论文标题
剪切致密悬浮液中的有序域:粘度和摩擦的破坏作用的链接
Ordered domains in sheared dense suspensions: the link to viscosity and the disruptive effect of friction
论文作者
论文摘要
棕色胶体球的单分散悬浮液在高密度下结晶,并且在结晶阈值以下的密度下观察到剪切下的秩序。我们对包含$ 10^5 $颗粒的模型悬浮液进行大规模模拟,以定量研究剪切下的排序,并研究其与悬浮液的流变特性的联系。我们发现,以$ PE> 1 $的速度,剪切流量会导致订购过渡,从而大大降低了测得的粘度。通过分层和平面顺序的发展分析了这种排序,我们确定颗粒被包装到六边形晶体层中(有许多缺陷),它们相互滑过。通过计算本地$ψ_6$和$ψ_4$订单参数,我们确定缺陷对应于类似正方形的晶格中的粒子链。我们计算单个颗粒对应力张量的贡献,并发现剪切应力的最大贡献者主要位于这些较低密度的缺陷区域。缺陷结构使颗粒的压缩链的形成能够抵抗剪切,但是这些链是短暂而短的。包含接触力的力使承受压力的结构能够生长到系统跨越的网络中,从而破坏了顺序并大大增加了悬架粘度。
Monodisperse suspensions of Brownian colloidal spheres crystallize at high densities, and ordering under shear has been observed at densities below the crystallization threshold. We perform large-scale simulations of a model suspension containing over $10^5$ particles to quantitatively study the ordering under shear and to investigate its link to the rheological properties of the suspension. We find that at high rates, for $Pe>1$, the shear flow induces an ordering transition that significantly decreases the measured viscosity. This ordering is analyzed in terms of the development of layering and planar order, and we determine that particles are packed into hexagonal crystal layers (with numerous defects) that slide past each other. By computing local $ψ_6$ and $ψ_4$ order parameters, we determine that the defects correspond to chains of particles in a square-like lattice. We compute the individual particle contributions to the stress tensor and discover that the largest contributors to the shear stress are primarily located in these lower density, defect regions. The defect structure enables the formation of compressed chains of particles to resist the shear, but these chains are transient and short-lived. The inclusion of a contact friction force allows the stress-bearing structures to grow into a system-spanning network, thereby disrupting the order and drastically increasing the suspension viscosity.