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Experimental and numerical investigation of the compression and expansion of a granular bed of repelling magnetic disks

机译:排斥磁盘颗粒床压缩膨胀的实验和数值研究

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Abstract We studied experimentally and numerically the compaction and subsequent expansion dynamics of a granular bed composed of cylindrical repelling magnets contained in a two-dimensional cell. The particles are firstly compressed vertically with a piston at a given strain rate until a maximum force is reached. The piston is then removed at the same strain rate while the bed expands due to the magnetic repulsion of the particles. In the experiments, two different initial configurations were generated, a standard and a loose packing bed. The standard packing bed was simulated, and modelling the dry friction between the magnetic particles and the walls of the cell was crucial for the correct description of the compression and expansion dynamics. We found that the force acting on the piston increases continuously and exponentially with the piston stroke during compression, being very sensitive to the initial packing conditions of the bed. In contrast, a history-independent exponential decrease of this force was found during the expansion phase. The hysteresis in the system was quantified in terms of the average displacement of the particles. The continuous compression contrasts with the sudden force drops observed during the compaction of granular materials with direct particle-particle contacts, where stick-slip motion is induced by friction and force chain breakage. Moreover, we found that the short range of magnetic interaction induces density inversion and crystallization of the system. Our results can be useful to develop a new kind of magnetic granular dampers.Graphical abstract
机译:摘要 通过实验和数值研究了二维单元中圆柱形排斥磁体组成的颗粒床的压实和后续膨胀动力学.首先用活塞以给定的应变率垂直压缩颗粒,直到达到最大力。然后以相同的应变率移除活塞,同时由于颗粒的磁排斥而使床膨胀。在实验中,生成了两种不同的初始配置,标准填料床和松散填料床。对标准填料床进行了模拟,模拟磁性颗粒与电池壁之间的干摩擦对于正确描述压缩和膨胀动力学至关重要。我们发现,在压缩过程中,作用在活塞上的力随着活塞行程的发生而持续呈指数增长,对床身的初始保压条件非常敏感。相反,在膨胀阶段发现该力与历史无关的指数下降。系统中的滞后根据粒子的平均位移进行量化。连续压缩与在颗粒-颗粒直接接触的颗粒材料压实过程中观察到的突然力下降形成鲜明对比,其中粘滑运动是由摩擦和力链断裂引起的。此外,我们发现短距离的磁相互作用会引起系统的密度反转和结晶。我们的研究结果有助于开发一种新型的磁性颗粒阻尼器。图形摘要

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