Division of Physics and Applied Physics, School of Physical and Mathematical Sciences, Nanyang Technological University, 637371 Singapore.
Dipartimento di Matematica e Fisica, Università degli studi della Campania "Luigi Vanvitelli," Viale Lincoln 5, 81100 Caserta, Italy.
Phys Rev E. 2017 Oct;96(4-1):042901. doi: 10.1103/PhysRevE.96.042901. Epub 2017 Oct 3.
The mechanical and transport properties of jammed materials originate from an underlying percolating network of contact forces between the grains. Using extensive simulations we investigate the force-percolation transition of this network, where two particles are considered as linked if their interparticle force overcomes a threshold. We show that this transition belongs to the random percolation universality class, thus ruling out the existence of long-range correlations between the forces. Through a combined size and pressure scaling for the percolative quantities, we show that the continuous force percolation transition evolves into the discontinuous jamming transition in the zero pressure limit, as the size of the critical region scales with the pressure.
被堵塞材料的力学和输运性质源于颗粒间接触力的潜在渗透网络。我们使用广泛的模拟研究了该网络的力渗透转变,当两个颗粒之间的相互作用力超过阈值时,它们被认为是相互连接的。我们表明,这种转变属于随机渗透普适类,从而排除了力之间存在长程相关性的可能性。通过对渗透量进行大小和压力的综合缩放,我们表明,在零压力极限下,连续力渗透转变演变为不连续堵塞转变,因为临界区域的大小与压力成正比。