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Topology identification for multiple-bus DC MicroGrids via primary control perturbations

机译:通过主控制扰动识别多总线DC MicroGrid的拓扑

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摘要

We propose a Least Squares Estimation procedure for estimating the admittance matrix of multi-bus DC MicroGrids (MGs). In the proposed solution, the generators simultaneously inject training signals in the form of small deterministic perturbations of the primary droop control parameters and measure the related steady state deviations of the bus voltage. When the training signals meet sufficient excitation conditions seen in the number of injected perturbations, the admittance matrix can be uniquely identified. The measurements are collected and processed by a topology identification and monitoring system that produces unbiased estimate of the admittance matrix. The numerical evaluations show that the estimator can recover the admittance matrix of the MG with very high precision, proving its practical viability.
机译:我们提出了最小二乘估计程序,用于估计多总线DC MicroGrids(MG)的导纳矩阵。在提出的解决方案中,发电机同时以主要下垂控制参数的小确定性扰动形式注入训练信号,并测量母线电压的相关稳态偏差。当训练信号满足在注入扰动数量中看到的足够的激励条件时,可以唯一地识别导纳矩阵。拓扑识别和监视系统收集并处理测量值,该系统会生成导纳矩阵的无偏估计。数值评估表明,估计器可以非常高精度地恢复MG的导纳矩阵,证明了其实际可行性。

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