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Mechanics of Pickering Drops Probed by Electric Field–Induced Stress

机译:电场感应应力探知滴料滴的力学

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摘要

Fluid drops coated with particles, so-called Pickering drops, play an important role in emulsion and capsule applications. In this context, knowledge of mechanical properties and stability of Pickering drops are essential. Here we prepare Pickering drops via electric field-driven self-assembly. We use direct current (DC) electric fields to induce mechanical stress on these drops, as a possible alternative to the use of, for example, fluid flow fields. Drop deformation is monitored as a function of the applied electric field strength. The deformation of pure silicone oil drops is enhanced when covered by insulating polyethylene (PE) particles, whereas drops covered by conductive clay particles can also change shape from oblate to prolate. We attribute these results to changes in the electric conductivity of the drop interface after adding particles, and have developed a fluid shell description to estimate the conductivity of Pickering particle layers that are assumed to be non-jammed and fluid-like. Retraction experiments in the absence of electric fields are also performed. Particle-covered drops retract slower than particle-free drops, caused by increased viscous dissipation due to the presence of the Pickering particle layer.
机译:涂有颗粒的液滴,即所谓的Pickering液滴,在乳液和胶囊应用中起着重要作用。在这种情况下,必须掌握机械性能和Pickering液滴的稳定性。在这里,我们通过电场驱动的自组装来准备Pickering墨滴。我们使用直流(DC)电场在这些液滴上感应出机械应力,作为例如使用流体流场的一种可能的替代方法。液滴变形根据施加的电场强度进行监控。当纯净的硅油滴被绝缘聚乙烯(PE)颗粒覆盖时,其变形会增强,而被导电粘土颗粒覆盖的滴也会使形状从扁圆形变为扁长形。我们将这些结果归因于添加颗粒后液滴界面的电导率的变化,并开发了一种流体壳层描述以估计假定为无堵塞且类似流体的Pickering颗粒层的电导率。还进行了在没有电场的情况下的回缩实验。由于Pickering粒子层的存在,增加了粘性耗散,因此覆盖粒子的液滴的收缩速度比无粒子液滴慢。

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