论文标题
解决两体Smoluchowski方程,并具有剪切流,用于低至中等的电荷稳定胶体数字
Solution to the two-body Smoluchowski equation with shear flow for charge-stabilized colloids at low to moderate Péclet numbers
论文作者
论文摘要
我们开发了一种分析理论方法,以确定在稀释条件下弱至中度剪切的胶体悬浮液的微观结构。微观结构通过静态结构因子描述,通过求解固定的两体Smoluchowski向后扩散方程获得。通过对延伸和压缩扇区进行角度平均以及通过边界层理论(中间渐近线)进行角度平均来解决。这使我们能够相对于先前的方法将解决方案扩展到Péclet中的高阶。该方案与相互作用潜力的类型无关。我们将其应用于通过排斥Yukawa电位相互作用的电荷稳定胶体颗粒的示例,并研究结构因子的失真。据预测,小波vectors $ k $的失真较大,并且其对$ pe $的依赖是一个简单的功率定律。在增加$ pe $的情况下,结构因子的主要峰显示了扩展和向较低$ k $转移的延伸扇区,这表明剪切引起的散布是从粒子相关性中扩散的,而邻居粒子本地被从参考方面拖走。相反,在压缩扇区中,预计将变窄和向高$ k $转移,反映了剪切引起的订购接近接触,并伴随中等范围的耗竭。还可以预测,在整个实体角度平均的结构因子还可以预测峰值的整体变窄。还对硬球进行了计算,显示与实验数据的总体一致。还表明,剪切诱导的结构因子失真是Yukawa排斥的数量级,而不是硬球。
We developed an analytical theoretical method to determine the microscopical structure of weakly to moderately sheared colloidal suspensions in dilute conditions. The microstructure is described by the static structure factor, obtained by solving the stationary two-body Smoluchowski advection-diffusion equation. The singularly perturbed PDE problem is solved by performing an angular averaging over the extensional and compressing sectors and by the rigorous application of boundary-layer theory (intermediate asymptotics). This allows us to expand the solution to a higher order in Péclet with respect to previous methods. The scheme is independent of the type of interaction potential. We apply it to the example of charge-stabilized colloidal particles interacting via the repulsive Yukawa potential and study the distortion of the structure factor. It is predicted that the distortion is larger at small wavevectors $k$ and its dependence on $Pe$ is a simple power law. At increasing $Pe$, the main peak of the structure factor displays a broadening and shift towards lower $k$ in the extensional sectors, which indicates shear-induced spreading out of particle correlations and neighbor particles locally being dragged away from the reference one. In the compressing sectors, instead, a narrowing and shift towards high $k$ is predicted, reflecting shear-induced ordering near contact and concomitant depletion in the medium-range. An overall narrowing of the peak is also predicted for the structure factor averaged over the whole solid angle. Calculations are also performed for hard spheres, showing good overall agreement with experimental data. It is also shown that the shear-induced structure factor distortion is orders of magnitude larger for the Yukawa repulsion than for the hard spheres.