有效载荷(计算)
导纳
接触力
机器人
阻抗控制
机电一体化
自动化
工程类
灵活性(工程)
计算机科学
控制工程
模拟
控制理论(社会学)
控制(管理)
电阻抗
机械工程
物理
电气工程
人工智能
数学
计算机网络
网络数据包
统计
量子力学
作者
Kevin Haninger,Marcel Radke,Axel Vick,Jörg Krüger
标识
DOI:10.1109/lra.2022.3150051
摘要
Force control enables hands-on teaching and physical collaboration, with the potential to improve ergonomics and flexibility of automation. Established methods for the design of compliance, impedance control, and collision response can achieve free-space stability and acceptable peak contact force on lightweight, lower payload robots. Scaling collaboration to higher payloads can allow new applications, but introduces challenges due to the more significant payload dynamics and the use of higher-payload industrial robots. To achieve high-payload manual guidance with contact, this paper proposes and validates new mechatronic design methods: standard admittance control is extended with damping feedback, compliant structures are integrated to the environment, and a contact response method which allows continuous admittance control is proposed. These methods are compared with respect to free-space stability, contact stability, and peak contact force. The resulting methods are then applied to realize two contact-rich tasks on a 16 kg payload (peg in hole and slot assembly) and free-space co-manipulation of a 50 kg payload.
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