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Decomposed Newton algorithm-based three-phase power-flow for unbalanced radial distribution networks with distributed energy resources and electric vehicle demands

机译:基于分解牛顿算法的三相潮流,用于具有分布式能源和电动汽车需求的不平衡径向配电网

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This paper proposes a three-phase power-flow algorithm using graph theory, injected current, and matrix decomposition techniques for unbalanced radial distribution networks. A decomposed Newton-Raphson (DNR) method is applied to solve the set of nonlinear power equations described in polar form. Unlike conventional Newton-Raphson-based methods, the proposed DNR algorithm does not involve calculating the lower and upper triangular matrix (LU) factorization, Gaussian elimination, and inversion of the full bus admittance matrix or Jacobian matrix and building the bus impedance matrix; it also requires less computation time and has high robustness with respect to the X/R ratio and load changes. The mathematical component models, such as threephase conductors, transformers, automatic voltage regulators (AVRs), ZIP load demands, shunt capacitors/reactors, inverter-based distributed energy resources (DERs) and electric vehicle (EV) demands can easily be integrated into the proposed algorithm by using the injected current technique. Therefore, a three-phase power flow problem can be decomposed into three single-phase power-flow problems with individual phase representation. To validate the performance and effectiveness of the proposed algorithm, four three-phase IEEE test systems and a practical Taiwan Power Company (Taipower) distribution system are used for comparisons. The results reveal that the proposed algorithm has good potential for improving the computational efficiency of optimal planning and design and also real-time power dispatch applications, even for ill-conditioned distribution networks.
机译:本文提出了一种基于图论,注入电流和矩阵分解技术的不平衡径向配电网三相潮流算法。分解牛顿-拉夫森(DNR)方法用于求解以极坐标形式描述的非线性功率方程组。与传统的基于Newton-Raphson的方法不同,所提出的DNR算法不涉及计算上下三角矩阵(LU)分解,高斯消除,全总线导纳矩阵或Jacobian矩阵的求逆以及构建总线阻抗矩阵;它还需要更少的计算时间,并且在X / R比和负载变化方面具有很高的鲁棒性。数学组件模型(例如三相导体,变压器,自动电压调节器(AVR),ZIP负载需求,并联电容器/电抗器,基于逆变器的分布式能源(DER)和电动汽车(EV)需求)可以轻松集成到注入电流技术提出的算法。因此,可以将三相潮流问题分解为具有单个相表示的三个单相潮流问题。为了验证该算法的性能和有效性,使用了四个三相IEEE测试系统和一个实用的台湾电力公司(Taipower)配电系统进行比较。结果表明,所提出的算法即使在病态配电网中,也具有提高优化规划和设计的计算效率以及实时电力分配应用的良好潜力。

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