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首页> 外文期刊>Powder Technology: An International Journal on the Science and Technology of Wet and Dry Particulate Systems >Numerical simulation of particle dynamics in different flow regimes in a rotating drum
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Numerical simulation of particle dynamics in different flow regimes in a rotating drum

机译:转鼓内不同流态下粒子动力学的数值模拟

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Flow regimes in a horizontal rotating drum are important to industrial applications but the underlying mechanisms are not clear. This paper investigated the granular flow dynamics in different regimes using the discrete element method. By varying the rotation speed and particle-wall sliding friction over a wide range, six flow regimes were produced. The macroscopic and microscopic behaviour of the particle flow were systematically analysed. The results showed that the angle of repose of the moving particle bed had a weak dependence on the rotation speed in the slumping and rolling regimes, and increased significantly as the flow transited to the cascading and cataracting regimes. The mean flow velocity increased with the rotation speed, but the normalised velocity against the drum speed in the continuous regimes collapsed into a single curve, which can be well described by a log-normal distribution. The particle bed at low rotation speed had a similar density to those of the random loose packing, and became more dilated with the increase of the rotation speed. Similarly, the mean coordination number showed linear dependence on the drum speed. Both the collision energy and collision frequency increased with the rotation speed. However, the normalised collision energy in different regimes can be fitted with a simple scaling law.
机译:水平旋转鼓中的流动方式对工业应用很重要,但其潜在机理尚不清楚。本文使用离散元方法研究了不同状态下的颗粒流动动力学。通过在很宽的范围内改变转速和颗粒壁滑动摩擦,产生了六种流态。系统地分析了颗粒流的宏观和微观行为。结果表明,在塌陷和滚动状态下,运动颗粒床的休止角对转速的依赖性较弱,并且随着流动过渡到级联和白内障状态而显着增加。平均流速随转速增加,但在连续状态下相对于滚筒速度的归一化速度崩溃为一条曲线,可以用对数正态分布很好地描述。低转速下的颗粒床具有与无规松散堆积相似的密度,并且随着转速的增加而变得更大。同样,平均协调数显示出与鼓速度的线性相关性。碰撞能量和碰撞频率均随转速增加。但是,可以使用简单的缩放定律拟合不同状态下的规范化碰撞能量。

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