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An Improved Load Flow Method for MV Networks Based on LV Load Measurements and Estimations

机译:一种基于低压负荷测量和估计的改进的MV网络潮流算法

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摘要

A novel measurement approach for power-flow analysis in medium-voltage (MV) networks, based on load power measurements at low-voltage level in each secondary substation (SS) and only one voltage measurement at the MV level at primary substation busbars, was proposed by the authors in previous works. In this paper, the method is improved to cover the case of temporary unavailability of load power measurements in some SSs. In particular, a new load power estimation method based on artificial neural networks (ANNs) is proposed. The method uses historical data to train the ANNs and the real-time available measurements to obtain the load estimations. The load-flow algorithm is applied with the estimated load powers, and the MV network state variables are obtained. The proposed method is validated for the real MV distribution network of the island of Ustica. The loads of selected SSs are estimated for two full days of different seasons. In comparison with previous works, satisfactory results are obtained in terms of uncertainty in the calculated power flows, thus suggesting the applicability of the proposed method for real-time monitoring of MV distribution networks.
机译:一种用于中压(MV)网络中功率流分析的新颖测量方法,该方法基于每个次级变电站(SS)低压水平的负载功率测量,并且仅一次变电站母线的MV水平电压测量。由作者在以前的作品中提出。在本文中,对该方法进行了改进,以涵盖某些SS中暂时无法使用负载功率测量的情况。特别提出了一种新的基于人工神经网络的负荷功率估计方法。该方法使用历史数据来训练ANN,并使用实时可用的测量值来获得负荷估算值。将潮流算法与估计的负载功率一起应用,并获得MV网络状态变量。所提出的方法在Ustica岛的实际中压配电网中得到了验证。在不同季节的两整天内,估算所选SS的负荷。与以前的工作相比,就计算出的功率流的不确定性而言,获得了令人满意的结果,从而表明了所提出的方法在中压配电网实时监测中的适用性。

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