Title :
Accurate friction compensation for precision stage using synchronous piezoelectric device driver
Author :
Minh, Truong Ngoc ; Ohishi, Kiyoshi ; Takata, Masasuke ; Hashimoto, Seiji ; Kosaka, Kouji ; Kubota, Hiroshi ; Ohmi, Tadahiro
Author_Institution :
Dept. of Electr. Eng., Nagaoka Univ. of Technol., Niigita
Abstract :
It is well-known that one of the major limitations to achieve a good performance in mechanical systems is the presence of friction. High resolution positioning systems operating with accuracies in nanometer region usually exhibit relatively large steady-state tracking errors or even oscillations if controllers are designed without considering friction. Consequently, this paper aims at improving the position control of a high precision stage using a synchronous piezoelectric device driver (SPIDER) by comparing the performances of three friction compensators. These friction compensators detect friction in the system and use this information to modify the control input. The first using bang-bang control is based on the well-known static friction model. The second is a friction state observer based on the dynamic friction LuGre model, and the third is a feed-forward compensator based on the LuGre model. In order to effect a fair comparison, three friction compensators use the same identified friction parameters in controller synthesis. The performance comparisons are presented by means of experimental results on the proposed high precision stage using SPIDER
Keywords :
bang-bang control; compensation; control system analysis; control system synthesis; electric drives; feedforward; nanopositioning; piezoelectric devices; stiction; accurate friction compensation; bang-bang control; controller synthesis; dynamic friction LuGre model; feed-forward compensator; friction state observer; high precision stage; high resolution positioning systems; oscillations; position control; static friction model; steady-state tracking errors; synchronous piezoelectric device driver; Control systems; Error correction; Force control; Friction; Mechanical systems; Piezoelectric devices; Resonance; Steady-state; Synchronous motors; Vibrations;
Conference_Titel :
Advanced Motion Control, 2006. 9th IEEE International Workshop on
Conference_Location :
Istanbul
Print_ISBN :
0-7803-9511-1
DOI :
10.1109/AMC.2006.1631642