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Securing Substations through Command Authentication Using On-the-fly Simulation of Power System Dynamics

机译:使用动力系统动态仿真通过命令认证保护变电站

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There are increasing concerns that cyber attackers may inject malicious remote control commands into smart grid systems, as witnessed in the Ukraine incidents in 2015 and 2016 and the recent CrashOverride malware campaign. To counter such risks, command authentication mechanisms, which evaluate the legitimacy and validity of each remote control command based on the up-to-date power grid status and context, can be deployed near the edge of smart grid infrastructure (e.g., in substations) as an additional line of defense. However, many of the state-of-the-art command authentication schemes only utilize steady-state power flow information, which does not capture all details of power grid behaviors in the transient state as well as cascading effects. Therefore, they may overlook indication of significant grid instability triggered by malicious commands. In this paper, we propose the use of on-the-fly power system dynamics simulation for command authentication to overcome such limitations. We also discuss system architecture and design considerations on longer simulation latency towards the practical deployment of the enhanced command authentication system.
机译:越来越多的人担心网络攻击者可能会将恶意远程控制命令注入智能电网系统,如2015年和2016年的乌克兰事件以及最近发生的事件所证明的那样。 CrashOverride 恶意软件活动。为了应对此类风险,可以在智能电网基础设施的边缘附近(例如,在变电站中)部署基于最新电网状态和上下文评估每个远程控制命令的合法性和有效性的命令认证机制。作为另一道防线。然而,许多最新的命令认证方案仅利用稳态潮流信息,该信息不能捕获瞬态状态下的电网行为以及级联效应的所有细节。因此,它们可能会忽略恶意命令触发的显着网格不稳定的指示。在本文中,我们提出使用动态电力系统动力学仿真来进行命令认证,以克服这种局限性。我们还将讨论针对增强型命令验证系统的实际部署需要更长的仿真等待时间的系统体系结构和设计注意事项。

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