控制理论(社会学)
运动学
李雅普诺夫函数
职位(财务)
机器人
趋同(经济学)
控制工程
分段
计算机科学
执行机构
工程类
控制系统
扭矩
自适应控制
滑倒
滑模控制
刚体
机器人控制
常曲率
机器人运动学
曲率
内环
迭代学习控制
机械系统
作者
Shiying Zhao,Qingxin Meng,Xuzhi Lai,Jinhua She,Edwardo F. Fukushima,Min Wu
标识
DOI:10.1109/tcyb.2025.3633656
摘要
Continuum robots (CRs) show great potential in complex environments due to their excellent deformability. For practical applications, the position control of the CRs is an important research field. The common drives of the CRs are rigid motors with mature control schemes. However, the driving force of the rigid motors is often impactive, which may cause safety concerns during interaction. Soft drives based on pneumatic soft actuators (PSAs) can provide compliant driving force for the CRs robot bodies to solve this problem, but it is necessary to comprehensively consider the control of the soft drives and the robot bodies. This article takes a CR with soft drives as the research objective, and proposes a double closed-loop adaptive position control method to achieve the endpoint position control of the CR. This CR includes a length-variable robot body with millimeter-scale diameter and pneumatic soft drives. The kinematic model of the robot body is built based on the piecewise constant curvature (PCC) method, and the static models of the soft drives are derived from the three-element model. Based on these models, we propose a double closed-loop adaptive position control method. The inner loop is used to control the displacements of the soft drives, and the outer loop combines the endpoint position control with the nonsingular fast terminal sliding mode function to adaptively control the endpoint position based on the inner loop. By Lyapunov method, we prove the convergence of the endpoint position error. The effectiveness of the proposed control method is verified through experiments.
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