孤岛微电网遗留过流保护的高短路故障电流贡献逆变器设计

Maximiliano F. Ferrari, L. Tolbert
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引用次数: 3

摘要

如果微电网在其边界内发生短路故障时没有得到适当的保护,微电网所提供的弹性可能会丧失。许多研究表明,由于分布式能源(DERs)的短路能力有限,孤岛模式下的微电网保护非常具有挑战性。DERs有限的短路能力通常限制了在微电网中使用可靠和负担得起的过流保护装置。尽管文献中对微电网保护进行了广泛的研究,但迄今为止,这项研究还没有产生一种具有成本效益的、商业上可用的继电器,可以有效地解决微电网保护的挑战。这项工作提出了硬件修改,以增强储能逆变器的电流贡献,目标是能够在孤岛微电网中使用传统的过流保护。实验结果表明,只需对逆变器进行少量修改,即可显著提高逆变器的电流贡献。在本研究中,对三相储能逆变器进行了改进,使其在三相故障时提供三倍于其额定电流,从而证明有足够的电流在足够的时间内实现熔断器-继电器和继电器-继电器协调。所提出的修改有效地增加了逆变器的电流贡献,这是一个有前途的进步,允许采用过流保护装置来保护微电网。
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Inverter Design with High Short-Circuit Fault Current Contribution to Enable Legacy Overcurrent Protection for Islanded Microgrids
The resiliency offered by a microgrid may be lost if the microgrid is not properly protected during short-circuit faults inside its boundaries. Many studies conclude that protecting microgrids in islanded mode is very challenging due to the limited short-circuit capability of distributed energy resources (DERs). The limited short-circuit capability of DERs typically inhibits the use of reliable and affordable overcurrent protective devices in microgrids. Although extensive research on microgrid protection is available in the literature, to date this research has not led to a cost-effective, commercially available relay that effectively tackles the challenges of microgrid protection. This work proposes hardware modifications to enhance the current contribution of an energy storage inverter with the objective of enabling the use of legacy overcurrent protection for islanded microgrids. This paper demonstrates through experimental results that few modifications are required in the inverter to significantly enhance its current contribution. In this study, a three-phase energy storage inverter was modified to provide three times its rated current during three-phase faults, which proved sufficient current for enough time to enable fuse-relay, and relay-to-relay coordination. The proposed modifications effectively increase the current contribution of the inverter, which is a promising advancement to allow the adoption of overcurrent protective devices for protecting microgrids.
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