提出新模型解释电粘附响应慢问题,实现微秒级开关速度。
Modeling the Dynamics of Sub-Millisecond Electroadhesive Engagement and Release Times
- 结合极化动态与电路响应,建立电粘附耦合动力学模型。
- 实验验证最快释放时间低于875微秒,比前人快17.1倍。
- 适合高速软体机器人和力反馈交互系统设计参考。
电粘附离合器是软体机器人和触觉人机界面中常见的可电控开关粘附材料,能在低功耗下与多种表面形成强吸附。然而,现有文献中电粘附的接合与释放时间比传统静电模型预测慢数个数量级。尤其释放时间过长,限制了其在高带宽场景的应用。本文构建了一种新的机电耦合模型,综合考虑极化动态、驱动电路的上升/下降时间以及介电层与基底间的接触力学。通过仿真与实验发现,不同设计参数对厘米级电粘附离合器在金属基底上的接合与释放时间有显著影响,且模型能准确捕捉实验结果的量级与趋势。具体而言,更高驱动频率、更窄的基底长宽比以及更快的驱动电路输出阶段可显著提升释放速度。最快离合器的接合时间小于15微秒,释放时间小于875微秒,分别比先前文献中最佳结果快10倍和17.1倍。
原文摘要 · Abstract (English)
Electroadhesive clutches are electrically controllable switchable adhesives commonly used in soft robots and haptic user interfaces. They can form strong bonds to a wide variety of surfaces at low power consumption. However, electroadhesive clutches in the literature engage to and release from substrates several orders of magnitude slower than a traditional electrostatic model would predict. Large release times, in particular, can limit electroadhesion's usefulness in high-bandwidth applications. We develop a novel electromechanical model for electroadhesion, factoring in polarization dynamics, the drive circuitry's rise and fall times, and contact mechanics between the dielectric and substrate. We show in simulation and experimentally how different design parameters affect the engagement and release times of centimeter-scale electroadhesive clutches to metallic substrates, and we find that the model accurately captures the magnitude and trends of our experimental results. In particular, we find that higher drive frequencies, narrower substrate aspect ratios, and faster drive circuitry output stages enable significantly faster release times. The fastest clutches have engagement times less than 15 us and release times less than 875 us, which are 10x and 17.1x faster, respectively, than the best times found in prior literature on centimeter-scale electroadhesive clutches.
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