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Dynamics of variable-viscosity nanofluid flow with heat transfer in a flexible vertical tube under peristaltic waves

机译:蠕动波作用下可变粘度纳米流体在垂直管中的传热动力学

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摘要

The present investigation addresses nanofluid flow and heat transfer in a vertical tube with temperature-dependent viscosity. A Tiwari-Das type formulation is employed for the nanofluid with a viscosity modification. The transport equations are transformed from a cylindrical coordinate system with appropriate variables and simplified via longwave length and low Reynolds number approximations. The resulting boundary value problem is solved analytically. The influence of heat source/sink parameter (), Grashof number (Gr) and the viscosity parameter () and nanoparticle volume fraction () on velocity, temperature, pressure gradient, pressure rise and wall shear stress distributions is presented graphically. Three different nanofluid suspensions are investigated- Titanium oxide-water, Copper oxide-water and Silver-water. Streamline plots are also computed to illustrate bolus dynamics and trapping phenomena which characterize peristaltic propulsion. The computations show that wall shear stress is maximum for the Silver-water nanofluid case. Furthermore the pressure rise is reduced with increasing Grashof number, heat absorption parameter and viscosity parameter in the augmented pumping region whereas the contrary response is observed in the peristaltic pumping region. Significant modification in the quantity of trapped boluses is found with different nanofluids and the size of the trapped bolus is decreased in the Titanium oxide-water nanofluid case with either greater heat source or sink parameter. The study is relevant to drug delivery systems exploiting nano-particles.
机译:本研究解决了垂直管中纳米流体的流动和传热问题,其粘度随温度而变。 Tiwari-Das型配方用于粘度改变的纳米流体。传输方程是从具有适当变量的圆柱坐标系转换而来,并通过长波长和低雷诺数近似来简化。由此产生的边值问题得到了解析解决。图形化地显示了热源/散热器参数(),格拉斯霍夫数(Gr)和粘度参数()和纳米颗粒体积分数()对速度,温度,压力梯度,压力上升和壁切应力分布的影响。研究了三种不同的纳米流体悬浮液-氧化钛-水,氧化铜-水和银-水。还计算了流线图以说明推注动力学和捕获现象,这些现象是蠕动推进的特征。计算表明,对于银水纳米流体,壁切应力最大。此外,在增加的泵送区域中,随着格拉斯霍夫数,吸热参数和粘度参数的增加,压力上升减小,而在蠕动泵送区域中观察到相反的响应。发现在使用不同的纳米流体的情况下,捕集的团块的数量发生了显着的变化,并且在钛氧化物-水纳米流体的情况下,无论是更大的热源还是下沉参数,捕获的团块的尺寸都会减小。该研究与利用纳米粒子的药物递送系统有关。

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