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Nonlinear Model Predictive Control of Ironless Linear Motors

机译:无铁线性电动机的非线性模型预测控制

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As the demands for accuracy and throughput in industrial positioning systems are increasing, classical control of ironless linear motors (ILMs) is facing its limit. Classical control scheme of an ILM typically consists of a simple sinusoidal commutation algorithm and a PID feedback controller. Classical commutation cannot compensate for parasitic effects, while classical PID feedback controller cannot guarantee constraints satisfaction. This problem can be addressed by replacing classical commutation with optimal commutation and PID controller with linear model predictive controller (LMPC). However, this LMPC and optimal commutation scheme requires solving two separate optimization problems, which is not optimal and can lead to infeasibility. In this paper we present a nonlinear model predictive control (NMPC) scheme for ILMs. The scheme requires solving only a single optimization problem. It can guarantee constraints satisfaction and is capable of compensating for parasitic forces. Simulation results are presented for demonstration.
机译:随着对工业定位系统的准确性和产量的需求正在增加,古典控制无铁线性电动机(ILMS)面临其限制。 ILM的经典控制方案通常由简单的正弦换向算法和PID反馈控制器组成。经典换向不能补偿寄生效应,而经典PID反馈控制器不能保证约束满足。通过使用线性模型预测控制器(LMPC)更换具有最佳换向和PID控制器的经典换向来解决此问题。然而,这种LMPC和最佳换向方案需要解决两个单独的优化问题,这是不佳的,并且可能导致不可行。本文介绍了ILMS的非线性模型预测控制(NMPC)方案。该方案只能解决单一的优化问题。它可以保证约束满足感,并且能够补偿寄生力。仿真结果显示用于演示。

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