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Analysis of the structural vulnerability of the interconnected power grid of continental Europe with the Integrated Power System and Unified Power System based on extended topological approach

机译:基于扩展拓扑方法的欧洲大陆互连电力系统集成电力系统和统一电力系统结构脆弱性分析

摘要

Power systems as one of the key infrastructures play a crucial role in any country's economy and social life. A large-scale blackout can affect all sectors in a society such as industrial, commercial, residential, and essential public services. However, the frequency of large-scale blackouts across the world is not being reduced, although advanced technology and huge investment have been applied into power systems. Given a single blackout, it is possible to analyze the causes with the traditional engineering methods. What we want to do is not to explain the causes of blackouts but to find what are the most critical elements of the power system to improve the resilience of the system itself. As blackout can happen in different load conditions, we do not want a method that depends on the load/generation level. We want a method independent from these factors: This is the structural perspective. When the interconnection between European and Russian power grids will create the largest interconnected power grid throughout the world in terms of the scale, transmission distance, and involved countries, analyzing the vulnerability of a large-scale power grid will be useful to maintain its reliable and secure operation. To analyze the vulnerability of the interconnected power grid, in this article, we first created the interconnected transmission network between continental Europe and the Commonwealth of Independent States (CIS) and Baltic countries; then, the structural vulnerability of the interconnected power grid was analyzed from a topological point of view using our proposed extended topological method, which incorporates some electrical engineering characteristics into complex network methodology. We found that these power grids of continental Europe, the Baltic states, and the CIS countries can benefit from the interconnection because the interconnected power grid can not only improve the overall network performance of these power grids in the Baltic states and the CIS countries but also increase their structural robustness.
机译:电力系统作为关键基础设施之一,在任何国家的经济和社会生活中都起着至关重要的作用。大规模停电会影响社会中的所有部门,例如工业,商业,住宅和基本公共服务。但是,尽管先进的技术和巨大的投资已应用于电力系统,但世界范围内大规模停电的频率并未减少。在一次停电的情况下,可以使用传统工程方法分析原因。我们要做的不是要解释停电的原因,而是要找出电力系统中最关键的要素,以提高电力系统本身的弹性。由于停电可能会在不同的负载条件下发生,因此我们不希望使用一种取决于负载/发电水平的方法。我们想要一种独立于这些因素的方法:这是结构方面的观点。当欧洲和俄罗斯电网之间的互连将在规模,传输距离和涉及的国家方面创建全世界最大的互连电网时,分析大型电网的脆弱性将有助于保持其可靠性和可靠性。安全操作。为了分析互连电网的脆弱性,在本文中,我们首先创建了欧洲大陆与独立国家联合体(CIS)和波罗的海国家之间的互连输电网络。然后,使用我们提出的扩展拓扑方法,从拓扑的角度分析了互连电网的结构脆弱性,该方法将一些电气工程特性纳入了复杂的网络方法中。我们发现,欧洲大陆,波罗的海国家和独联体国家的这些电网可以从互连中受益,因为互连的电网不仅可以改善这些波罗的海国家和独联体国家的电网的整体网络性能,而且还可以提高其结构坚固性。

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