论文标题

在旋转剪切下排放硅胶中的细长谷物

Discharge of elongated grains in silos under rotational shear

论文作者

Pongó, Tivadar, Börzsönyi, Tamás, Hidalgo, Raúl Cruz

论文摘要

从数值研究中研究了从带有旋转底部的筒仓的伸长颗粒的排放。与固定底部相比,引入轻微的横向剪切可将流速$ Q $降低70%,但流速通过进一步增加外部剪切量显示出适度的增加。为了关注流量$ Q $对孔口直径$ d $的依赖,球形和杆显示了两个不同的趋势。对于杆,在小孔径限制中,$ q $似乎遵循指数趋势,偏离了经典的幂律依赖。这些宏观观察与我们较早的实验发现非常吻合[Phys。 Rev. e $ \ textbf {103} $,062905(2021)]。在粗粒度方法的帮助下,我们获得了宏观密度,速度,动力压力和方向场的空间分布。这使我们可以检测到由外部剪切引起的从漏斗到质量流量模式的过渡。此外,平均孔口区域中的这些磁场表明,$ Q $的强初始减少主要归因于流速的变化,而较高旋转速率下的弱趋势却与堆积分数的增加有关。孔口处的晶粒方向的类似分析表明,流速幅度与垂直方向和孔口处的堆积分数的相关性与晶粒的阶相关。最后,筒仓中心的平均加速度的垂直曲线表示,由于移动壁引起的强扰动,加速度不可忽视的区域显着缩小。

The discharge of elongated particles from a silo with rotating bottom is investigated numerically. The introduction of a slight transverse shear reduces the flow rate $Q$ by up to 70% compared to stationary bottom, but the flow rate shows a modest increase by further increasing the external shear. Focusing on the dependency of flow rate $Q$ on orifice diameter $D$, the spheres and rods show two distinct trends. For rods, in the small aperture limit $Q$ seems to follow an exponential trend, deviating from the classical power-law dependence. These macroscopic observations are in good agreement with our earlier experimental findings [Phys. Rev. E $\textbf{103}$, 062905 (2021)]. With the help of the coarse-graining methodology we obtain the spatial distribution of the macroscopic density, velocity, kinetic pressure, and orientation fields. This allows us detecting a transition from funnel to mass flow pattern, caused by the external shear. Additionally, averaging these fields in the region of the orifice reveals that the strong initial decrease in $Q$ is mostly attributed to changes in the flow velocity, while the weakly increasing trend at higher rotation rates is related to increasing packing fraction. Similar analysis of the grain orientation at the orifice suggests a correlation of the flow rate magnitude with the vertical orientation and the packing fraction at the orifice with the order of the grains. Lastly, the vertical profile of mean acceleration at the center of the silo denotes that the region where the acceleration is not negligible shrinks significantly due to the strong perturbation induced by the moving wall.

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