基于在线参数辨识的PWM整流器模型预测直接功率控制

Yongzhi Wang, Dan Wang, Zhouhua Peng
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引用次数: 2

摘要

模型预测控制以准确的模型参数保证了优越的控制性能。但是,由于参数的不确定性和参数的不匹配,可能会降低预测的精度。针对具有完全未知参数的脉宽调制整流器,提出了一种基于在线参数辨识的改进模型预测直接功率控制(MPDPC)。本文提出了一种自适应参数估计更新律来识别未知参数。采用两级滤波器保证了估计误差的收敛性。在控制部分,提出了一种基于识别参数的MPDPC来实现预期的功率控制目标。仿真结果显示了该方法在不同参数条件下的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Model Predictive Direct Power Control for PWM Rectifiers Based on Online Parameter Identification
Model predictive control guarantees superior control performance with accurate model parameters. However, the prediction accuracy may be deteriorated due to the parameter uncertainties and parameter mismatches. In this paper, an improved model predictive direct power control (MPDPC) based on online parameter identification is proposed for pulse width modulation (PWM) rectifiers with fully unknown parameters. In this paper, an adaptive Parameter estimation update law is proposed to identify the unknown parameters. Two-stage filters are applied to ensure the convergence of estimation errors. In the control part, an MPDPC based on the identified parameters is proposed to realize the desired power control objectives. Simulation results under various parameter conditions are simulated to show the effectiveness of the proposed method.
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