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Simultaneous effects of single wall carbon nanotube and effective variable viscosity for peristaltic flow through annulus having permeable walls

机译:单壁碳纳米管和有效可变粘度对蠕动流过具有可渗透壁的环空的同时影响

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The current article deals with the combine effects of single wall carbon nanotubes and effective viscosity for the peristaltic flow of nanofluid through annulus. The nature of the walls is assumed to be permeable. The present theoretical model can be considered as mathematical representation to the motion of conductive physiological fluids in the existence of the endoscope tube which has many biomedical applications such as drug delivery system. The outer tube has a wave of sinusoidal nature that is travelling along its walls while the inner tube is rigid and uniform. Lubrication approach is used for the considered analysis. An empirical relation for the effective variable viscosity of nanofluid is proposed here interestingly. The viscosity of nanofluid is the function of radial distance and the concentration of nanoparticles. Exact solution for the resulting system of equations is displayed for various quantities of interest. The outcomes show that the maximum velocity of SWCNT-blood nanofluid enhances for larger values of viscosity parameter. The pressure gradient in the more extensive part of the annulus is likewise found to increase as a function of variable viscosity parameter. The size of the trapped bolus is also influenced by variable viscosity parameter. The present examination also revealed that the carbon nanotubes have many applications related to biomedicine.
机译:当前文章讨论了单壁碳纳米管和有效粘度对纳米流体通过环空蠕动流动的综合作用。假定墙壁的性质是可渗透的。在具有许多生物医学应用例如药物输送系统的内窥镜管的存在下,本理论模型可以被认为是对导电生理流体运动的数学表示。外管具有正弦波性质,沿内壁传播,而内管则刚性且均匀。润滑方法用于考虑的分析。在此有趣地提出了纳米流体的有效可变粘度的经验关系。纳米流体的粘度是径向距离和纳米颗粒浓度的函数。针对各种感兴趣的量,显示了所得方程组的精确解。结果表明,SWCNT-血液纳米流体的最大速度随着粘度参数的增大而提高。同样发现,环的较宽部分中的压力梯度会随着粘度参数的变化而增加。捕获的药团的大小也受可变粘度参数的影响。目前的检查还表明,碳纳米管具有许多与生物医学有关的应用。

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