DocumentCode :
1199638
Title :
Precision repositioning of the balancing ball in an auto-balancer system via a fuzzy speed regulator equipped with a sliding-mode observer
Author :
Chao, Paul C P ; Sung, Cheng-Kuo ; Huang, Chun-Lung ; Huang, Jeng-Sheng
Author_Institution :
Dept. of Mech. Eng., Chung-Yuan Christian Univ., Chung-li, Taiwan
Volume :
13
Issue :
6
fYear :
2005
Firstpage :
1107
Lastpage :
1118
Abstract :
An intelligent fuzzy rotor speed-regulator is developed to reposition the balancing ball inside an automatic balancer system (ABS) to its desired location. This repositioning is designed and activated to remedy the commonly-seen mis-positionings of the rolling ball inside ABS, which is caused by an inevitable rolling friction moment of the rolling ball in contact with its race, leading to large, undesired radial vibrations. The repositioning is accomplished by essentially generating required circumferential inertial force on the ball to suppress the rolling friction. For preliminary feasibility, the case of a single ball is considered. The first step is to establish the dynamic model of the system, which is followed by the analysis to ensure stability of the desired ball equilibrium position. The second step is to forge a sliding-mode observer for estimating online position and velocity of the ball, which are offered to the fuzzy speed-regulator as inputs. The fuzzy speed regulator is then synthesized by three parts: fuzzification of inputs/output, the rule table, and a reference engine accompanied by defuzzification. Finally, an incremental speed-adjustment scheme is designed in order for the spindle to reach target operating speed, while retaining the ball at the desired position. Simulations and experiments are conducted to demonstrate the effectiveness of the proposed fuzzy ball-repositioning scheme.
Keywords :
control system synthesis; fuzzy control; fuzzy systems; position control; rolling friction; rotors; variable structure systems; velocity control; auto-balancer system; balancing ball; ball equilibrium position; ball velocity; circumferential inertial force; defuzzification; dynamic model; fuzzy ball-repositioning scheme; intelligent fuzzy rotor speed-regulator; online position estimation; precision repositioning; radial vibration; reference engine; rolling friction moment; rule table; sliding-mode observer; speed-adjustment scheme; Chaos; Drives; Engines; Friction; Fuzzy systems; Mechanical engineering; Regulators; Rotors; Stability analysis; Vibrations; Automatic balancer system (ABS); balancing; fuzzy systems; rolling friction; sliding-mode observer;
fLanguage :
English
Journal_Title :
Control Systems Technology, IEEE Transactions on
Publisher :
ieee
ISSN :
1063-6536
Type :
jour
DOI :
10.1109/TCST.2005.857404
Filename :
1522251
Link To Document :
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