孙孝峰, 刘鑫磊, 滕甲训, 张㼆, 赵巍, 李昕. 基于光储混合配置的级联H桥型光伏逆变器功率平衡策略[J]. 中国电机工程学报, 2024, 44(5): 1948-1961. DOI: 10.13334/j.0258-8013.pcsee.223461
引用本文: 孙孝峰, 刘鑫磊, 滕甲训, 张㼆, 赵巍, 李昕. 基于光储混合配置的级联H桥型光伏逆变器功率平衡策略[J]. 中国电机工程学报, 2024, 44(5): 1948-1961. DOI: 10.13334/j.0258-8013.pcsee.223461
SUN Xiaofeng, LIU Xinlei, TENG Jiaxun, ZHANG Ying, ZHAO Wei, LI Xin. Power Balance Strategy of Cascaded H-bridge Photovoltaic Inverter Based on Hybrid Configuration of Photovoltaic and Energy Storage[J]. Proceedings of the CSEE, 2024, 44(5): 1948-1961. DOI: 10.13334/j.0258-8013.pcsee.223461
Citation: SUN Xiaofeng, LIU Xinlei, TENG Jiaxun, ZHANG Ying, ZHAO Wei, LI Xin. Power Balance Strategy of Cascaded H-bridge Photovoltaic Inverter Based on Hybrid Configuration of Photovoltaic and Energy Storage[J]. Proceedings of the CSEE, 2024, 44(5): 1948-1961. DOI: 10.13334/j.0258-8013.pcsee.223461

基于光储混合配置的级联H桥型光伏逆变器功率平衡策略

Power Balance Strategy of Cascaded H-bridge Photovoltaic Inverter Based on Hybrid Configuration of Photovoltaic and Energy Storage

  • 摘要: 级联H桥(cascade H-bridge,CHB)变换器由于其模块化结构,已成为大规模光伏(photovoltaic,PV)并网逆变器的优选方案。然而,在不同光照强度和温度下,不同区域PV组件之间发电功率不同,导致CHB变换器相间输出功率不均衡、不稳定等问题。为此,文中提出一种基于CHB结构的光储混合电能路由,在三相CHB光伏逆变器中配置少量的储能模块,利用光储协同控制,维持CHB内部功率稳定,消除分布式PV在相间产生的不均衡功率,且变换器输出功率能够时刻满足网侧上层功率调度,提高了光伏电站的稳定性。针对系统安全区域,在载波移相调制策略下,全桥子模块传输的功率受到约束,并对光伏和储能模块的配置作详细分析。最后,通过仿真以及实验验证所提拓扑及控制策略的正确性和有效性。

     

    Abstract: The cascade H-bridge (CHB) converter has become the preferred solution for large-scale photovoltaic (PV) grid-connected inverters due to its modular design. However, under different light intensities and temperatures, the power generated by PV modules in different areas varies, resulting in uneven and unstable output power between phases of the CHB converter. To this end, this paper proposes a hybrid power routing based on the CHB structure with a small amount of energy storage modules in the three-phase CHB PV inverter, which uses collaborative optical storage control to maintain stable power within the CHB, eliminating the unbalanced power generated by distributed PV between phases. And the converter output power can always meet the upper power dispatch on the grid side, improving the stability of the PV system. For the system safety region, the power transmitted by the full-bridge sub-module is limited under the carrier phase-shift modulation strategy, and the configuration of the PV and storage modules is analyzed in detail. Finally, the correctness and effectiveness of the proposed topology and control strategy are verified through simulations and experiments.

     

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