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Possible Negative Interactions between Fast Frequency Response from Utility-scale Battery Storage and Interconnector Protection Schemes

机译:公用事业规模的电池存储的快速频率响应与互连器保护方案之间可能产生的负面相互作用

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Grid integration of renewables and replacement of conventional synchronous power plants may significantly decrease system inertia, which can potentially lead to frequency stability issues. Among alternative solutions to support system frequency in low-inertia conditions, and thanks to their unique technology features and highly controllable power electronic converters, utility-scale battery energy storage system (BESS) can be deployed to provide fast frequency response (FFR). However, possible undesired knock-on effects from such FFR operation, e.g., its negative interaction with equipment protection relays, and particularly for interconnectors, have not been adequately investigated. In this context, this paper first demonstrates with an illustrative analytical example how BESS FFR could potentially induce undesired trip in out-of-step interconnector protection schemes. Then, a case study example based on an Australian test system is presented to discuss how FFR from the 100 MW Hornsdale BESS located in South Australia might have contributed to the trip of the Heywood interconnector with Victoria during the August 2018 separation event. Finally, it is shown how FFR from BESS in Victoria could have enhanced frequency control and even prevent system separation, hence highlighting the importance of FFR location.
机译:可再生能源的电网整合和传统同步发电厂的更换可能会大大降低系统惯性,这有可能导致频率稳定性问题。在低惯性条件下支持系统频率的替代解决方案中,由于其独特的技术功能和高度可控的电力电子转换器,可以部署公用事业规模的电池储能系统(BESS)以提供快速的频率响应(FFR)。然而,尚未充分研究这种FFR操作可能产生的不希望的连锁效应,例如,它与设备保护继电器,特别是对于互连器的负作用。在这种情况下,本文首先通过一个说明性的分析示例演示了BESS FFR如何在失步的互连器保护方案中潜在地引起不希望的跳闸。然后,提供了一个基于澳大利亚测试系统的案例研究示例,以讨论来自位于南澳大利亚的100 MW Hornsdale BESS的FFR可能如何在2018年8月的分离活动中为海伍德互连器与维多利亚的旅程做出了贡献。最后,展示了维多利亚州BESS的FFR如何能够增强频率控制甚至防止系统分离,从而突出了FFR定位的重要性。

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