Investigation of ground-fault protection devices for photovoltaic power system applications

Ward Bower, J. Wiles
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引用次数: 38

Abstract

Photovoltaic (PV) power systems, like other electrical systems, may be subject to unexpected ground faults. Installed PV systems always have invisible elements other than those indicated by their electrical schematics. Stray inductance, capacitance and resistance are distributed throughout the system. Leakage currents associated with the PV modules, the interconnected array, wires, surge protection devices and conduit add up and can become large enough to look like a ground-fault. PV systems are frequently connected to other sources of power or energy storage such as batteries, standby generators, and the utility grid. This complex arrangement of distributed power and energy sources, distributed impedance and proximity to other sources of power requires sensing of ground faults and proper reaction by the ground-fault protection devices. The different DC grounding requirements (country to country) often add more confusion to the situation. This paper discusses the ground-fault issues associated with both the DC and AC side of PV systems and presents test results and operational impacts of backfeeding commercially available AC ground-fault protection devices under various modes of operation. Further, the measured effects of backfeeding the tripped ground-fault devices for periods of time comparable to anti-islanding allowances for utility interconnection of PV inverters in the United States are reported.
光伏发电系统接地故障保护装置研究
光伏(PV)电力系统,像其他电力系统一样,可能会受到意外接地故障的影响。安装的光伏系统总是有不可见的元素,而不是电气原理图所示的那些。杂散电感、电容和电阻分布在整个系统中。与光伏组件、互连阵列、电线、浪涌保护装置和导管相关的泄漏电流加起来,可能变得足够大,看起来像一个接地故障。光伏系统经常连接到其他电源或能量存储源,如电池、备用发电机和公用事业电网。这种复杂的分布式电源和能量、分布式阻抗和与其他电源的接近性要求接地故障检测和接地故障保护装置的适当反应。不同的直流接地要求(国家与国家)往往会增加更多的混乱情况。本文讨论了与光伏系统直流侧和交流侧相关的接地故障问题,并介绍了各种运行模式下反馈市售交流接地故障保护装置的测试结果和运行影响。此外,报告了反馈跳闸接地故障装置的测量效果,其时间可与美国光伏逆变器公用事业互联的抗孤岛补贴相媲美。
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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