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Mixing of Shear-Thinning Fluids with Yield Stress in Stirred Tanks

机译:搅拌罐中剪切稀化流体与屈服应力的混合

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Mixing of shear-thinning fluids with yield stress is investigated in a three-dimensional(3-D)flow both in experiments and in simulations.Experiments are conducted in a stirred tank using tracer visualization and velocity measurements.Bulk flow visualization shows the familiar cavern formation around the impeller with stagnant zones surrounding it.Detailed flow visualization inside caverns reveals the main ingredients of chaotic flow:lobe formation,stretching,folding,and self-similar mixing patterns.For multiple impeller systems,however,we find strong compartmentalization characterized by robust segregation between adjacent caverns,hindering mixing performance.Mixing efficiency is enhanced by moving the shaft off-center,which breaks spatial symmetry.The displacement of the shaft from the tank centerline has a beneficial effect on manifold structure:segregated regions are destroyed,separatrices are eliminated,and axial circulation is improved.Numerical simulations are performed by solving the incompressible Reynolds Averaged Navier Stokes equation with a Galerkin Least-Squares finite-element formulation and a macroscopic rheological model.Simulations are able to capture the main features of the flow and are used to investigate stretching statistics and scale behavior.
机译:在三维(3-D)流动中通过实验和模拟研究了稀疏剪切流体与屈服应力的混合,在搅拌罐中使用示踪剂可视化和速度测量进行了实验,大流量可视化显示了熟悉的洞穴在叶轮周围形成停滞区。在洞穴内进行详细的流动可视化,揭示了混沌流动的主要成分:叶片形成,伸展,折叠和自相似的混合模式。但是,对于多个叶轮系统,我们发现具有以下特点的强分隔性相邻洞穴之间的牢固隔离,阻碍了混合性能。轴的偏离中心位置提高了混合效率,这打破了空间对称性。轴从储罐中心线的位移对歧管结构产生了有益的影响:分离区域被破坏,分离消除并改善了轴向循环。Solvin进行了数值模拟带有Galerkin最小二乘有限元公式和宏观流变模型的不可压缩的雷诺平均Navier Stokes方程,模拟能够捕获流动的主要特征,并用于研究拉伸统计数据和尺度行为。

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