无模式转换并网逆变器通用无源同步方法

Heather Chang, Nathan Baeckeland, Abhishek Banerjee, Gab-Su Seo
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引用次数: 1

摘要

随着基于逆变器的资源(IBRs)水平的提高,电力系统正在进行转型。这种转变需要电网形成(GFM)逆变器的关键作用,以取代同步发电机,用于大容量电力系统稳定和辅助服务,同时也允许灵活的电力系统运行,例如由多个GFM ibr运行的微电网,以实现系统对突发事件的弹性。为了实现具有不同主控制器的GFM ibr灵活进出的弹性电力系统,一种普遍适用的,即独立于控制类型的同步方法将有助于简化集成过程,但目前还没有积极的研究。为了填补这一空白,本文提出了一种通用同步方法,实现无源同步,使电网在非标称系统参数(即电压和频率)下平稳过渡。所提出的逻辑不需要对主控制进行修改,因此适用于具有参考电压输入的任何类型的GFMs。为了验证这一概念,给出了一个用3个GFM逆变器修改的IEEE 13总线基准系统的仿真。模拟了一种逆变器驱动的黑启动场景,其中GFM逆变器在高负荷下使用同步逻辑自动接通并网。案例研究表明,GFM逆变器可以调整其参考电压以平滑同步,而不会产生严重的瞬变,并有助于在不平衡负载条件下实现电网的无缝黑启动。采用下垂和可调度虚拟振荡器控制两种GFM方法进行了演示,验证了被动同步的可行性和互操作性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Universal Passive Synchronization Method for Grid-Forming Inverters Without Mode Transition
Power systems are transforming with increasing levels of inverter-based resources (IBRs). This transformation requires critical roles of grid-forming (GFM) inverters replacing synchronous generators for bulk power system stabilization and ancillary services, also allowing flexible power system operation, such as microgrid that is operated by multiple GFM IBRs to achieve system resilience against contingencies. To realize the resilient power systems allowing flexible in-and-out operation of GFM IBRs potentially programmed with different primary controls, a synchronization method universally applicable, i.e., independent of control types, would be beneficial to ease the integration process, but it has not been actively studied. To fill the gap, this paper proposes a universal synchronization method that achieves a passive synchronization to enable a smooth transition in a grid with off-nominal system parameters, i.e., voltage and frequency. The logic proposed requires no modification on the primary control, thus applicable to any type of GFMs with a voltage reference input. To validate the concept, a simulation of an IEEE 13-bus benchmark system modified with 3 GFM inverters is presented. It simulates an inverter-driven black start scenario in which GFM inverters autonomously turn on and connect to the grid under heavy loading, using the synchronization logic. The case study demonstrates that GFM inverters can tune their voltage reference to smoothly synchronize without severe transients, and contribute to a seamless black start of the grid under unbalanced load conditions. Two GFM methods—Droop and dispatchable virtual oscillator control—are used for the demo to validate feasibility and interoperability of the passive synchronization.
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