Computational study on cilia transport of Prandtl nanofluid (blood-Fe3O4) enhancing convective heat transfer along microorganisms under electroosmotic effects in wavy capillaries

被引:4
|
作者
Ajmal, Madiha [1 ]
Mehmood, Rashid [1 ]
Akbar, Noreen Sher [2 ]
Muhammad, Taseer [3 ]
机构
[1] HITEC Univ, Dept Math, Taxila Cantt, Taxila, Pakistan
[2] Natl Univ Sci & Technol, Coll Elect & Mech Engn Rawalpindi, Dept Basic Sci & Humanities, Islamabad, Pakistan
[3] King Khalid Univ, Coll Sci, Dept Math, Abha, Saudi Arabia
关键词
Numerical simulation; Cilia transport; Prandtl nanofluid (Blood-Fe3O4); Microorganisms; Electroosmotic effects; Membrane; Non-uniform wavy capillaries; STAGNATION-POINT FLOW; GYROTACTIC MICROORGANISMS; VERTICAL PLATE; MAGNETIC-FIELD; BIOCONVECTION; FLUID; BLOCK;
D O I
10.1108/HFF-07-2024-0503
中图分类号
O414.1 [热力学];
学科分类号
摘要
Purpose - This study aims to focuse on the flow behavior of a specific nanofluid composed of blood-based iron oxide nanoparticles, combined with motile gyrotactic microorganisms, in a ciliated channel with electroosmosis. Design/methodology/approach - This study applies a powerful mathematical model to examine the combined impacts of bio convection and electrokinetic forces on nanofluid flow. The presence of cilia, which are described as wave-like motions on the channel walls, promotes fluid propulsion, which improves mixing and mass transport. The velocity and dispersion of nanoparticles and microbes are modified by the inclusion of electroosmosis, which is stimulated by an applied electric field. This adds a significant level of complexity. Findings - To ascertain their impact on flow characteristics, important factors such as bio convection Rayleigh number, Grashoff number, Peclet number and Lewis number are varied. The results demonstrate that while the gyrotactic activity of microorganisms contributes to the stability and homogeneity of the nanofluid distribution, electroosmotic forces significantly enhance fluid mixing and nanoparticle dispersion. This thorough study clarifies how to take advantage of electroosmosis and bio convection in ciliated micro channels to optimize nanofluid-based biomedical applications, such as targeted drug administration and improved diagnostic processes. Originality/value - First paper discussed "Numerical Computation of Cilia Transport of Prandtl Nanofluid (Blood-Fe3O4) Enhancing Convective Heat Transfer along Micro Organisms under Electroosmotic effects in Wavy Capillaries".
引用
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页数:25
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