Experiment Based Structural Stiffness Calibration of a Virtual Robot Model
Janez Gotlih, Timi Karner, Karl Gotlih, M. Brezočnik
- 发表年份
- 2018
- 引用次数
- 4
- 访问权限
- 开放获取
摘要
The main advantage of industrial robots is their flexibility, if compared to CNC machines, and speed and accuracy, if compared to humans. To improve accuracy of industrial robots, their stiffness, as one of their most important structural properties needs to be determined. As stiffness of robots with rotary joints is pose dependent, it is convenient to perform FEM simulations to predict a robot's structural stiffness in a desired pose. However, simulation results may deviate in magnitude and trend if compared to measurements. The reasons for deviations are inexact model geometry, friction, component wear and other unknown effects. Our study focuses on structural stiffness measurements for FEM model calibration. A FEM model, with all unknown effects integrated in rotational stiffness' of the robot's joints is created and for each joint, rotational stiffness as a function of joint angles is determined. The calibrated model is used to generate a surrogate model for the robot's structural stiffness.
关键词
相关论文
Statistical Learning Theory
Yuhai Wu, Vladimir Vapnik
1999
Artificial intelligence: a modern approach
1995
Fractional Differential Equations
Igor Podlubný
2025
Applied Nonlinear Control
Jean-Jacques Slotine, Weiping Li
1991