Establishment of Low Voltage Ride-Through Curves and Stability Analysis with High Photovoltaic Penetration in Power Systems

Ming-Tse Kuo
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Abstract

In this study, a low voltage ride-through (LVRT) curve was produced to facilitate stable operation of solar power systems when connected to electric grids in an extensive scale. The procedure for establishing a LVRT curve was as follows: The power flow was first simulated, after which various three-phase short-circuit fault cases were simulated to perform steady-state and transient stability analyses. After the lowest voltage, critical clearing time, and other factors were identified, a LVRT curve was established for a solar power system to better accommodate regional demands, reduce the probability of solar power system tripping caused by system failures, and maintaining stability. To ensure that the parameters used in this study complied with relevant energy policies, the IEEE 39 Bus power system was used as the electric grid and verifications performed using actual Taiwan Power Company systems. The Taiwan Power Company's 2025 data were used with peak and off-peak systems operating during the summer and winter, respectively. The solar power systems were connected to electric grids in central and southern Taiwan, and regulations stipulated in the guidelines were referenced for subsequent analyses. Whether results satisfied related power regulations could thereby be determined. A LVRT curve was established based on the real power, reactive power, voltage, and system rotational angles measured during system failures. The simulation results showed that no solar power system tripping occurred, and system stability was maintained. The LVRT curve proposed in this study can be referenced by countries worldwide for the establishment of LVRT curve.
高光伏渗透下电力系统低压穿越曲线的建立及稳定性分析
在本研究中,为了促进太阳能发电系统在大规模接入电网时的稳定运行,产生了低电压穿越(LVRT)曲线。建立LVRT曲线的步骤如下:首先模拟潮流,然后模拟各种三相短路故障情况,进行稳态和暂态稳定分析。在确定最低电压、临界清场时间等因素后,建立太阳能发电系统的LVRT曲线,以更好地适应区域需求,降低系统故障导致太阳能发电系统跳闸的概率,保持稳定。为确保本研究使用的参数符合相关能源政策,本研究使用IEEE 39 Bus电力系统作为电网,并使用台湾电力公司的实际系统进行验证。台湾电力公司2025年的数据分别与夏季和冬季的高峰和非高峰系统一起使用。太阳能发电系统连接到台湾中部和南部的电网,并参考指导方针中规定的法规进行后续分析。从而确定结果是否符合相关的权力规定。根据系统故障时实测的实功率、无功功率、电压和系统转角,建立LVRT曲线。仿真结果表明,系统没有发生跳闸,保持了系统的稳定性。本研究提出的LVRT曲线可供世界各国建立LVRT曲线参考。
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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