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A Three-Phase Weather-Dependent Power Flow Approach for 4-Wire Multi-Grounded Unbalanced Microgrids With Bare Overhead Conductors

机译:具有裸露顶部导线的4线多接地不平衡微电网的三相天气依赖性电力流动方法

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Conventional power flow algorithms assume that the network resistances and reactances remain constant regardless of the weather and loading conditions. Although the impact of the weather in power flow analysis has been recently investigated via weather-dependent power flow (WDPF) approaches, the magnetic effects in the core of Aluminum Conductor Steel Reinforced (ACSR) conductors have not been explicitly considered. ACSR conductors are widely used in distribution networks. Therefore, this manuscript proposes a three-phase weather-dependent power flow algorithm for 4-wire multi-grounded unbalanced microgrids (MGs), which takes into consideration the impact of weather as well as the magnetic effects in the core of ACSR conductors. It is shown that the magnetic effects in the core can significantly influence the power flow results, especially for networks composed of single-layer ACSR conductors. Furthermore, the proposed algorithm explicitly considers the multi-grounded neutral conductor, thus it can precisely simulate unbalanced low voltage (LV) and medium voltage (MV) networks. In addition, the proposed approach is generic and can be applied in both grid-connected and islanded networks. Simulations conducted in a 25-Bus unbalanced LV microgrid (MG) highlight the accuracy and benefit of the proposed approach, while its computation performance is tested in the IEEE 8500-Node network.
机译:传统的电流算法假设网络电阻和抵抗不管天气和装载条件如何保持恒定。尽管最近通过天气依赖性功率流动(WDPF)方法来调查了天气的影响,但是铝导体钢芯(ACSR)导体的磁效尚未明确考虑。 ACSR导体广泛用于配送网络。因此,该稿件提出了一种用于4线多接地不平衡微电网(MGS)的三相天气依赖性功率流算法,这考虑了ACSR导体的核心的影响以及磁效应。结果表明,核心中的磁效应可以显着影响功率流量结果,特别是对于由单层ACSR导体组成的网络。此外,所提出的算法明确地考虑了多接地的中性导体,因此可以精确地模拟不平衡的低电压(LV)和中压(MV)网络。此外,所提出的方法是通用的,可以应用于网格连接和孤岛网络。在25总线不平衡LV微电网(MG)中进行的模拟突出了所提出的方法的准确性和优势,而其在IEEE 8500节点网络中测试其计算性能。

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