Max Planck Institute for Dynamics and Self-Organization (MPIDS), Am Faßberg 17, 37077, Göttingen, Germany.
Georg-August-Universität Göttingen, Friedrich-Hund-Platz 1, 37077 Göttingen, Germany.
Phys Rev E. 2018 Feb;97(2-1):022904. doi: 10.1103/PhysRevE.97.022904.
Neutral grains made of the same dielectric material can attain considerable charges due to collisions and generate long-range interactions. We perform molecular dynamic simulations in three dimensions for a dilute, freely cooling granular gas of viscoelastic particles that exchange charges during collisions. As compared to the case of clustering of viscoelastic particles solely due to dissipation, we find that the electrostatic interactions due to collisional charging alter the characteristic size, morphology, and growth rate of the clusters. The average cluster size grows with time as a power law, whose exponent is relatively larger in the charged gas than the neutral case. The growth of the average cluster size is found to be independent of the ratio of characteristic Coulomb to kinetic energy, or equivalently, of the typical Bjerrum length. However, this ratio alters the crossover time of the growth. Both simulations and mean-field calculations based on Smoluchowski's equation suggest that a suppression of particle diffusion due to the electrostatic interactions helps in the aggregation process.
中性颗粒由相同的介电材料制成,由于碰撞可以获得相当大的电荷,并产生远程相互作用。我们在三维空间中对粘性粒子的稀疏散发冷却颗粒气体进行分子动力学模拟,这些粒子在碰撞过程中会交换电荷。与仅仅由于耗散而导致粘性粒子团聚的情况相比,我们发现由于碰撞充电引起的静电相互作用会改变团聚体的特征尺寸、形态和生长速率。平均团聚体尺寸随时间呈幂律增长,在带电气体中的指数比中性情况下相对较大。发现平均团聚体尺寸的增长与库仑能与动能的特征比无关,或者等效地与典型的 Bjerrum 长度无关。然而,该比率改变了增长的交叉时间。基于 Smoluchowski 方程的模拟和平均场计算都表明,由于静电相互作用导致的粒子扩散抑制有助于团聚过程。