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储能系统技术 储能系统 多电平 ★ 5.0

MMC-SESS中ESS接口变换器的二次谐波注入策略以减小电容尺寸

Second-Harmonic Injection Strategy for ESS Interface Converter to Reduce Capacitor Size in MMC-SESS

语言:

中文摘要

集成超级电容SC储能系统的模块化多电平变换器MMC-SESS因高功率密度、快速充放电能力和长寿命而受到广泛关注。在电池储能系统BESS中,缓解二次谐波电流SHC对保持电池寿命至关重要。然而由于SC寿命几乎不受SHC影响,子模块SM电容的二次谐波电压SHV降低比缓解SHC更可取。该方法可减小SM电容尺寸并提高系统功率密度。提出一种ESS接口变换器的二次谐波注入策略,专门旨在降低SM电容的SHV同时保持SC侧SHC幅值。分析了ESS接口变换器各工作点的SHV和SHC特性。基于该分析验证所提策略可在保持SHV和SHC幅值的同时减小电容尺寸达40%。在使用20kW三角连接MMC-SESS和5kW单SM原型的控制器硬件在环C-HIL环境中实验验证了有效性。

English Abstract

Modular multilevel converter with integrated supercapacitor (SC) energy storage system (MMC-SESS) has attracted significant attention due to its high power density, fast charge/discharge capability, and long lifespan. In battery energy storage systems (BESS), the mitigation of the second-harmonic current (SHC) is essential for preserving battery lifetime. However, since the SC’s lifetime is barely affected by the SHC, the second-harmonic voltage (SHV) reduction of the sub-module (SM) capacitor is more desirable than the mitigation of the SHC. This approach can reduce the SM capacitor size and improve the system power density. A second-harmonic injection strategy is proposed for an ESS interface converter, specifically aiming to reduce the SHV of the SM capacitor while maintaining the SHC’s magnitude on the SC side. The characteristics of the SHV and SHC are analyzed across the operating points of the ESS interface converter. Based on this analysis, it is verified that the proposed strategy can reduce the capacitor size by up to 40% while maintaining the SHV and SHC magnitudes. The effectiveness is experimentally validated in a controller-hardware-in-the-loop (C-HIL) environment using a 20 [kW] delta-connected MMC-SESS and a 5 [kW] single SM prototype.
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SunView 深度解读

该MMC-SESS二次谐波注入策略研究对阳光电源储能系统优化有重要参考价值。减小SM电容40%同时保持性能的技术成果与阳光PowerTitan储能系统的高功率密度和成本优化目标高度契合。超级电容SC对SHC不敏感特性的利用可应用于阳光ST系列储能变流器的混合储能方案设计,在快速功率响应场景中发挥SC优势。MMC拓扑的模块化和可扩展性符合阳光电源大容量地面储能电站的技术路线。该研究对阳光电源优化储能变流器设计、降低系统体积重量和成本、提高电网侧储能系统的商业竞争力有实用价值。