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Towards an analytical description of active microswimmers in clean and in surfactant-covered drops

机译:朝着干净和表面活性剂覆盖的滴剂中的活性微卷虫的分析描述

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Geometric confinements are frequently encountered in the biological world and strongly affect the stability, topology, and transport properties of active suspensions in viscous flow. Based on a far-field analytical model, the low-Reynolds-number locomotion of a self-propelled microswimmer moving inside a clean viscous drop or a drop covered with a homogeneously distributed surfactant, is theoretically examined. The interfacial viscous stresses induced by the surfactant are described by the well-established Boussinesq-Scriven constitutive rheological model. Moreover, the active agent is represented by a force dipole and the resulting fluid-mediated hydrodynamic couplings between the swimmer and the confining drop are investigated. We find that the presence of the surfactant significantly alters the dynamics of the encapsulated swimmer by enhancing its reorientation. Exact solutions for the velocity images for the Stokeslet and dipolar flow singularities inside the drop are introduced and expressed in terms of infinite series of harmonic components. Our results offer useful insights into guiding principles for the control of confined active matter systems and support the objective of utilizing synthetic microswimmers to drive drops for targeted drug delivery applications.
机译:生物学世界经常遇到几何限制,强烈影响粘性流动中活性悬浮液的稳定性,拓扑和运输性能。基于远场分析模型,理论上,理论上地检查了在清洁粘性下降内或覆盖着均匀分布的表面活性剂覆盖的下降的自推进式微倍的低曲回数量。由表面活性剂诱导的界面粘性应力由良好建立的BoussinesQ-Shriven型体内流变模型描述。此外,活性剂由力偶极子表示,并研究了游泳运动员和限制下降之间的所得流体介导的流体动力学联轴器。我们发现表面活性剂的存在通过提高其重新定位来显着改变封装的游泳运动员的动态。介绍了液滴内的斯托克士物的速度图像的精确解决方案,并以无限的谐波分量表示并表达。我们的结果为控制狭窄的主动物质系统控制指导原则提供了有用的见解,并支持利用合成微灯驱动针对靶向药物递送应用的滴剂的目的。

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