arXiv:2409.07293cs.RO2024-09被引 9

将微电机推进与电子电路集成,实现可编程微型机器人

Electrokinetic Propulsion for Electronically Integrated Microscopic Robots

  • 利用电动力学原理在机器人周围产生推进流
  • 实测最高速度达1倍体长/秒,支持路径导航与群体协同
  • 适合需长期稳定运行的微型智能系统研究

半导体微电子技术正成为构建肉眼不可见的智能自主微机器人的有力工具。然而,现有多数微机器人平台虽在速度、鲁棒性、功耗或制造便捷性方面具有优势,却缺乏电子集成路径,限制了其智能化水平。本文展示如何将自推进粒子升级为集成电子系统的微机器人,融合二者优势。受电动力微马达启发,机器人在周围流体中产生电场,从而引发推进性的电动力流动。其运动速度与施加电流成正比,设计与控制简便。实验中构建的基本机器人搭载片上电路,通过闭环光学控制实现路径导航与群体协调运动,最高速度达1体长/秒。该方法统一了微马达推进与机载电子系统,为制造鲁棒、快速、易量产、可编程且可稳定运行数月到数年的微机器人开辟了新路径。

原文摘要 · Abstract (English)

Semiconductor microelectronics are emerging as a powerful tool for building smart, autonomous robots too small to see with the naked eye. Yet a number of existing microrobot platforms, despite significant advantages in speed, robustness, power consumption, or ease of fabrication, have no clear path towards electronics integration, limiting their intelligence and sophistication when compared to electronic cousins. Here, we show how to upgrade a self-propelled particle into an an electronically integrated microrobot, reaping the best of both in a single design. Inspired by electrokinetic micromotors, these robots generate electric fields in a surrounding fluid, and by extension propulsive electrokinetic flows. The underlying physics is captured by a model in which robot speed is proportional to applied current, making design and control straightforward. As proof, we build basic robots that use on-board circuits and a closed-loop optical control scheme to navigate waypoints and move in coordinated swarms at speeds of up to one body length per second. Broadly, the unification of micromotor propulsion with on-robot electronics clears the way for robust, fast, easy to manufacture, electronically programmable microrobots that operate reliably over months to years.

微机器人电动力推进电子集成

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