A Proposed Approach to Fault Current Calculation for Microgrid Considering the Uncertainties of Fault and Distribution Generations Locations

Mahmoud Aref, V. Oboskalov
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Abstract

Fault current calculations inside a grid-connected and isolated AC microgrid is one of the major challenges due to the fault current contributions of inverter-based distributed generators units, which are different in location and inverter control during the fault. Therefore, this paper is aimed at calculating fault current for grid-connected and isolated microgrids using two methods; virtual impedance and the proposed method. The proposed method is used to calculate the short circuit current contribution of DG is controlled to analyze the equivalent model of inverter-based DG. The inverter control limits its current to 2p.u of the inverter rating. The proposed algorithm is tested on a standard IEEE 33-bus distribution network with 5 DGs using MATLAB code programs. The results show that the impact of q DG on the fault current is significant especially when faults occur at busses near to the DG location. The fault current value, calculated using the proposed method, is less than its value calculating by the virtual impedance method by more than 30% for grid-connected microgrid and by approximately 50% for the isolated microgrid.
一种考虑故障和分布世代位置不确定性的微电网故障电流计算方法
由于基于逆变器的分布式发电机组在故障期间的位置和逆变器控制不同,故障电流的贡献很大,因此,并网隔离交流微电网内部的故障电流计算成为主要挑战之一。因此,本文旨在采用两种方法计算并网微电网和隔离微电网的故障电流;虚拟阻抗及其提出的方法。利用所提出的方法计算DG的短路电流贡献,并对逆变器DG的等效模型进行了分析。逆变器控制将其电流限制在2p。U为逆变器额定功率。该算法在一个标准的IEEE 33总线5 dg配电网上使用MATLAB代码程序进行了测试。结果表明,当故障发生在靠近DG位置的母线时,q DG对故障电流的影响较大。采用该方法计算的故障电流值在并网微电网中比虚拟阻抗法计算的故障电流值小30%以上,在孤立微电网中比虚拟阻抗法计算的故障电流值小50%左右。
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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