DocumentCode :
1133
Title :
Design and Analysis of Force-Sensor-Less Power-Assist Control
Author :
Sehoon Oh ; Kyoungchul Kong ; Hori, Yoichi
Author_Institution :
Dept. of Mech. Eng., Sogang Univ., Seoul, South Korea
Volume :
61
Issue :
2
fYear :
2014
fDate :
Feb. 2014
Firstpage :
985
Lastpage :
993
Abstract :
Due to the recent trend of the application of robots and other mechatronic devices to human life support, the force control draws more attention than ever. However, to use force sensors in all the required cases makes the system not only expensive but also bulky. Force-sensor-less power-assist control (FSPAC) which uses only encoders to obtain the external force information and provides force control performance can address this problem. Due to its simplicity and wide application, FSPAC is an essential technology to control a motor in a human-friendly way, but the design of FSPAC is different from the conventional feedback controllers so a new design methodology needs to be established. In order to attack this problem, this paper generalizes and analyzes the structure and characteristics of FSPAC. The generalized structure reveals how FSPAC can achieve the assistance, and the transfer function analysis based on the structure addresses the robustness and assistance performance evaluation problems. The robustness of FSPAC is analyzed in terms of the gain margin and robust stability, and the limitation of the power assistance to guarantee the robust stability is derived. Then, the evaluation way of feedback control design in FSPAC is provided. All the discussion in this paper provides the readers with understanding and appropriate design methodology of FSPAC.
Keywords :
control system analysis; control system synthesis; electric motors; feedback; force control; power control; robust control; transfer functions; FSPAC characteristics; FSPAC structure; design methodology; feedback control design; force control; force information; force-sensor-less power-assist control; gain margin; motor control; robust stability; transfer function analysis; Assistive technology; disturbance observer; force-sensor-less force control; impedance control; power-assist control; robustness;
fLanguage :
English
Journal_Title :
Industrial Electronics, IEEE Transactions on
Publisher :
ieee
ISSN :
0278-0046
Type :
jour
DOI :
10.1109/TIE.2013.2270214
Filename :
6544240
Link To Document :
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