控制理论(社会学)
滑模控制
粘弹性
执行机构
控制器(灌溉)
振动
振动控制
国家观察员
运动控制
非线性系统
计算机科学
控制工程
工程类
材料科学
控制(管理)
物理
人工智能
复合材料
机器人
生物
量子力学
农学
作者
Jiang Zou,Shakiru Olajide Kassim,Jieji Ren,Vahid Vaziri,Sumeet S. Aphale,Guoying Gu
标识
DOI:10.1109/tro.2023.3338973
摘要
The continuous electromechanical deformation of dielectric elastomer actuators (DEAs) suffers from rate-dependent viscoelasticity, mechanical vibration, and configuration dependency, making the generalized dynamic modeling and precise control elusive. In this work, we present a generalized motion control framework for DEAs capable of accommodating different configurations, materials and degrees of freedom (DOFs). First, a generalized, control-enabling dynamic model is developed for DEAs by taking both nonlinear electromechanical coupling, mechanical vibration and rate-dependent viscoelasticity into consideration. Further, a state observer is introduced to predict the unobservable viscoelasticity. Then, an enhanced exponential reaching law-based sliding-mode controller (EERLSMC) is proposed to minimize the viscoelasticity of DEAs. Its stability is also proved mathematically. The experimental results obtained for different DEAs (four configurations, two materials, and multi-DOFs) demonstrate that our dynamic model can precisely describe their complex dynamic responses and the EERLSMC can achieve precise tracking control; verifying the generality and versatility of our motion control framework.
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