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Thermal mixing performances of shear-thinning non-Newtonian fluids inside Two-Layer Crossing Channels Micromixer using entropy generation method: Comparative study

机译:采用熵生成法测定双层交叉通道微混合器内部剪切稀疏非牛顿流体的热混合性能:比较研究

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摘要

In this work, a numerical comparative study is carried out to investigate a laminar steady flow behavior of shear-thinning non-Newtonian fluids in three chaotic geometries: Two-Layer Crossing Channel Micromixer, C-shaped channel and serpentine channel. The process is validated for non-Newtonian flow in a complex geometry which heated by a constant flux. Secondary flow structures are formed in the chosen geometries enhance significantly the fluid dynamic performances. To characterize this performance Poincare map method is presented for different geometries with various cases of fluid power-law index. Thermal mixing behavior with two different inlet temperatures of shear-thinning fluids in the considered geometries is performed. For various cases of fluid power-law indexes, the TLCCM displayed thermal mixing degree enhancement of 42-84% relative to the thermal mixing degree in both C-shaped and serpentine channels. The second law of thermodynamics is controlled in terms of entropy generation due to the thermal and hydrodynamic process, as a function of low rates of generalized Reynolds number and power-law index, under the effects chaotic advection. Thereby, the TLCCM configuration exhibited very important enhancement of mixing degree than that obtained in other considered geometries, with minimization of friction and thermal irreversibilities.
机译:在这项工作中,进行了数值比较研究,以研究三种混沌几何形状中剪切稀释的非牛顿流体的层状稳定流动:双层交叉通道微混合器,C形通道和蛇形通道。该过程被验证以在由恒定通量加热的复杂几何形状中的非牛顿流动。次要流动结构形成在所选择的几何形状中,显着提高流体动态性能。为了表征这种性能,庞肯地图方法具有不同几何形状的不同几何,流体幂律指标。进行具有考虑几何形状中的两种不同入口温度的热混合行为。对于各种流体动力法指标的情况,TLCCM相对于C形和蛇形通道中的热混合度显示出热混合度增强42-84%。由于热敏和流体动力学过程,在熵产生方面控制第二热力学定律,作为广义雷诺数和幂律指标的低速率,在混沌平程下的函数下。由此,TLCCM配置表现出比其他在其他考虑的几何形状中获得的混合程度的非常重要的增强,最小化摩擦和热不缩探。

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