DocumentCode :
1050964
Title :
Robust Control of PM Spherical Stepper Motor Based on Neural Networks
Author :
Li, Zheng
Author_Institution :
Sch. of Electr. Eng. & Inf. Sci., Hebei Univ. of Sci. & Technol., Shijiazhuang, China
Volume :
56
Issue :
8
fYear :
2009
Firstpage :
2945
Lastpage :
2954
Abstract :
There are many uncertainties and disturbances in the real dynamic system of a spherical stepper motor that make traditional control methods with lower precision, such as uncertain changes of magnetic field, load, and friction that generate speed ripple and deteriorate the 3-D tracking performance of the spherical motor system. In this paper, an available method is proposed to solve them by using neural networks (NNs) and a robust control scheme for improving the performance. First, a simplified torque calculation model based on finite-element method results can guarantee quick prediction of electromagnetic torque with lower error. Thus, the system model considering the friction, load, and disturbances is developed. Second, a robust NN (RNN) control scheme is presented to eliminate uncertainties to improve the tracking robust stability and overcome the undesired influence of uncertainties based on the nonlinear system dynamic model under continuous-trajectory tracking mode. Finally, as an example, the step-response and continuous-tracking processes of the motor using an RNN controller are simulated, and experiments, including the tracking using RNN proportional-differential control, are carried out to confirm the usefulness of the proposed control scheme. The simulation and experimental results of the proposed control scheme on the spherical stepper motor system demonstrate the effectiveness on satisfactory tracking performance.
Keywords :
finite element analysis; machine control; neural nets; permanent magnet motors; robust control; stepping motors; 3D tracking performance; continuous trajectory tracking mode; electromagnetic torque; finite element method; nonlinear system dynamic model; permanent magnet spherical stepper motor; proportional-differential control; real dynamic system; robust control; robust neural networks; robust stability; simplified torque calculation; Dynamic model; permanent magnet (PM); robust neural network (RNN) control; spherical stepper motor; tracking;
fLanguage :
English
Journal_Title :
Industrial Electronics, IEEE Transactions on
Publisher :
ieee
ISSN :
0278-0046
Type :
jour
DOI :
10.1109/TIE.2009.2023639
Filename :
5061562
Link To Document :
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