首页> 美国卫生研究院文献>International Journal of Molecular Sciences >Cu and Cu-SWCNT Nanoparticles’ Suspension in Pulsatile Casson Fluid Flow via Darcy–Forchheimer Porous Channel with Compliant Walls: A Prospective Model for Blood Flow in Stenosed Arteries
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Cu and Cu-SWCNT Nanoparticles’ Suspension in Pulsatile Casson Fluid Flow via Darcy–Forchheimer Porous Channel with Compliant Walls: A Prospective Model for Blood Flow in Stenosed Arteries

机译:Cu和Cu-SWCNT纳米粒子悬浮在Pulsatile Casson流体流中通过达到墙壁的达灵粉末流体流动:狭窄动脉血流的前瞻性模型

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摘要

The use of experimental relations to approximate the efficient thermophysical properties of a nanofluid (NF) with Cu nanoparticles (NPs) and hybrid nanofluid (HNF) with Cu-SWCNT NPs and subsequently model the two-dimensional pulsatile Casson fluid flow under the impact of the magnetic field and thermal radiation is a novelty of the current study. Heat and mass transfer analysis of the pulsatile flow of non-Newtonian Casson HNF via a Darcy–Forchheimer porous channel with compliant walls is presented. Such a problem offers a prospective model to study the blood flow via stenosed arteries. A finite-difference flow solver is used to numerically solve the system obtained using the vorticity stream function formulation on the time-dependent governing equations. The behavior of Cu-based NF and Cu-SWCNT-based HNF on the wall shear stress (WSS), velocity, temperature, and concentration profiles are analyzed graphically. The influence of the Casson parameter, radiation parameter, Hartmann number, Darcy number, Soret number, Reynolds number, Strouhal number, and Peclet number on the flow profiles are analyzed. Furthermore, the influence of the flow parameters on the non-dimensional numbers such as the skin friction coefficient, Nusselt number, and Sherwood number is also discussed. These quantities escalate as the Reynolds number is enhanced and reduce by escalating the porosity parameter. The Peclet number shows a high impact on the microorganism’s density in a blood NF. The HNF has been shown to have superior thermal properties to the traditional one. These results could help in devising hydraulic treatments for blood flow in highly stenosed arteries, biomechanical system design, and industrial plants in which flow pulsation is essential.
机译:使用实验关系的近似一个纳米流体(NF)与铜纳米颗粒(NP)和混合纳米流体(HNF)用的Cu-SWCNT NP的高效热物理性质,并随后进行建模下的冲击二维脉动Casson流体磁场和热辐射是当前研究的新颖性。通过使用符合壁的达西-福希海默多孔通道非牛顿卡松HNF的脉动流的热与质量传递分析被呈现。这样的问题提供一个潜在的模型来研究通过狭窄动脉的血流量。解算器被用来有限差分流动数值求解上使用依赖于时间的控制方程的涡流功能制剂获得的系统。铜基NF和铜基SWCNT-HNF对壁剪切应力(WSS)的行为,速度,温度和浓度分布图形进行分析。的卡松参数,辐射参数,哈特曼数,达西数,索瑞数,雷诺数,Strouhal数,和Peclet数对流动轮廓的影响进行了分析。此外,在无量纲数的流动参数,如皮肤的摩擦系数,努塞尔数,和舍伍德数的影响进行了讨论。这些量升级为雷诺数提高,通过不断升级的孔隙率参数减少。 Peclet数显示在血液NF对微生物密度较高的冲击。所述HNF已经显示出具有优异的热特性与传统一个。这些结果将有助于制订液压治疗中高度狭窄动脉的血流量,生物力学系统的设计,以及工业厂房,其中流量脉动是必不可少的。

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