Watari Nobuhiko, Larson Ronald G
Macromolecular Science and Engineering Center, University of Michigan, Ann Arbor, Michigan 48109-2136, USA.
Phys Rev Lett. 2009 Jun 19;102(24):246001. doi: 10.1103/PhysRevLett.102.246001. Epub 2009 Jun 16.
We report that an achiral particle with anisotropic rigidity can migrate in the vorticity direction in shear flow. A minimal "tetrumbbell" model of such a particle is constructed from four beads and six springs to make a tetrahedral structure. A combination of two different spring constants corresponding to "hard" and "soft" springs yields ten distinguishable tetrumbbells, which when simulated in shear flow with hydrodynamic interactions between beads but no Brownian motion at zero Reynolds number, produces five different types of behavior in which seven out of ten tetrumbbell structures migrate in the vorticity direction due to shear-induced chirality. Some of the structures migrate in the same direction along the vorticity direction even when the shear flow is reversed, which is impossible for permanently chiral objects.
我们报告称,具有各向异性刚性的非手性粒子能够在剪切流中沿涡度方向迁移。这种粒子的一个最小“四哑铃”模型由四个珠子和六个弹簧构建而成,形成一个四面体结构。对应“硬”弹簧和“软”弹簧的两种不同弹簧常数的组合产生了十种可区分的四哑铃结构,当在零雷诺数下对珠子间具有流体动力学相互作用但无布朗运动的剪切流进行模拟时,会产生五种不同类型的行为,其中十种四哑铃结构中有七种由于剪切诱导的手性而沿涡度方向迁移。即使剪切流反向,一些结构仍会沿涡度方向在相同方向迁移,这对于永久手性物体来说是不可能的。