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Proceedings of the 9th Workshop on Modeling and Simulation of Cyber-Physical Energy Systems最新文献

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Faster than real-time simulation: methods, tools, and applications 比实时仿真更快:方法、工具和应用
Xiaorui Liu, Juan Ospina, Ioannis Zografopoulos, Alonzo Russell, Charalambos Konstantinou
Real-time simulation enables the understanding of system operating conditions by evaluating simulation models of physical components running synchronized at the real-time wall clock. Leveraging the real-time measurements of comprehensive system models, faster than real-time (FTRT) simulation allows the evaluation of system architectures at speeds faster than real-time. FTRT simulation can assist in predicting the system's behavior efficiently, thus assisting the operation of system processes. Namely, the provided acceleration can be used for improving system scheduling, assessing system vulnerabilities, and predicting system disruptions in real-time systems. The acceleration of simulation times can be achieved by utilizing digital real-time simulators (RTS) and high-performance computing (HPC) architectures. FTRT simulation has been widely used, among others, for the operation, design, and investigation of power system events, building emergency management plans, wildfire prediction, etc. In this paper, we review the existing literature on FTRT simulation and its applications in different disciplines, with a particular focus on power systems. We present existing system modeling approaches, simulation tools and computing frameworks, and stress the importance of FTRT accuracy.
实时仿真可以通过评估在实时挂钟上同步运行的物理组件的仿真模型来了解系统运行条件。利用综合系统模型的实时测量,比实时更快(FTRT)仿真允许以比实时更快的速度评估系统架构。FTRT仿真可以有效地预测系统的行为,从而辅助系统过程的运行。也就是说,提供的加速可以用于改进系统调度、评估系统漏洞和预测实时系统中的系统中断。利用数字实时模拟器(RTS)和高性能计算(HPC)架构可以实现仿真时间的加速。FTRT仿真已广泛应用于电力系统事件的运行、设计和调查、建筑应急管理计划、野火预测等方面。在本文中,我们回顾了FTRT仿真的现有文献及其在不同学科中的应用,并特别关注电力系统。我们介绍了现有的系统建模方法、仿真工具和计算框架,并强调了FTRT精度的重要性。
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引用次数: 3
Security assessment and impact analysis of cyberattacks in integrated T&D power systems 综合输配电系统网络攻击安全评估与影响分析
Ioannis Zografopoulos, Charalambos Konstantinou, N. G. Tsoutsos, Dan Zhu, R. Broadwater
In this paper, we examine the impact of cyberattacks in an integrated transmission and distribution (T&D) power grid model with distributed energy resource (DER) integration. We adopt the OCTAVE Allegro methodology to identify critical system assets, enumerate potential threats, analyze, and prioritize risks for threat scenarios. Based on the analysis, attack strategies and exploitation scenarios are identified which could lead to system compromise. Specifically, we investigate the impact of data integrity attacks in inverted-based solar PV controllers, control signal blocking attacks in protective switches and breakers, and coordinated monitoring and switching time-delay attacks.
在本文中,我们研究了网络攻击对具有分布式能源(DER)集成的输配电(T&D)电网模型的影响。我们采用OCTAVE Allegro方法来识别关键系统资产,列举潜在威胁,分析并优先考虑威胁场景的风险。在此基础上,确定了可能导致系统泄露的攻击策略和利用场景。具体来说,我们研究了数据完整性攻击在基于逆变的太阳能光伏控制器中的影响,保护开关和断路器中的控制信号阻塞攻击,以及协调监测和开关延时攻击。
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引用次数: 10
期刊
Proceedings of the 9th Workshop on Modeling and Simulation of Cyber-Physical Energy Systems
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