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Species segregation in one-dimensional granular-system simulations

机译:一维颗粒系统模拟中的物种隔离

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摘要

We present one-dimensional molecular dynamics simulations of a two-species, initially uniform, freely evolving granular system. Colliding particles swap their relative position with a 50% probability allowing for the initial spatial ordering of the particles to evolve in time and frictional forces to operate. Unlike one-dimensional systems of identical particles, two-species one-dimensional systems of quasi-elastic particles are ergodic and the particles' velocity distributions tend to evolve towards Maxwell-Boltzmann distributions. Under such conditions, standard fluid equations with merely an additional sink term in the energy equation, reflecting the non-elasticity of the interparticle collisions, provide an excellent means to investigate the system's evolution. According to the predictions of fluid theory we find that the clustering instability is dominated by a non-propagating mode at a wavelength of the order 10 pi L/N epsilon , where N is the total number of particles, L the spatial extent of the system and epsilon the inelasticity coefficient. The typical fluid velocities at the time of inelastic collapse are seen to be supersonic, unless N epsilon less than or similar to 10 pi . Species segregation, driven by the frictional force occurs as a result of the strong temperature gradients within clusters which pushes the light particles towards the clusters' edges and the heavy particles towards the center. Segregation within clusters is complete at the time of inelastic collapse.
机译:我们提出了两种物种的一维分子动力学模拟,最初是均匀的,自由演化的颗粒系统。碰撞的粒子以50%的概率交换其相对位置,从而允许粒子的初始空间顺序随时间演变,并且摩擦力起作用。与相同粒子的一维系统不同,准弹性粒子的两类一维系统是遍历遍历的,并且粒子的速度分布趋向于麦克斯韦-波尔兹曼分布。在这种情况下,标准流体方程在能量方程中仅具有一个附加的吸收项,反映了粒子间碰撞的非弹性,为研究系统的演化提供了一种极好的方法。根据流体理论的预测,我们发现,在波长为10 pi L / N epsilon的波长下,非传播模式主导了聚类不稳定性,其中N是粒子总数,L是系统空间范围和ε的非弹性系数。除非Nepsilon小于或等于10 pi,否则非弹性塌陷时的典型流体速度被认为是超音速的。由于摩擦力引起的物种偏析是由于团簇内部的强烈温度梯度导致的,该温度梯度将轻粒子推向团簇的边缘,将重粒子推向中心。在无弹性塌陷时,团簇内的分离完成。

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