增强惯性支持:储能系统逆变器快速频率响应控制建模

A. Tbaileh, M. Elizondo, M. J. Alam, C. Vartanian, Amir Mohammednur, Hayk Zargaryan, Manuel Avendano
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引用次数: 0

摘要

考虑到从传统的化石发电机到基于逆变器的资源的转变,电网运营商越来越关注电力系统惯性的减少。一个关键问题是电力系统频率在大扰动后迅速严重下降,这可能引发补救措施,包括低频减载(UFLS)继电器的运行。一种潜在的解决方案是利用电池储能系统(BESS)提供快速频率响应(FFR),以减轻低系统惯性对系统频率的影响。在这项工作中,我们研究了不同的控制参数来实现模拟美国西部互连中BESS的建模FFR响应。首先,从已有的西互联正序模型出发,建立了一个极低惯性模型。之后,我们调整了BESS动态响应参数,以消除在大型发电机损失后达到UFLS继电器阈值的任何风险。最后,我们调查了在同一地区的多个较小的单位比较具有较大的BESS单位的相对影响。分析结果表明,1吉瓦的输电并网BESS有助于缓解西部电网大型发电机停机造成的频率下降,并显著降低低频负荷下降的风险。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Enhanced Inertial Support: Modeling Fast Frequency Response Controls for Energy Storage System Inverters
Reduction of power system inertia is a growing concern for grid operators given the transition under way from conventional fossil generators to inverter-based resources. One key concern is the rapid and severe dip in power system frequency following a large disturbance which could trigger remedial actions including operation of under frequency load shedding (UFLS) relays. A potential solution is to utilize battery energy storage systems (BESS) to provide fast frequency response (FFR) to mitigate the system frequency impact of low system inertia. In this work, we investigate different control parameters to achieve modeled FFR response from BESS in the simulated US Western Interconnection. First, a very low inertia model is developed from an existing positive sequence model of the Western Interconnection. Afterwards, we tune the BESS dynamic response parameters to eliminate any risks of reaching UFLS relay thresholds following the loss of large generators. Finally, we investigate the relative impact of having large BESS units in comparison of multiple smaller units in the same area. The results of the analyses indicate that 1 GW of transmission-connected BESS can help mitigate the frequency drop caused by large generators outages in the Western Interconnection, and significantly reduce the risk of under frequency load shedding.
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