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A generalized descriptor-system robust H-infinity control of autonomous microgrids to improve small and large signal stability considering communication delays and load nonlinearities

机译:考虑通信延迟和负载非线性的广义描述符系统鲁棒H无限自治自治微电网控制,以改善大小信号的稳定性

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This paper presents a descriptor system H-infinity approach to enhance performance of robust Hos controller and previously-reported decentralized robust servo-mechanism (DRSM) control scheme for autonomous voltage sourced converter (VSC)-based microgrids including multiple distributed energy resources (DERs). The power management system specifies voltage set points for local controllers and the frequency of each DER unit is specified by a hierarchical droop-based control structure. A descriptor system liso robust controller is designed based on a closed-loop representation of microgrid either with H-infinity or DRSM controller for set point tracking, disturbance rejection and improving performance of microgrid for small/large-signal disturbances and nonlinear loads. Here, unlike some of the previous researches, the load current is modeled as disturbance and also communication time-delay is considered. The theoretical concepts of proposed control strategy, including mathematical modeling of microgrid, basic theorems, and design procedure are outlines. Then, design problem is formulated by a set of linear/bilinear matrix inequalities and then solved using a new iterative algorithm in the form of convex optimization problem. To demonstrate effectiveness of the proposed control scheme, offline time-domain simulation studies are performed on a multi-DER microgrid in MATLAB/Simulink environment and also the results are experimentally verified by OPAL-RT real time digital simulator. (C) 2017 Published by Elsevier Ltd.
机译:本文提出了一种描述符系统H-infinity方法,以增强鲁棒Hos控制器的性能以及先前针对基于自治电压源转换器(VSC)的微电网(包括多个分布式能源(DER))的分布式鲁棒伺服机械控制(DRSM)控制方案。电源管理系统为本地控制器指定电压设置点,每个DER单元的频率由基于下垂的分层控制结构指定。基于具有H-infinity或DRSM控制器的微电网的闭环表示,设计了一种描述符系统Liso鲁棒控制器,用于设定点跟踪,扰动抑制以及针对小/大信号扰动和非线性负载的微电网性能改进。在这里,与某些先前的研究不同,负载电流被建模为干扰,并且还考虑了通信时延。概述了所提出的控制策略的理论概念,包括微电网的数学建模,基本定理和设计程序。然后,由一组线性/双线性矩阵不等式来表示设计问题,然后以凸优化问题的形式使用新的迭代算法进行求解。为了证明所提出的控制方案的有效性,在MATLAB / Simulink环境中的多DER微电网上进行了离线时域仿真研究,并通过OPAL-RT实时数字仿真器对结果进行了实验验证。 (C)2017由Elsevier Ltd.发布

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