Modeling Robot Dynamic Performance for Endpoint Force Control

Abstract

This thesis aims to understand the fundamental dynamic behavior of servo-controlled machinery in response to various types of sensory feedback. As an example of such a system, the author studies robot force control, a scheme which promises to greatly expand the capabilities of industrial robots by allowing manipulators to interact with uncertain and dynamic tasks. Implementations of compliant motion control strategies typically display extremely limited performance. Furthermore, the instabilities observed in these systems are generally not predicted by robot performance models. In this research, dynamic models are developed which allow the effects of actuator dynamics, structural flexibility, and workpiece interaction to be explored in the frequency and time domains. The models are used first to explain the causes of robot force control instability, and then to find methods of improving this performance. Emphasis is placed on the use of both laboratory testing and mathematical modeling to gain a fundamental understanding of machine dynamic behavior. The insights developed will help the designers of the next generation of automated manufacturing equipment to build more capable systems.

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Document Details

Document Type
Technical Report
Publication Date
Aug 01, 1988
Accession Number
ADA202881

Entities

People

  • Steven D. Eppinger

Organizations

  • Massachusetts Institute of Technology

Tags

Communities of Interest

  • Autonomy

DTIC Thesaurus Topics

  • Actuators
  • Artificial Intelligence
  • Closed Loop Systems
  • Computers
  • Control Systems
  • Control Systems Engineering
  • Engineering
  • Frequency
  • Manufacturing
  • Measurement
  • Mechanical Engineering
  • Resonant Frequency
  • Robotics
  • Robots
  • Strain Gages
  • Transducers
  • Two Dimensional

Fields of Study

  • Engineering

Readers

  • Computational Modeling and Simulation
  • Robotics and Automation.

Technology Areas

  • AI & ML
  • AI & ML - Autonomous Systems
  • Autonomy
  • Autonomy - Autonomous System Control