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用于基于微流体的马兰戈尼冲浪者的无束缚软磁泵。

Untethered soft magnetic pump for microfluidics-based Marangoni surfer.

作者信息

Lin Yu-Hsiang, Piñan Basualdo Franco N, Kalpathy Venkiteswaran Venkatasubramanian, Misra Sarthak

机构信息

Surgical Robotics Laboratory, Department of Biomechanical Engineering, University of Twente, 7522 NB, Enschede, The Netherlands.

Surgical Robotics Laboratory, Department of Biomaterials and Biomedical Technology, University of Groningen and Univesity Medical Center Groningen, 9713 AV, Groningen, The Netherlands.

出版信息

Sci Rep. 2024 Aug 31;14(1):20280. doi: 10.1038/s41598-024-70944-z.

Abstract

Microfluidics has enabled the miniaturization of fluidic systems for various biomedical and industrial applications, including small-scale robotic propulsion. One mechanism for generating propulsive force through microfluidics is by exploiting the solutal Marangoni effect via releasing surfactant on the air-water interface. Surfactants locally reduce the surface tension, which leads to a surface stress that can propel the floating robot, called Marangoni surfer. However, so far the release of the surfactant is not controllable. In this study, we combine microfluidics-based Marangoni propulsion with a novel untethered magnetic pumping mechanism to enhance its controllability. The proposed magnetic micropump capitalizes on the interaction force between two soft magnets, which can generate a pumping force of 4.64 mN to actuate a membrane, and achieve a deformation of 450 μm. Net flow is achieved using a nozzle/diffuser flow rectifier whose efficacy as a function of the channel geometry is numerically studied. We investigate the flow rate of the pump with regard to the actuation frequency. Finally, we demonstrate its ability to control the motion of the Marangoni surfer.

摘要

微流控技术已实现了用于各种生物医学和工业应用的流体系统的小型化,包括小型机器人推进。通过微流控产生推进力的一种机制是通过在空气 - 水界面释放表面活性剂来利用溶质马兰戈尼效应。表面活性剂会局部降低表面张力,从而产生一种表面应力,该应力可推动名为马兰戈尼冲浪者的浮动机器人。然而,到目前为止,表面活性剂的释放是不可控的。在本研究中,我们将基于微流控的马兰戈尼推进与一种新型的无系绳磁力泵机制相结合,以提高其可控性。所提出的磁性微泵利用了两个软磁体之间的相互作用力,该力可产生4.64毫牛的泵浦力来驱动一个膜,并实现450微米的变形。使用喷嘴/扩散器整流器实现净流量,其作为通道几何形状函数的功效通过数值研究。我们研究了泵浦流量与驱动频率的关系。最后,我们展示了其控制马兰戈尼冲浪者运动的能力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5b89/11365977/7da7bf7ed505/41598_2024_70944_Fig1_HTML.jpg

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