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Vibration Induced Flow In Hoppers: Continuum And Dem Model Approaches

机译:料斗中的振动诱导流:连续谱和Dem模型方法

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摘要

A 2D and a 3D discrete element model (DEM) simulation of cohesive spherical particles are applied to assess the benefit of point source vibration to induce flow in wedge-shaped hoppers. The model is closely compared with a continuum model based on arch stability. A significant aspect of this study is the scaling of the continuum system to a discrete system of 500 particles in 2D and 2500 particles in 3D. This illustrates how such models can complement each other. The continuum model can cope with a full-scale industrial system, but is complex with significant assumptions. The discrete approach is relatively simple at the particle level with minimal assumptions but computationally demanding. The DEM model supports the basic conclusions of the continuum model. The vibration source must be located at the appropriate height above the outlet on the hopper to optimise its flow enhancement. Too low and stable arches can form above. Too high and it might not break the stable arches in the material below. The passive/active nature of the material during vibration and flow is also illustrated. The DEM model also shows that low frequency high amplitude vibration can enable flow through small orifices.
机译:粘性球状颗粒的2D和3D离散元素模型(DEM)模拟应用于评估点源振动在楔形料斗中引起流动的好处。该模型与基于足弓稳定性的连续体模型进行了比较。这项研究的重要方面是将连续体系统缩放为离散的系统,该系统包含2D的500个粒子和3D的2500个粒子。这说明了这些模型如何相互补充。连续模型可以应付完整的工业系统,但是在有重要假设的情况下非常复杂。离散方法在粒子级别相对简单,具有最少的假设,但计算量大。 DEM模型支持连续模型的基本结论。振动源必须位于料斗出口上方的适当高度,以优化其流量。上方可能形成过低且稳定的拱门。太高了,它可能不会破坏下面材料中的稳定拱形。还说明了材料在振动和流动过程中的被动/主动特性。 DEM模型还显示,低频高振幅振动可以使流经小孔。

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