首页> 外文期刊>IEEE Transactions on Magnetics >Flexibility of Micromagnetic Flagella in the Presence of an Oscillating Field
【24h】

Flexibility of Micromagnetic Flagella in the Presence of an Oscillating Field

机译:振荡场中微鞭毛的柔性

获取原文
获取原文并翻译 | 示例
       

摘要

Magnetic microbeads have recently been the subject of much study because of their potential applications in microfluidic systems which facilitate mixing, labeling, separation, and transport in lab-on-a-chip devices. To manipulate the microbeads chain swimming in the low-Reynolds-number environment, various magnetic actuation methods have been employed to obtain the higher propulsive efficiency for the locomotion in the viscous fluid. A flexible flagellum is arguably the simplest mechanism to duplicate as it is a 1-D structure. However, a challenge to create the stable planar beating motion for propulsion generation is to fabricate the magnetic flagellum simultaneously flexible and stable structure at a microscale. Driven by this motive, this paper has constructed a series of artificial flexible flagella composed of self-assembled beads whose flexibility was probed in the influence of an oscillating external field. To effectively use the oscillating magnetic flagellum for the application in the microfluidic system, the measurement of the maximum dimensionless curvature (Cmax) and bending rigidity for the flexible microchain are experimentally and theoretically investigated in this paper. At a lower frequency of f = 1 Hz, the value of Cmaxof the flagellum increases linearly with the applied field intensity and gets higher then declines with the increase of the flagellum's length. On the other hand, the longer flagellum has the more stable flexible structure at a higher frequency of f = 3-7 Hz, which resists the amplitude and enhances the deformation of the longer flagellum.
机译:磁性微珠最近成为许多研究的主题,因为它们在微流体系统中具有潜在的应用前景,可促进芯片实验室设备中的混合,标记,分离和运输。为了在低雷诺数环境中操纵微珠链游动,已采用各种磁致动方法来获得用于粘性流体中运动的更高的推进效率。柔性鞭毛可以说是最简单的复制机制,因为它是一维结构。然而,产生用于推进产生的稳定的平面跳动运动的挑战是在微观尺度上同时制造磁性鞭毛的柔性和稳定结构。在这一动机的驱使下,本文构建了一系列由自组装珠子组成的人造挠性鞭毛,这些挠性鞭毛是在振荡的外场影响下进行探测的。为了有效地将振荡的鞭毛用于微流体系统中的应用,必须测量最大无量纲曲率(C n max n)和柔性微链的抗弯刚度。在f = 1 Hz的较低频率下,C n max随施加的场强呈线性增加,并随着鞭毛长度的增加而变高,然后下降。另一方面,较长的鞭毛在f = 3-7 Hz的较高频率下具有更稳定的柔性结构,这抵抗了振幅并增强了较长的鞭毛的变形。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号