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首页> 外文期刊>Computer methods in biomechanics and biomedical engineering >Double diffusive convection and Hall effect in creeping flow of viscous nanofluid through a convergent microchannel: a biotechnological applications
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Double diffusive convection and Hall effect in creeping flow of viscous nanofluid through a convergent microchannel: a biotechnological applications

机译:通过收敛微通道粘稠粘液纳米流体蠕动的双重扩散对流和霍尔效应:生物技术应用

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摘要

Current analysis presents the mathematical modeling for peristaltic transport of nanofluid with applications of double-diffusive convection and Hall features. The flow has been induced by a convergent channel due to peristaltic propulsion. These rheological equations are transformed from fixed to wave frames by using a linear mathematical relation between these two frames. The dimensionless variables are used to transform these rheological equations into nondimensional forms. The flow analysis is carried out under two distinct scientific biological assumptions, one is known as long wavelength and the second one is low Reynolds number. The analytical solutions of these rheological equations are obtained with the help of a rigorous analytical method known as integration in the term of stream function. The physical effects of magnetic and Hall devices, respectively, on the flow features are also considered in the present analysis. The physical influences of dominant hydro-mechanical parameters on the axial velocity, pressure gradient, trapping, volumetric fraction of nanofluid, heat and mass transfer phenomena are studied. The complex scenario of biomimetic propulsions are considered in boundary walls to boost the proficiency of peristaltic micropumps.
机译:目前的分析介绍了双扩散对流和霍尔特征的纳米流体蠕动运输的数学模型。由于蠕动推进,通过收敛通道引起流动。通过使用这两个帧之间的线性数学关系,通过固定到波帧转换这些流变方程。无量变量用于将这些流变方程转变为不统治的形式。流动分析在两个不同的科学生物学假设下进行,称为长波长,第二个是低雷诺数。这些流变方程的分析解是在流函数中称为集成的严格分析方法获得的。在本分析中也考虑了磁性和霍尔器件的物理效应在流动特征上。研究了主水力机械参数对轴向速度,压力梯度,捕获,纳米流体,热和传质现象的体积分数的物理影响。在边界壁上考虑了仿生推进的复杂场景,以提高蠕动微泵的熟练程度。

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