← 返回

一种降低电流总谐波畸变的模块化多电平变换器-电池储能系统扩展电平模型预测控制方法

An Extended-Level Model Predictive Control Method With Reduced Current THD for Modular Multilevel Converter-Battery Energy Storage System

语言:

中文摘要

模块化多电平变换器-电池储能系统(MMC-BESS)有助于提升电网可靠性,但其模型预测控制(MPC)面临计算量大、输出电流质量不佳及权重因子选取困难等问题。本文提出一种扩展电平MPC方法,在负载MPC阶段直接计算输出电压参考值,并通过逐步优化确定输出电平,采用优化电流误差面积的代价函数以降低电流总谐波畸变(THD)。每控制周期计算复杂度恒为5,与子模块数量无关。针对环流控制设计两种策略,并采用独立代价函数避免权重因子整定,将荷电状态(SoC)平衡反馈引入环流参考实现相间与桥臂间SoC均衡。仿真与实验验证了该方法的有效性。

English Abstract

The modular multilevel converter-battery energy storage system (MMC-BESS) is a converter system with the potential to enhance grid reliability. However, the implementation of model predictive control (MPC) in MMC-BESS is confronted with challenges such as substantial computational demands, suboptimal quality of output current, and challenges in selecting weighting factors. To address these challenges, this article puts forward an extended-level MPC approach, which involves the direct calculation of the output voltage reference value in the load MPC stage, followed by the optimization of the output level through a step-by-step optimization method. Additionally, it employs a cost function that optimizes the current area to further reduce the total harmonic distortion (THD). Notably, this process ensures a computational complexity of 5 for each control cycle, independent of the number of submodules. Two control strategies are employed to optimize the circulating current control depending on the number of inserted submodules. The use of independent cost functions for output current and circulating current eliminates the need for weighting factors, while the circulating current feedback for balancing the state-of-charge (SoC) is incorporated into the circulating current reference to achieve interphase and bridge arm SoC balancing control. The effectiveness of the proposed method is validated by simulation and experimental results.
S

SunView 深度解读

该扩展电平MPC方法对阳光电源ST系列储能变流器和PowerTitan大型储能系统具有重要应用价值。其核心优势在于:1)计算复杂度恒定为5且与子模块数量无关,可显著降低控制器成本,适合大规模MMC-BESS部署;2)通过优化电流误差面积降低THD,可提升ST储能变流器并网电能质量,满足严格的电网谐波标准;3)独立代价函数设计避免权重因子整定难题,简化工程调试流程;4)SoC平衡反馈机制实现相间与桥臂间均衡,可延长电池寿命并提升系统可靠性。该技术可与阳光电源现有构网型GFM控制策略结合,增强大型储能系统的电网支撑能力和运行稳定性。