Reddy K Anki, Kumaran V
Department of Chemical Engineering, Indian Institute of Science, Bangalore 560 012, India.
Phys Rev E Stat Nonlin Soft Matter Phys. 2009 Jun;79(6 Pt 1):061303. doi: 10.1103/PhysRevE.79.061303. Epub 2009 Jun 10.
The structure and dynamics of the two-dimensional linear shear flow of inelastic disks at high area fractions are analyzed. The event-driven simulation technique is used in the hard-particle limit, where the particles interact through instantaneous collisions. The structure (relative arrangement of particles) is analyzed using the bond-orientational order parameter. It is found that the shear flow reduces the order in the system, and the order parameter in a shear flow is lower than that in a collection of elastic hard disks at equilibrium. The distribution of relative velocities between colliding particles is analyzed. The relative velocity distribution undergoes a transition from a Gaussian distribution for nearly elastic particles, to an exponential distribution at low coefficients of restitution. However, the single-particle distribution function is close to a Gaussian in the dense limit, indicating that correlations between colliding particles have a strong influence on the relative velocity distribution. This results in a much lower dissipation rate than that predicted using the molecular chaos assumption, where the velocities of colliding particles are considered to be uncorrelated.
分析了高面积分数下非弹性圆盘二维线性剪切流的结构和动力学。在硬粒子极限情况下使用事件驱动模拟技术,其中粒子通过瞬时碰撞相互作用。使用键取向序参数分析结构(粒子的相对排列)。发现剪切流降低了系统中的有序性,并且剪切流中的序参数低于处于平衡状态的弹性硬圆盘集合中的序参数。分析了碰撞粒子之间相对速度的分布。相对速度分布经历了从近弹性粒子的高斯分布到低恢复系数下的指数分布的转变。然而,在密集极限下,单粒子分布函数接近高斯分布,这表明碰撞粒子之间的相关性对相对速度分布有很大影响。这导致耗散率比使用分子混沌假设预测的要低得多,在分子混沌假设中,碰撞粒子的速度被认为是不相关的。