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FDOB-Based Robust Impedance Control of Force Sensor Implemented Force Servo System

Title
FDOB-Based Robust Impedance Control of Force Sensor Implemented Force Servo System
Author(s)
Samuel, KangwagyeOh, Sehoon
Issued Date
2021-10-13
Citation
47th Annual Conference of the IEEE Industrial Electronics Society, IECON 2021, pp.1 - 6
Type
Conference Paper
ISBN
9781665435543
ISSN
1553-572X
Abstract
Instability which occurs when the robot's end effector contacts a very stiff environment is a challenge in designing control systems for safe physical interaction and cooperation of robots with environment. One of the reasons for the instability is force disturbances caused by the mechanical factors of the robot system. To this effect, this paper presents the design, analysis, and implementation of a robust impedance controller for a force servo system. To suppress the force disturbances, a force disturbance observer (FDOB) is implemented in the impedance-controlled system. For comparison purposes, impedance control system when the FDOB is not implemented is also designed and analyzed. Further, using the passivity approach, coupled stability conditions of the designed impedance control systems are derived and analyzed to assess the effect of FDOB on passivity and overall control performance. Simulations and experiments are conducted to evaluate performance of the designed impedance control systems and it is found that the FDOB-based control system shows superior performance by improving contact stability compared to direct force sensor feedback control system. © 2021 IEEE.
URI
http://hdl.handle.net/20.500.11750/46897
DOI
10.1109/IECON48115.2021.9589162
Publisher
IEEE Industrial Electronics Society
Related Researcher
  • 오세훈 Oh, Sehoon
  • Research Interests Research on Human-friendly motion control; Development of human assistance;rehabilitation system; Design of robotic system based on human musculoskeletal system; Analysis of human walking dynamics and its application to robotics; 친인간적인 운동제어 설계연구; 인간 보조;재활 시스템의 설계 및 개발연구; 인간 근골격계에 기초한 로봇기구 개발연구; 보행운동 분석과 모델 및 로봇기구에의 응용
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Department of Robotics and Mechatronics Engineering MCL(Motion Control Lab) 2. Conference Papers

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