磁性微球在地形景观上的自导导航

Yiyang Wu, April Ramos and Kyle J. M. Bishop*, 
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引用次数: 0

摘要

磁性微型机器人在结构化环境中的定向推进通常需要外部传感器和应用场之间的实时反馈。不过,这一要求可以放宽,通过将场驱动运动与局部环境中的梯度耦合,实现自导推进。我们的研究表明,旋转磁场能引导铁磁球沿着固体基底地形的局部梯度向上移动。我们将粒子迁移的速度和方向量化为旋转频率和倾斜角度的函数。这些观察结果可以用一个动态模型来解释,该模型描述了粒子在磁力矩和引力作用下在流体中的运动。我们展示了 "顶轴 "如何在不知道粒子位置或表面地形的情况下,引导多个粒子在凹碗和凸圆顶的图案阵列上同时导航。这些结果凸显了设计时变场的机会,从而实现以局部环境线索为条件的其他自导行为。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Self-Guided Navigation of Magnetic Microspheres on Topographic Landscapes

Self-Guided Navigation of Magnetic Microspheres on Topographic Landscapes

The directed propulsion of magnetic microrobots through structured environments often requires real-time feedback between external sensors and the applied field. This requirement, however, can be relaxed to enable self-guided propulsion by coupling field-driven motion to gradients in the local environment. We show that rotating fields direct the migration of ferromagnetic spheres up local gradients in the topography of a solid substrate. We quantify the speed and direction of particle migration as a function of the rotation frequency and incline angle. These observations are explained by a dynamic model that describes particle motion through the fluid due to the magnetic torque and gravitational force. We demonstrate how “topotaxis” can direct the simultaneous navigation of multiple particles on patterned arrays of concave bowls and convex domes without knowledge of the particle locations or the surface topography. These results highlight opportunities for designing time-varying fields to achieve other self-guided behaviors conditioned on local environmental cues.

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期刊介绍: ACS Applied Engineering Materials is an international and interdisciplinary forum devoted to original research covering all aspects of engineered materials complementing the ACS Applied Materials portfolio. Papers that describe theory simulation modeling or machine learning assisted design of materials and that provide new insights into engineering applications are welcomed. The journal also considers experimental research that includes novel methods of preparing characterizing and evaluating new materials designed for timely applications. With its focus on innovative applications ACS Applied Engineering Materials also complements and expands the scope of existing ACS publications that focus on materials science discovery including Biomacromolecules Chemistry of Materials Crystal Growth & Design Industrial & Engineering Chemistry Research Inorganic Chemistry Langmuir and Macromolecules.The scope of ACS Applied Engineering Materials includes high quality research of an applied nature that integrates knowledge in materials science engineering physics mechanics and chemistry.
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