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New modeling approach of secondary control layer for autonomous single-phase microgrids

机译:自主单相微电网二次控制层建模的新方法

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In a microgrid (MG) topology, the secondary control is introduced to compensate for the voltage amplitude and frequency deviations, mainly caused by the inherent characteristics of the droop control strategy. This paper proposes an accurate approach to derive small signal models of the frequency and amplitude voltage at the point of common coupling (PCC) of a single-phase MG by analyzing the dynamics of the second-order generalized integrator-based frequency-locked loop (SOGI-FLL). The frequency estimate model is then introduced in the frequency restoration control loop, while the derived model of the amplitude estimate is introduced for the voltage restoration loop. Based on the obtained models, the MG stability analysis and proposed controllers' parameters tuning are carried out. Also, this study includes the modeling and design of the synchronization control loop that enables a seamless transition from island mode to grid-connected mode operation. Simulation and practical experiments of a hierarchical control scheme, including traditional droop control and the proposed secondary control for two single-phase parallel inverters, are implemented to confirm the effectiveness and the robustness of the proposal under different operating conditions. The obtained results validate the proposed modeling approach to provide the expected transient response and disturbance rejection in the MG. Crown Copyright (C) 2019 Published by Elsevier Ltd on behalf of The Franklin Institute. All rights reserved.
机译:在微电网(MG)拓扑中,引入了次级控制来补偿电压幅度和频率偏差,这主要是由下垂控制策略的固有特性引起的。本文通过分析基于二阶广义积分器的锁频环的动力学,提出了一种精确的方法来导出单相MG的公共耦合点(PCC)处的频率和幅度电压的小信号模型( SOGI-FLL)。然后将频率估计模型引入到频率恢复控制环路中,同时将导出的幅度估计模型引入到电压恢复环路中。基于所获得的模型,进行了MG稳定性分析和所提出的控制器参数整定。此外,该研究还包括同步控制回路的建模和设计,该回路可实现从孤岛模式到并网模式的无缝过渡。进行了分层控制方案的仿真和实际实验,包括传统的下垂控制和为两个单相并联逆变器提议的次级控制,以确认该方案在不同工作条件下的有效性和鲁棒性。获得的结果验证了所提出的建模方法,以在MG中提供预期的瞬态响应和干扰抑制。 Crown版权(C)2019由Elsevier Ltd代表富兰克林研究院出版。版权所有。

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