机器人末端执行器
机制(生物学)
控制理论(社会学)
刚度
弹簧(装置)
常量(计算机编程)
机器人
流离失所(心理学)
顺应机制
接触力
计算机科学
工程类
控制工程
模拟
机械工程
结构工程
经典力学
物理
控制(管理)
人工智能
量子力学
有限元法
程序设计语言
心理治疗师
心理学
作者
Yi-Ho Chen,Chao-Chieh Lan
摘要
Force regulation is a challenging problem for robot end-effectors when interacting with an unknown environment. It often requires sophisticated sensors with computerized control. This paper presents an adjustable constant-force mechanism (ACFM) to passively regulate the contact force of a robot end-effector. The proposed ACFM combines the negative stiffness of a bistable mechanism and positive stiffness of a linear spring to generate a constant-force output. Through prestressing the linear spring, the constant-force magnitude can be adjusted to adapt to different working environments. The ACFM is a monolithic compliant mechanism that has no frictional wear and is capable of miniaturization. We propose a design formulation to find optimal mechanism configurations that produce the most constant-force. A resulting force to displacement curve and maximal stress curve can be easily manipulated to fit a different application requirement. Illustrated experiments show that an end-effector equipped with the ACFM can adapt to a surface of variable height, without additional motion programming. Since sensors and control effort are minimized, we expect this mechanism can provide a reliable alternative for robot end-effectors to interact friendly with an environment.
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