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Crystallization processes in a nonvibrating magnetic granular system with short range repulsive interaction

机译:具有短程排斥相互作用的非振动磁粒系统中的结晶过程

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摘要

Applying an unsteady magnetic field to a 2D nonvibrating magnetic granular system induces a random motion in the steel beads with characteristics analogous to that of molecules in a fluid. We investigate the structural characteristics of the solid-like structures generated by different quenching conditions. The applied field is generated by the superposition of a constant field and a collinear sinusoidal field. The system reaches a quasi steady state in which the effective temperature is proportional to the amplitude of the applied field. By reducing the effective temperature at different rates, different cooling rates are produced. A slight inclination of the surface allows us to investigate the effects of small particle concentration gradients. The formation of a wide and rich variety of condensed solid structures, from gel-like and glass-like structures up to crystalline structures, is observed and depends on the cooling rate. We focus our attention on the crystallization process and found this process to be a collective phenomenon. We discuss our results in terms of the measured time evolution of the mean squared displacement, the effective diffusion coefficient, and the radial distribution function.
机译:向二维非振动磁性颗粒系统施加非恒定磁场会引起钢珠中的随机运动,其特征类似于流体中分子的特征。我们研究了由不同淬火条件产生的固体状结构的结构特征。通过将恒定场和共线正弦场叠加来生成施加场。系统达到准稳态,其中有效温度与所施加磁场的振幅成正比。通过以不同的速率降低有效温度,可以产生不同的冷却速率。表面略微倾斜可以让我们研究小颗粒浓度梯度的影响。从凝胶状和玻璃状结构直至结晶结构,可以观察到各种各样的稠密固体结构的形成,并取决于冷却速率。我们将注意力集中在结晶过程上,并发现该过程是一个集体现象。我们根据均方位移的实测时间演变,有效扩散系数和径向分布函数来讨论我们的结果。

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