DocumentCode :
3602957
Title :
Detent Force Compensation for PMLSM Systems Based on Structural Design and Control Method Combination
Author :
Mingyi Wang ; Liyi Li ; Donghua Pan
Author_Institution :
Dept. of Electr. Eng., Harbin Inst. of Technol., Harbin, China
Volume :
62
Issue :
11
fYear :
2015
Firstpage :
6845
Lastpage :
6854
Abstract :
As direct-drive actuators, permanent-magnet linear synchronous motors (PMLSMs) are widely used in high velocity and high precision applications. The detent force, however, can deteriorate the performance and even excite the mechanical resonance. This paper focuses on a novel detent force compensation scheme for PMLSM systems through a combination of structural design and control method. First, due to the bandwidth constraint of the control system, eliminating high frequency ripples is unfeasible; skewed permanent magnets (PMs) considering an optimal skewing length are designed to suppress high order harmonic components. Second, based on the model of PMLSM with skewed PMs, a linearization observer is derived and applied independently to the velocity controller for further diminishing low-order harmonic components. To facilitate implementation in the digital control system, a discretization method taking account of estimated errors is designed. Through the online calculation, the estimated detent force is injected to the control system in a feedforward way. To tune the proposed scheme properly, the convergence of the algorithm is analyzed by utilizing Lyapunov stability theory. Simulation studies are performed to prove the effectiveness of the proposed method, and experiments are provided to confirm the theoretical analysis and simulation results.
Keywords :
Lyapunov methods; actuators; angular velocity control; digital control; feedforward; harmonics suppression; linear synchronous motors; machine control; observers; permanent magnet motors; Lyapunov stability theory; PMLSM system; bandwidth constraint; detent force compensation; digital control system; direct-drive actuator; discretization method; feedforward way; high frequency ripple elimination; high order harmonic component suppression; linearization observer; mechanical resonance; permanent-magnet linear synchronous motor; structural design and control method combination; velocity controller; Analytical models; Bandwidth; Control systems; Force; Harmonic analysis; Observers; Synchronous motors; Detent force; Permanent magnet linear synchronous motors (PMLSMs); detent force; discrete time linearization observer; discrete-time linearization observer; permanent-magnet linear synchronous motors (PMLSMs); skewed permanent magnet; skewed permanent magnet (PM); stability analysis;
fLanguage :
English
Journal_Title :
Industrial Electronics, IEEE Transactions on
Publisher :
ieee
ISSN :
0278-0046
Type :
jour
DOI :
10.1109/TIE.2015.2443096
Filename :
7120968
Link To Document :
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