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Grid-connected photovoltaic inverters with low-voltage ride through for a residential-scale system: A review

机译:电网连接的光伏逆变器,带低电压乘坐,用于住宅级系统:综述

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Background Recent advancements in solar power generation technology have paved the way for a vast number of photovoltaic (PV) systems integration into the grid network. The global installed capacity of rooftop PV systems has already surpassed a 50 GW mark in 2020, while the total installed capacity of all types of PV systems is reaching beyond 500 GW. The influx of distributed PV-generators must be equipped with sophisticated control to ensure grid stability, especially during grid faults. A devastating grid outage may occur if the grid-tied PV inverters are not equipped with the "fault-ride-through" mechanism. Many countries have already enforced a mandatory grid code which includes a low-voltage-ride through requirements for PV-generators. Aim and Objective This paper reviews the design of a rooftop PV inverters in the light of low-voltage-ride-through requirements. Materials and Methods For the implementation of low-voltage-ride-through (LVRT), the design of low-voltage-sag detection, grid-synchronization, filter-selection, and power-controllers are examined through simulations and literature survey. LVRT implementation issues are highlighted with an emphasis on the current controller performance during grid sags. Results and Discussion From the review and analysis conducted in this study, this paper concludes that ensuring a stable DC-link and appropriate control-reference-signals during the grid faults are the keys to the LVRT implementation. Conclusion In addition to robust power control, an autonomous PV generator should promptly detect the grid conditions and fulfils the ancillary services like LVRT, anti-islanding and flicker compensation. The recommendations and the future trends in the LVRT research conclude the review article.
机译:背景技术太阳能发电技术的最新进步已经为广大光伏(PV)系统集成到网格网络中的广泛发展方向铺平了道路。 2020年,全球屋顶PV系统的装机容量已经超过了50 GW标志,而所有类型的PV系统的总装机容量达到超过500 GW。分布式PV发生器的涌入必须配备精密的控制,以确保电网稳定性,特别是在网格故障期间。如果网格绑定的PV逆变器不配备“故障乘车”机制,则可能会发生毁灭的网格中断。许多国家已经强制执行强制网格代码,该代码包括低电压频率,通过PV发生器的要求。目的和客观本文审查了屋顶PV逆变器的设计鉴于低电压乘车需求。通过模拟和文献调查检查了低压乘飞机(LVRT)的材料和方法,设计了低压-SAG检测,电网同步,滤波器选择和功率控制器的设计。 LVRT实现问题突出显示,强调网格凹陷期间的当前控制器性能。结果与讨论从本研究中进行的审查和分析,本文得出结论,确保在网格故障期间确保稳定的DC-Link和适当的控制参考信号是LVRT实现的键。结论除了强大的功率控制之外,自主PV发生器还应及时检测电网条件,并满足LVRT,反岛屿和闪烁补偿等辅助服务。 LVRT研究的建议和未来趋势得出了审查文章。

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