Analysis of biomagnetic blood Carreau hybrid nanofluid flow in stenotic arteries with motile gyrotactic microorganisms: Response surface optimisation

被引:0
|
作者
Kumar, Maddina Dinesh [1 ,2 ]
Jayasri, P. [3 ]
Palencia, Jose Luis Diaz [1 ]
Durgaprasad, P. [3 ]
Chamkha, Ali J. [4 ]
Raju, C. S. K. [5 ]
机构
[1] Univ Distancia Madrid, Dept Math & Educ, Madrid 28400, Spain
[2] BV Raju Inst Technol, Dept Math, Medak 502313, Telangana, India
[3] Vellore Inst Technol, SAS, Div Math, Chennai 600127, India
[4] Kuwait Coll Sci & Technol, Fac Engn, Doha District 35004, Kuwait
[5] RV Univ, RTA Ctr Sci Innovat, Sch Comp Sci & Engn, Bangalore, India
来源
EUROPEAN PHYSICAL JOURNAL PLUS | 2024年 / 139卷 / 09期
关键词
METHODOLOGY; CONVECTION;
D O I
10.1140/epjp/s13360-024-05611-3
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
Cardiovascular diseases remain a leading cause of death globally, with stenosis playing a significant role in their development. Blood flow dynamics within stenosed arteries are intricate and influenced by various factors, including nanoparticles and microorganisms. This study actively investigates the flow behaviour of biomagnetic blood Carreau tetra hybrid nanofluid within stenotic arteries containing motile gyrotactic microorganisms through response surface optimisation. The formulation is rooted in the Carreau model, elucidating non-Newtonian fluid behaviours, incorporating the Lorentz force to address the magnetic field effects, and integrating the convective-diffusion equation to model microorganism transport. We derived numerical solutions using the built-in solver in MATLAB, i.e. ODE45. The computational domain encompasses a two-dimensional stenosed artery featuring a sinusoidal stenosis profile. We characterise the inlet conditions with fully developed Carreau fluid flow accompanied by a uniform magnetic field, while the outlet conditions involve a zero-pressure gradient. The arterial walls are assumed to be rigid and non-slip. Response surface optimisation employs the central composite design method to minimise pressure drop across the stenosis, yielding optimal values for input parameters, including magnetic field strength, nanoparticle concentration, and microorganism concentration. The study discerns the substantial influence of nanoparticles and microorganisms on flow behaviour within stenosed arteries, underscoring the efficacy of response surface optimisation in flow behaviour optimisation. Limitations include assumptions of steady flow and simplifications in artery geometry, suggesting avenues for future exploration, particularly in transient flow dynamics and three-dimensional artery geometries. The validation of the numerical simulations demonstrates strong alignment with published data.
引用
收藏
页数:22
相关论文
共 49 条
  • [41] A comparative analysis of the blood-based hybrid nanofluid flow containing Cu and CuO nanoparticles over an exponentially extending surface
    Algehyne, Ebrahem A.
    Alamrani, Fahad Maqbul
    Khan, Arshad
    Khan, Khurshid Alam
    Lone, Showkat Ahmad
    Saeed, Anwar
    PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART E-JOURNAL OF PROCESS MECHANICAL ENGINEERING, 2024,
  • [42] Response surface methodology and sensitive analysis for optimizing heat transfer rate on the 3D hybrid nanofluid flow through permeable stretching surface
    Subhajit Panda
    Surender Ontela
    S. R. Mishra
    P. K. Pattnaik
    Journal of Thermal Analysis and Calorimetry, 2023, 148 : 7369 - 7382
  • [43] Response surface methodology and sensitive analysis for optimizing heat transfer rate on the 3D hybrid nanofluid flow through permeable stretching surface
    Panda, Subhajit
    Ontela, Surender
    Mishra, S. R.
    Pattnaik, P. K.
    JOURNAL OF THERMAL ANALYSIS AND CALORIMETRY, 2023, 148 (14) : 7369 - 7382
  • [44] Sensitivity analysis of various factors on the micropolar hybrid nanofluid flow with optimized heat transfer rate using response surface methodology: A statistical approach
    Baithalu, Rupa
    Mishra, S. R.
    Shah, Nehad Ali
    PHYSICS OF FLUIDS, 2023, 35 (10)
  • [45] Comparative analysis of response surface methodology and sensitivity analysis on radiative hybrid nanofluid flow over an inclined spinning disk with non-uniform heat source
    Pyari, Devarsu Radha
    Thumma, Thirupathi
    Ontela, Surender
    MULTISCALE AND MULTIDISCIPLINARY MODELING EXPERIMENTS AND DESIGN, 2025, 8 (03)
  • [46] Entropy optimization and response surface methodology of blood hybrid nanofluid flow through composite stenosis artery with magnetized nanoparticles (Au-Ta) for drug delivery application
    Ebrahem A. Algehyne
    N. Ameer Ahammad
    Mohamed E. Elnair
    Mohamed Zidan
    Yasir Y. Alhusayni
    B. O. El-Bashir
    Anwar Saeed
    Ali Saleh Alshomrani
    Faris Alzahrani
    Scientific Reports, 13
  • [47] Sensitivity analysis on optimizing heat transfer rate in hybrid nanofluid flow over a permeable surface for the power law heat flux model: Response surface methodology with ANOVA test
    Mishra, S. R.
    Panda, Subhajit
    Alshehri, Mansoor
    Shah, Nehad Ali
    Chung, Jae Dong
    AIMS MATHEMATICS, 2024, 9 (05): : 12700 - 12725
  • [48] Entropy optimization and response surface methodology of blood hybrid nanofluid flow through composite stenosis artery with magnetized nanoparticles (Au-Ta) for drug delivery application
    Algehyne, Ebrahem A.
    Ahammad, N. Ameer
    Elnair, Mohamed E.
    Zidan, Mohamed
    Alhusayni, Yasir Y.
    El-Bashir, B. O.
    Saeed, Anwar
    Alshomrani, Ali Saleh
    Alzahrani, Faris
    SCIENTIFIC REPORTS, 2023, 13 (01)
  • [49] Heat transfer analysis for 3d ternary hybrid nanofluid flow with MHD and non-fourier flux impact over a linearly stretching surface: Response surface optimization
    Al Ruwaili, Shahad Gharbi
    Raju, S. Suresh Kumar
    Kumar, Maddina Dinesh
    Al Mukahal, Fatemah H. H.
    CASE STUDIES IN THERMAL ENGINEERING, 2024, 55