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Numerical modelling on pulsatile flow of Casson nanofluid through an inclined artery with stenosis and tapering under the influence of magnetic field and periodic body acceleration

机译:磁场影响下狭窄动脉倾斜动脉脉络纳米流体脉动流动的数值模型及周期性机体加速度

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The present study investigates the pulsatile flow of Casson nanofluid through an inclined and stenosed artery with tapering in the presence of magnetic field and periodic body acceleration. The iron oxide nanoparticles are allowed to flow along with it. The governing equations for the flow of Casson fluid when the artery is tapered slightly having mild stenosis are highly non-linear and the momentum equations for temperature and concentration are coupled and are solved using finite difference numerical schemes in order to find the solutions for velocity, temperature, concentration, wall shear stress, and resistance to blood flow. The aim of the present study is to analyze the effects of flow parameters on the flow of nanofluid through an inclined arterial stenosis with tapering. These effects are represented graphically and concluded that the wall shear stress profiles enhance with increase in yield stress, magnetic field, thermophoresis parameter and decreases with Brownian motion parameter, local temperature Grashof number, local nanoparticle Grashof number. The significance of the model is the existence of yield stress and it is examined that when the rheology of blood changes from Newtonian to Casson fluid, the percentage of decrease in the flow resistance is higher with respect to the increase in the parameters local temperature Grashof number, local nanoparticle Grashof number, Brownian motion parameter, and Prandtl number. It is pertinent to observe that increase in the Brownian motion parameter leads to increment in concentration and temperature profiles. It is observed that the concentration of nanoparticles decreases with increase in the value of thermophoresis parameter.
机译:本研究研究了Casson Nanofluid通过倾斜和狭窄的动脉通过逐渐变细,在磁场的存在和周期性的身体加速度的情况下通过倾斜和狭窄的动脉进行脉动流动。允许氧化铁纳米颗粒与其一起流动。当动脉稍微逐渐变细时具有温和的狭窄时的腺体流体流动的控制方程是高度非线性的,并且使用有限差值数值方案来解决温度和浓度的动量方程,以找到速度的解决方案,温度,浓度,壁剪切应力和血流抗性。本研究的目的是分析流动参数对纳米流体流动通过逐渐变细胞狭窄的影响。以图形方式表示这些效果并得出结论,壁剪切应力分布随着屈服应力,磁场,热孔参数的增加而增强,与褐色运动参数,局部温度Grashof数量,局部纳米粒子麦克风数量减少。该模型的重要性是屈服应力的存在,试图检查从牛顿对鲫鱼的血液变化时,相对于参数局部温度Grashof数量的增加,流动阻力的降低百分比更高,局部纳米粒子Grashof编号,布朗运动参数和普朗特数。它有关观察到褐色运动参数的增加导致浓度和温度型材的增加。观察到,纳米颗粒的浓度随着蒸粒参数的值的增加而降低。

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