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A Multi-rate Co-simulation of Combined Phasor-Domain and Time-Domain Models for Large-scale Wind Farms

机译:大型风电场组合相位域和时域模型的多速率共模

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In the year 2015-2018, there are many sub- and super-synchronous interaction (S2SI) events, happened in China. However, traditional transient stability models, electro-magnetic transient (EMT) models and hybrid TS and EMT simulation methods fail to capture the desired wide frequency band interactions between large-scale AC grids and wind farms. To accurately and efficiently capture wide frequency band interactions between AC grids and wind farms, a simulation method which can extend the time-step to 500ms and further adopt the multi-rate structure is highly required. For this objective, we propose a multi-rate co-simulation method, in which the target system is partitioned into electro-magnetic transient (EMT) and shifted frequency phasor (SFP) subsystems, represented by our proposed transformation based SFP models and the traditional EMT models, respectively. The simulation efficiency of simulating large-scale AC grids is significantly improved by adopting a much larger time-step. Further, the multi-rate multi-domain transmission-line model (MDTLM) and the multi-rate frequency dependent MD-TLM are respectively proposed to reflect wideband interactions between AC grids and wind farms. Eventually, the multi-rate co-simulation is implemented based on the efficient SFP models, network partitioning, and so-called the multi-rate (FD)-MD-TLM. The performance (efficiency and accuracy) of the proposed method has been fully validated on a practical system integrating large AC grids and wind farms.
机译:在2015 - 2018年,在中国发生了许多子和超级同步互动(S2SI)事件。然而,传统的瞬态稳定模型,电磁瞬态(EMT)模型和混合动力TS和EMT模拟方法无法捕获大规模交流电流和风电场之间所需的宽频带相互作用。为了准确和有效地捕获AC电网和风电场之间的宽频带相互作用,很需要一种可以将时间步长和进一步采用多速率结构的模拟方法。为此目的,我们提出了一种多速率共仿真方法,其中目标系统被我们所提出的基于SFP模型和传统的转换所代表的电磁瞬态(EMT)和移位的频率量相(SFP)子系统分配。 EMT模型分别。通过采用更大的时间步骤,模拟大规模交流电网的模拟效率显着提高。此外,分别提出了多速率多域传输线模型(MDTLM)和多速率频率相关的MD-TLM以反映AC网格和风电场之间的宽带相互作用。最终,基于高效的S​​FP模型,网络分区和所谓的多速率(FD)-MD-TLM来实现多速率共模。该方法的性能(效率和准确性)在整合大型交流电流和风电场的实际系统上完全验证。

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