Characterizing dynamic swimming behaviors of three-particle magnetic microswimmer near a solid surface

Qianqian Wang, Lidong Yang, Jiangfan Yu, Li Zhang
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引用次数: 1

Abstract

Particle-based magnetically actuated microswimmers have potential to be used as microrobotic tools for biomedical applications. In this paper, we report the dynamic swimming behaviors of a magnetic microswimmer near a solid surface. This microswimmer consists of three paramagnetic microparticles and is actuated using a rotating magnetic field. The microswimmer exhibits simple rotation and propulsion with varied dynamic poses by tuning the input frequency of applied field. When the input frequency is less than 8 Hz, the microswimmer performs simple rotation and has no translational displacement. When subjected to higher input frequency (8–15 Hz), it performs propulsion, resulting in dynamic swimming behaviors. Moreover, our results indicate that higher swimming velocity is realized if the microswimmer swims near a solid surface because of the induced pressure difference in surrounding fluid of the microagent.
固体表面附近三粒子磁性微游动体动态游动行为的表征
基于粒子的磁驱动微游泳器有潜力被用作生物医学应用的微型机器人工具。本文报道了磁性微游泳者在固体表面附近的动态游泳行为。这种微型游泳器由三个顺磁微粒组成,并使用旋转磁场驱动。通过调节外加磁场的输入频率,微游泳者可以实现简单的旋转和推进,并具有不同的动态姿态。当输入频率小于8 Hz时,微游泳者进行简单的旋转,没有平移位移。当受到更高的输入频率(8-15 Hz)时,它执行推进,导致动态游泳行为。此外,我们的研究结果表明,当微游泳者在固体表面附近游泳时,由于微剂周围流体的压力差引起的,可以实现更高的游泳速度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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