首页> 外文会议>2015 6th International Conference on Automation, Robotics and Applications >Switching strategy for Direct Model Predictive Control in power converter and drive applications with high switching frequency
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Switching strategy for Direct Model Predictive Control in power converter and drive applications with high switching frequency

机译:具有高开关频率的功率转换器和驱动器应用中的直接模型预测控制的开关策略

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摘要

Model Predictive Control (MPC) includes a mathematical plant model. Based on that model, optimal actuating variables for future timesteps are determined in every sampling step. Thus the MPC exhibits a better reference response compared to conventional control. The problem with MPC is the high computational cost and the associated long control cycle time. Thus MPC is unattractive for processes with small time constants as they are common in power converter and drive control systems. In this paper a Direct Model Predictive Control method (DMPC) for nonlinear systems with inherent output saturation is presented. In contrast to other Direct-MPC approaches, a more flexible gate-signal generation method which enables switching during the sampling period is utilized. In addition the switching frequency can be increased while maintaining the same controller cycle time. This results in a reduction of the current ripple. Since this approach is based on a computational efficient optimization algorithm, it provides real-time capability for online-MPC even with process time constants in the millisecond range enabling the use of MPC for control of permanent magnet synchronous motors with interior magnets (IPMSM).
机译:模型预测控制(MPC)包括数学工厂模型。基于该模型,将在每个采样步骤中确定未来时间步长的最佳执行变量。因此,与常规控制相比,MPC表现出更好的参考响应。 MPC的问题是高计算成本和相关的长控制周期时间。因此,MPC对于时间常数较小的过程没有吸引力,因为它们在功率转换器和驱动控制系统中很常见。本文提出了一种具有固有输出饱和的非线性系统的直接模型预测控制方法(DMPC)。与其他Direct-MPC方法相比,采用了一种更灵活的栅极信号生成方法,该方法能够在采样周期内进行切换。另外,可以在保持相同的控制器循环时间的同时提高开关频率。这导致电流纹波的减小。由于此方法基于有效的计算优化算法,因此即使过程时间常数在毫秒范围内,它也可以为在线MPC提供实时功能,从而可以使用MPC来控制带有内部磁体的永磁同步电动机(IPMSM)。

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