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Multivariable Droop Control of Synchronous Current Converters in Weak Grids/Microgrids With Decoupled dq-Axes Currents

机译: dq -轴电流解耦的弱电网/微电网中同步电流转换器的多变量下垂控制

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Weak grids/microgrids are gaining considerable attention due to the installation of renewable power generation resources in areas that are remote from load centers. This paper presents a multivariable-droop synchronous current converter control strategy for current management of weak grid/microgrid applications, and offers a systematic and straight-forward design approach using the loop shaping technique. The controller integrates current regulation, management, and limitation that are applicable to weak grids and microgrids (MGs). The multivariable synchronous current converter enables superior decoupling of - and -axis currents in weak grids and/or resistive grids where these control variables are highly coupled due to converter operation at large load-angles. Therefore, stable connection of weak (high impedance) resistive MGs to utility grids is feasible. The multivariable droop concept also realizes real power sharing by simultaneous drooping of both frequency and voltage amplitude, which enhances load sharing accuracy in resistive and/or weak grids. Similar to its predecessor, synchronous converters, the controller can eliminate phase-locked loop (PLL) and provides a unified controller, PLL, and load manager in one simple control methodology. This can facilitate grid auto-synchronization, which can improve the stability of voltage source converters in weak grid applications. Also, the controller can participate in the power system frequency, and voltage regulation and control. To evaluate the performance of the controller, several simulations are conducted under various typical scenarios and conditions.
机译:由于在远离负载中心的区域中安装了可再生发电资源,因此脆弱的电网/微电网得到了极大的关注。本文提出了一种用于弱电网/微电网应用中电流管理的多变量同步同步电流转换器控制策略,并提供了一种使用环路整形技术的系统化,直接设计方法。该控制器集成了适用于弱电网和微电网(MG)的当前法规,管理和限制。多变量同步电流转换器可实现弱电网和/或电阻电网中的轴向电流和轴向电流的出色去耦,在这些电网中,这些控制变量由于转换器在大负载角下的运行而高度耦合。因此,将弱(高阻抗)电阻MG稳定连接到公用电网是可行的。多变量下垂概念还通过同时下垂频率和电压幅度来实现有功功率共享,从而提高了电阻和/或弱电网中的负载共享精度。与其前身同步转换器相似,该控制器可以消除锁相环(PLL),并以一种简单的控制方法提供统一的控制器,PLL和负载管理器。这可以促进电网自动同步,从而可以改善弱电网应用中电压源转换器的稳定性。而且,控制器可以参与电力系统的频率以及电压的调节和控制。为了评估控制器的性能,在各种典型场景和条件下进行了几次仿真。

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