Multi Scale Mechanics (MSM), CTW, MESA+, University of Twente, PO Box 217, 7500 AE Enschede, The Netherlands.
Soft Matter. 2016 Oct 19;12(41):8616-8628. doi: 10.1039/c6sm01444e.
Simple homogeneous shear flows of frictionless, deformable particles are studied by particle simulations at large shear rates and for differently soft, deformable particles. Particle stiffness sets a time-scale that can be used to scale the physical quantities; thus the dimensionless shear rate, i.e. the inertial number I (inversely proportional to pressure), can alternatively be expressed as inversely proportional to the square root of particle stiffness. Asymptotic scaling relations for the field variables pressure, shear stress and granular temperature are inferred from simulations in both fluid and solid regimes, corresponding to unjammed and jammed conditions. Then the limit cases are merged to unique constitutive relations that cover also the transition zone in the proximity of jamming. By exploiting the diverging behavior of the scaling laws at the jamming density, we arrive at continuous and differentiable phenomenological constitutive relations for stresses and granular temperature as functions of the volume fraction, shear rate, particle stiffness and distance from jamming. In contrast to steady shear flows of hard particles the (shear) stress ratio μ does not collapse as a function of the inertial number, indicating the need for an additional control parameter. In the range of particle stiffnesses investigated, in the solid regime, only pressure is rate independent, whereas shear stress exhibits a slight shear rate- and stiffness-dependency.
通过在大剪切速率下对不同柔软度、可变形粒子进行粒子模拟,研究了无摩擦、可变形粒子的简单均匀剪切流动。粒子刚度设定了一个时间尺度,可以用来对物理量进行缩放;因此,无量纲剪切速率,即惯性数 I(与压力成反比),也可以表示为与粒子刚度的平方根成反比。从流体和固体两种状态的模拟中推断出场变量压力、剪切应力和颗粒温度的渐近标度关系,对应于未堵塞和堵塞条件。然后将极限情况合并为唯一的本构关系,也涵盖了堵塞附近的过渡区。通过利用标度律在堵塞密度处的发散行为,我们得到了作为体积分数、剪切速率、粒子刚度和与堵塞距离的函数的连续可微的唯象本构关系,用于应力和颗粒温度。与硬粒子的稳态剪切流动不同,(剪切)应力比μ不作为惯性数的函数而崩溃,这表明需要一个额外的控制参数。在所研究的粒子刚度范围内,在固体状态下,只有压力是与速率无关的,而剪切应力表现出轻微的剪切速率和刚度依赖性。