Model Predictive Control for the Reduction of DC-link Current Ripple in Two-level Three-phase Voltage Source Inverters

Junzhong Xu, Fei Gao, T. Soeiro, Linglin Chen, L. Tarisciotti, Houjun Tang, P. Bauer
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引用次数: 2

Abstract

In the applications of three-phase two-level voltage source inverters (VSIs) relatively large energy storage capacitors are used to absorb the high DC-link current ripples mainly caused by the circulating reactive power, the switched AC phase current flowing to the DC-link, and other dynamic and/or asymmetric operating conditions. Especially for electrolytic capacitor technology the typically high current stress and consequent losses is known to limit the power electronics lifetime, thus the design and selection of this component is critical for the whole system. To alleviate this problem, a new model predictive control (MPC) cost function which enables DC-link capacitor current ripple reduction is proposed in this paper. Based on the DC-link current mathematical model and the available VSI switching states, the future DC current ripple can be predicted, and then the optimized space vectors that best tracks the sinusoidal output current and minimizes the DC-link current ripple are chosen. Compared with conventional DC-link capacitor current reduction methods, the proposed approach has the advantage to incorporate an outstanding fast current control dynamics as well as being of relatively simple implementation because there is no need to adjust the switching signals or space vectors in the modulation as function of operational conditions of the system. Simulation and experimental results are presented verifying the effectiveness of the proposed MPC method.
二电平三相电压源逆变器直流链纹波减小的模型预测控制
在三相两电平电压源逆变器(vsi)的应用中,使用较大的储能电容器来吸收主要由循环无功功率、流向直流链路的开关交流相电流以及其他动态和/或不对称运行条件引起的高直流电流波动。特别是电解电容器技术,其典型的高电流应力和随之而来的损耗限制了电力电子设备的使用寿命,因此该组件的设计和选择对整个系统至关重要。为了解决这一问题,本文提出了一种新的模型预测控制(MPC)代价函数,使直流链路电容电流纹波减小。基于直流电流数学模型和可用的VSI开关状态,可以预测未来的直流电流纹波,然后选择最能跟踪正弦输出电流并使直流电流纹波最小的优化空间向量。与传统的直流链路电容电流减小方法相比,该方法具有突出的快速电流控制动力学以及相对简单的实现优势,因为不需要根据系统的运行条件调整调制中的开关信号或空间矢量。仿真和实验结果验证了该方法的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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