconvective Williamson Nanofluid Non-Darcian Flow over a Convective Cylindrical Surface with Gyrotactic Microorganisms and Activation Energy Aspects
    Bilal, S.
    Asadullah
    Malik, M. Y.
    [J]. BIONANOSCIENCE, 2024, 14 (02) : 725 - 747
  • [50] Thermodynamic analysis for bioconvection peristaltic transport of nanofluid with gyrotactic motile microorganisms and Arrhenius activation energy
    Akbar, Y.
    Alotaibi, H.
    Iqbal, J.
    Nisar, Kottakkaran Sooppy
    Alharbi, Khalid Abdulkhaliq M.
    [J]. CASE STUDIES IN THERMAL ENGINEERING, 2022, 34