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Enhanced Model Predictive Direct Torque Control Applied to IPM Motor With Online Parameter Adaptation

机译:增强型模型预测直接扭矩控制应用于IPM电机,具有在线参数适应

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摘要

This paper presents an improved model-based predictive direct torque control (MPDTC) to improve torque accuracy and reduce torque ripples which is a major issue in conventional direct torque control (DTC). Hysteresis controllers and traditional DTC switching tables are replaced by a model predictive controller to achieve an online optimization for voltage space vector selection and optimal duty ratio modulation method for torque ripple reduction. In order to provide an accurate motor model for MPDTC, novel offline and online motor parameter estimation methods are proposed to improve performance of the proposed MPDTC. The proposed parameter estimation adopts Popov & x2019;s hyper stability theorem to estimate accurate motor parameters, such as stator resistance, stator inductance and rotor flux linkage, which are critical for torque and flux estimation. The parameter adaptive MPDTC is verified by a hardware in the loop emulation platform, and experiment result is demonstrated using a dynamometer test bench, which therefore proves the feasibility of the proposed method.
机译:本文介绍了一种改进的基于模型的预测直接扭矩控制(MPDTC),以提高扭矩精度并减少扭矩涟漪,这是传统直接扭矩控制(DTC)中的主要问题。磁滞控制器和传统的DTC开关表由模型预测控制器代替,以实现用于电压空间矢量选择和最佳占空比调制方法的在线优化,用于减少扭矩脉动。为了为MPDTC提供精确的电机模型,提出了新的离线和在线电机参数估计方法,以提高所提出的MPDTC的性能。所提出的参数估计采用Popov和X2019; S超稳定性定理来估计准确的电动机参数,例如定子电阻,定子电感和转子磁通连杆,这对于扭矩和助焊剂估计至关重要。参数自适应MPDTC通过环形仿真平台中的硬件验证,使用测功机测试台对实验结果进行了说明,因此证明了所提出的方法的可行性。

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