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Analyzing the impacts of data quality and availability on system stability analysis using single machine equivalents

机译:用单机等同物分析数据质量与可用性对系统稳定性分析的影响

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In this paper we propose to analyze the effects which errant or missing data may have on the stability analysis of a system during transient events, applying single machine equivalent (SIME) modelling for the analyses. As modern power systems are updated with the latest technologies, the deployment of PMUs is expected to increase the observability of the network both in real-time and for post-event analysis. However, there is a risk that while the availability of this new data will lead to better observability and controllability, there is an increasing risk of relying on the availability of this data for ensuring system security. Furthermore, advancements in the power system are expected to increase the number of active consumers, where the deployment of small-scale distributed non-synchronous generation or sources of unmodelled inertia will impact the swing of the system during transients, but may not be possible to account for in system models. While SIME models have been shown to be useful in many situations, in this paper we seek to quantify the errors introduced into the stability analysis due to the mentioned data quality issues. This analysis allows an assessment of the performance of SIME in situations where data quality is nonoptimal, allowing for a determination of the viability of SIME in more realistic scenarios.
机译:在本文中,我们建议分析错误或缺失数据可能对瞬态事件中系统的稳定性分析的影响,应用单机等效物(SIME)建模进行分析。随着现代电力系统的更新随着最新技术,预计PMU的部署将在实时和后事件后分析增加网络的可观察性。然而,存在风险,虽然这种新数据的可用性将导致更好的可观察性和可控性,但依赖于确保系统安全性的可用性的风险越来越大。此外,预计电力系统的进步将增加有源消费者的数量,其中小规模分布的非同步产生或未介质惯性源的部署将影响系统在瞬态期间系统的摆动,但可能无法实现帐户在系统模型中。虽然SIME模型在许多情况下被证明是有用的,但在本文中,我们寻求量化由于提到的数据质量问题而引入稳定性分析的错误。该分析允许在数据质量是非优化的情况下评估SIME的性能,从而允许在更现实的情况下确定SIME的可行性。

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