Neural-network-based speed controller for induction motors using inverse dynamics model

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作者
Hassanein S. Ahmed
Kamel Mohamed
机构
[1] Taibah University,Department of Computer Engineering, Faculty of Computer Science and Engineering
[2] Electronic Research Institute,Department of Power Electronic
[3] Taibah University,Department of Mathematics, Faculty Science
[4] Assiut University,Department of Mathematics, Faculty of Science, New Valley
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摘要
Artificial Neural Networks (ANNs) are excellent tools for controller design. ANNs have many advantages compared to traditional control methods. These advantages include simple architecture, training and generalization and distortion insensitivity to nonlinear approximations and nonexact input data. Induction motors have many excellent features, such as simple and rugged construction, high reliability, high robustness, low cost, minimum maintenance, high efficiency, and good self-starting capabilities. In this paper, we propose a neural-network-based inverse model for speed controllers for induction motors. Simulation results show that the ANNs have a high tracing capability.
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