Real-time implementation for vulnerability of power components under switching attack based on sliding mode

IF 1.7 Q3 COMPUTER SCIENCE, INFORMATION SYSTEMS
Seema Yadav, Nand Kishor, Shubhi Purwar, Saikat Chakrabarti, Petra Raussi, Avinash Kumar
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Abstract

In recent years, cyber security-related studies in the power grid have drawn wide attention, with much focus on its detection, mainly for data injection type of attacks. The vulnerability of power components as a result of attack and their impact on generator dynamics have been largely ignored so far. With the aim of addressing some of these issues, the authors propose a novel approach using real-time sliding surface-based switching attack (SA) construction. This approach targets the circuit breaker, excitation system, and governor system of the generator. The vulnerability of these power components to cyber-physical attacks and assessment of their potential impact on the stability of generator are discussed. The study is presented to show the progression of cascading generator dynamics on account of single or multiple time instants of SA launched on these power components. The results are discussed according to criteria in terms of deviations in rotor speed of the generator and identify some of possible combinations of power components that are most critical to grid stability. The proposed study is implemented on standard IEEE 3-machine, 9-bus network in real-time digital simulator via transmission control protocol/internet protocol (TCP/IP) communication network established as cyber-physical system. The sliding surface-based SA algorithm developed in MATLAB is launched from another computer.

Abstract Image

基于滑模的开关攻击下电力元件脆弱性实时实现
近年来,电网网络安全的相关研究受到了广泛的关注,主要集中在对其检测上,主要针对数据注入型攻击。由于攻击而导致的电力元件的脆弱性及其对发电机动力学的影响在很大程度上被忽视。为了解决其中的一些问题,作者提出了一种使用基于实时滑动表面的切换攻击(SA)构造的新方法。该方法针对发电机的断路器、励磁系统和调速器系统。讨论了这些电力元件易受网络物理攻击的脆弱性,并对其对发电机稳定性的潜在影响进行了评估。本文研究了级联发电机在这些功率元件上单个或多个时间瞬间的动态变化。根据发电机转子转速偏差的准则对结果进行了讨论,并确定了对电网稳定最关键的一些可能的功率元件组合。本研究通过建立传输控制协议/互联网协议(TCP/IP)通信网络作为信息物理系统,在实时数字模拟器的标准IEEE 3机9总线网络上实现。在MATLAB中开发的基于滑动面的SA算法在另一台计算机上启动。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
IET Cyber-Physical Systems: Theory and Applications
IET Cyber-Physical Systems: Theory and Applications Computer Science-Computer Networks and Communications
CiteScore
5.40
自引率
6.70%
发文量
17
审稿时长
19 weeks
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