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Comparison between Synthetic Inertia and Fast Frequency Containment Control Based on Single Phase EVs in a Microgrid

机译:基于单相电动机的微电网合成惯量与快速遏制控制的比较

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摘要

The increasing share of distributed and inertia-less resources entails an upsurge in balancing and system stabilisation services. In particular, the displacement of conventional generation reduces the available rotational inertia in the power system, leading to high interest in synthetic inertia solutions. The objective of this paper is twofold: first, it aims to implement and validate fast frequency control and synthetic (virtual) inertia control, employing single phase electric vehicles as flexibility resources. Second, it proposes a trade-off analysis between the two controllers. The interdependency between frequency containment and synthetic inertia control on the transient frequency variation is shown analytically. The capabilities and limits of series produced EVs in providing such services are investigated, first on a simulation based approach and subsequently by using real hardware. The results show that fast frequency control can improve the transient frequency behaviour. However, both on the simulation and on the experimental level, the implementation of synthetic inertia control is more challenging. In fact, due its derivative nature and the system dynamics, its performance is limited. Furthermore, the crucial importance of the EVs’ response time for both controllers is highlighted
机译:分布式资源和无惯性资源的份额不断增加,导致平衡和系统稳定服务的热潮。特别地,常规发电的位移减小了电力系统中的可用旋转惯性,从而引起了对合成惯性解决方案的高度关注。本文的目的是双重的:首先,它的目的是采用单相电动汽车作为灵活性资源来实施和验证快速频率控制和合成(虚拟)惯性控制。其次,它提出了两个控制器之间的权衡分析。分析地显示了频率抑制和合成惯性控制之间对瞬态频率变化的相互依赖性。首先研究了基于仿真的方法,然后使用实际硬件研究了批量生产的电动汽车在提供此类服务中的能力和局限性。结果表明,快速频率控制可以改善瞬态频率特性。然而,无论在仿真还是在实验水平上,合成惯性控制的实施都更具挑战性。实际上,由于其派生性质和系统动力学,其性能是有限的。此外,强调了电动汽车响应时间对于两个控制器的至关重要性

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