论文标题
胶体单层的动力和堵塞,通过异质景观磁性驱动
Dynamics and Clogging of colloidal monolayers magnetically driven through an heterogeneous landscape
论文作者
论文摘要
我们结合了实验和数值模拟,以研究在相互作用的磁性障碍物驱动的磁性障碍物的相互作用系统中堵塞的出现。我们考虑在不可逆地附着在基板上的固定二氧化硅颗粒的景观中。我们使用外部旋转磁场来产生波动波电位,该电势以恒定且频率可调的速度将磁性颗粒驱动到这些障碍物上。在实验上,我们发现粒子在高频下具有功率定律分布的间歇性动力学。我们通过使用数值模拟来重现这些结果,并表明当颗粒与移动景观呈同步时,系统中的堵塞很大。此外,我们使用该模型来探索灵活性在障碍物位移中的隐藏作用以及颗粒之间的流体动力相互作用的影响。我们还以数字考虑直壁的情况,并研究在这种情况下出现堵塞的参数范围。我们的工作提供了一个软物质测试床系统,以研究驱动微观物质中堵塞的效果。
We combine experiments and numerical simulations to investigate the emergence of clogging in a system of interacting paramagnetic colloidal particles driven against a disordered landscape of larger obstacles. We consider a single aperture in a landscape of immobile silica particles which are irreversibly attached to the substrate. We use an external rotating magnetic field to generate a traveling wave potential which drives the magnetic particles against these obstacles at a constant and frequency tunable speed. Experimentally we find that the particles display an intermittent dynamics with power law distributions at high frequencies. We reproduce these results by using numerical simulations and shows that clogging in our system arises at large frequency, when the particles desynchronize with the moving landscape. Further, we use the model to explore the hidden role of flexibility in the obstacle displacements and the effect of hydrodynamic interactions between the particles. We also consider numerically the situation of a straight wall and investigate the range of parameters where clogging emerges in such case. Our work provides a soft matter test-bed system to investigate the effect of clogging in driven microscale matter.