Model predictive power control approach for three-phase single-stage grid-tied PV module-integrated converter

A. Moghadasi, A. Sargolzaei, Arash Khalilnejad, M. Moghaddami, A. Sarwat
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引用次数: 13

Abstract

This paper presents the concept of the three-phase module-integrated converters (MICs) incorporated in grid-tied large-scale photovoltaic (PV) systems. The current-source converter (CSC) with dc voltage boost capability, namely single-stage power conversion system, is proposed for three-phase PV MIC system. A model predictive scheme with low switching frequency is designed to control the proposed topology in such a way that provides a certain amount of active and reactive power in steady-state operation and also provides a proper ratio of reactive power under transient conditions to meet the low voltage ride through (LVRT) regulations. To predict the future behavior of current control values and switching states, a discrete-time model of the MIC is developed in synchronous reference frame. It is demonstrated that the injected active and reactive power can be controlled using minimizing the cost function introduced in the predictive switching algorithm. The proposed structure is simulated in MATLAB/SIMULINK software. The results verify the desired performance of the proposed control scheme for exchanging of both active and reactive powers between the PV MIC and the grid within different operating conditions.
三相单级并网光伏模块集成变流器模型预测功率控制方法
提出了并网大型光伏发电系统中三相模块集成变流器的概念。提出了一种具有直流升压能力的电流源变换器(CSC),即用于三相光伏MIC系统的单级功率转换系统。设计了一种低开关频率的模型预测方案,以控制所提出的拓扑结构,使其在稳态运行时提供一定的有功功率和无功功率,并在暂态状态下提供适当的无功功率比例,以满足低电压穿越(LVRT)规则。为了预测电流控制值和开关状态的未来行为,在同步参考系中建立了MIC的离散时间模型。结果表明,通过最小化预测开关算法中引入的代价函数,可以控制注入的有功和无功功率。在MATLAB/SIMULINK软件中对该结构进行了仿真。结果验证了所提出的控制方案在不同运行条件下光伏MIC和电网之间的有功和无功交换的预期性能。
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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