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IoT-based data-driven fault allocation in microgrids using advanced μPMUs

机译:基于IOT的数据驱动故障在MicroGrids中使用先进的μpmus

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The ameliorations in high-precision phasor measurement units (mu PMUs) and synchrophasor units have accommodated the distribution grid with peculiar visibility. Therefore, investigating the challenges of uncertainty consideration on precise fault detection in microgrids has become a new research milestone. This paper presents an effective data-driven stochastic method that justifies the adoption of only two mu PMUs that are communicating under an IoT-based umbrella to detect and allocate irregularities in a microgrid. The proposed method has the ability to operate under a variety of case studies and scenarios including but not limited to the capacitor bank switching, distributed energy resources (DERs) diversity and high impedance fault occurrence, whilst considering the uncertainty in load, without installing individual sensors. Furthermore, a two-point estimate approach is utilized to model the uncertainties of the problem. Not only does the proposed stochastic framework benefit from the voltage magnitude measurement, but it also utilizes its angle in event allocation, which manifests better performance compared to ordinary voltage and current sensors. The simulation results on the proposed microgrid indicate the high accuracy and a sound success is obtained under a variety of case studies. The results show the high accuracy and applicable aspect of the proposed data-driven approach for fault allocation using a few mu PMUs in the IoT context.
机译:高精度相量测量单元(MU PMU)和同步素单位的改进已经容纳了具有特殊能见度的分配网格。因此,调查微电网中精确故障检测的不确定性考虑的挑战已成为新的研究里程碑。本文介绍了一种有效的数据驱动随机方法,证明仅在基于物联网的伞下进行通信的两个MU PMU,以检测和分配微电网中的不规则性。所提出的方法具有在包括但不限于电容器组切换,分布能源资源(DERs)分集和高阻抗断层的情况下运行的能力,同时考虑负载中的不确定性,而不安装单个传感器。此外,使用两点估计方法来模拟问题的不确定性。不仅提出的随机框架是否有利于电压幅度测量,而且它还利用其在事件分配中的角度,与普通电压和电流传感器相比表现出更好的性能。所提出的微电网上的仿真结果表明,在各种案例研究中获得了高精度和声音成功。结果表明,在IOT上下文中使用几MU PMU的少数MU PMU的故障分配方法的高精度和适用方面。

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