住宅太阳能和电动汽车的电兼容性的粘接和接地方法

D. Moongilan
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摘要

住宅光伏(PV)板通常安装在屋顶,其配套的DC/AC逆变器要么配置在建筑物内,要么安装在建筑物内。光伏板和相关的DC/AC逆变器金属外壳必须相互连接,并根据NEC690.41-64接地电极接地。在外壳和它与地面的连接之间存在很小的电位差。光伏系统插框与接地线之间的电位差、逆变器插框与接地线之间的电位差极性相反。同样,电动汽车(EV)控制框及其接地互连,电池及其接地互连也是相反的极性。这一观察结果可以推广到任何发电机和负载并联的直流电力系统。由于互联电位差和原电电压要么极性相反,要么极性相同,传统的原电兼容规则不能适用于发电机和负载机箱,其中直流供电电路的一侧故意连接到源和负载机箱的接地。这是因为相对于相似(相同)极性的条件,极性相反的条件下发生的腐蚀性损伤要小得多。本文讨论了光伏板和电动汽车接地的电流兼容性问题,同时利用电化学和电路理论提供了解决这一挑战的解决方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Residential solar and electric vehicle bonding and grounding methods for galvanic compatibility
Residential Photovoltaic (PV) panels are typically roof-top mounted and their accompanying DC/AC inverters are either collocated or installed inside the building. The PV panels and associated DC/AC inverter metal enclosures must be interconnected and grounded to a grounding-electrode according to NEC690.41-64. A small potential difference exists between the enclosure and its interconnection to the ground. The potential differences between a PV system enclosure and its ground wire, as well as, the potential differences between the inverter enclosure and its ground wire are at opposite polarities. Likewise, an Electric Vehicle (EV) controller enclosure and its ground interconnection, and a battery and its ground interconnection are also at opposite polarities. This observation can be generalized to any collocated generator and load DC power system. Since the interconnection potential difference and galvanic voltage are either at opposite or same polarities, the traditional galvanic compatibility rules can't be applied to the generator and load enclosures, where one side of the DC supply circuit is intentionally connected to earth ground at the source and load enclosures. This is because significantly less corrosive damage occurs under conditions of opposite polarity versus conditions of like (same) polarity. This article discusses galvanic compatibility issues of PV panels and EV groundings while providing a solution for this challenge using electrochemistry and electric circuit theory.
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