Cascading Failure Analysis of Cyber Physical Power System With Multiple Interdependency and Control Threshold

The traditional infrastructure in power system is undergoing a transition to the Smart Grid, in which the communication network and power grid will be integrated into a cyber-physical power system (CPPS). Although the traditional topological analysis reveals the mechanism of cascading failure betwee...

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Main Authors: Yu Chen, Yong Li, Wenguo Li, Xiaorui Wu, Ye Cai, Yijia Cao, Christian Rehtanz
Format: Article
Language:English
Published: IEEE 2018-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/8416663/
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spelling doaj-9fbec8b634b7489681308110014d0c3f2021-03-29T20:59:18ZengIEEEIEEE Access2169-35362018-01-016393533936210.1109/ACCESS.2018.28554418416663Cascading Failure Analysis of Cyber Physical Power System With Multiple Interdependency and Control ThresholdYu Chen0Yong Li1https://orcid.org/0000-0002-1183-5359Wenguo Li2Xiaorui Wu3Ye Cai4https://orcid.org/0000-0002-5858-3814Yijia Cao5Christian Rehtanz6College of Electrical and Information Engineering, Hunan University, Changsha, ChinaCollege of Electrical and Information Engineering, Hunan University, Changsha, ChinaCollege of Electrical and Information Engineering, Hunan University, Changsha, ChinaCollege of Electrical and Information Engineering, Hunan University, Changsha, ChinaHunan Province 2011 Collaborative Innovation Center of Clean Energy and Smart Grid, Changsha University of Science and Technology, Changsha, ChinaCollege of Electrical and Information Engineering, Hunan University, Changsha, ChinaInstitute of Energy Systems, Energy Effciency and Energy Economics, TU Dortmund University, Dortmund, GermanyThe traditional infrastructure in power system is undergoing a transition to the Smart Grid, in which the communication network and power grid will be integrated into a cyber-physical power system (CPPS). Although the traditional topological analysis reveals the mechanism of cascading failure between two networks, it ignores the control redundancy and standby lines from communication network to power grid. The robustness analysis in CPPS requires a more comprehensive model to analyze failure behavior in reality. Here, we propose a cascading failure model with one-to-multiple interdependency and a relevant theoretical framework to analyze CPPS cascading failure. In consideration of real CPPS, in the proposed model we introduce two robustness factors, the number of dependent links and control threshold, which can better describe the control function from communication nodes to power nodes. The remaining fraction under different initial attacking on high voltage transmission network, small world network, double star network, and the different topological combination of CPPS are analyzed. The results show that the proposed model and robustness factors can better reveal the robustness and the mechanism of two networks in cascading failure.https://ieeexplore.ieee.org/document/8416663/Cascading failurecontrol thresholdcyber physical systempercolation theoryrobustness
collection DOAJ
language English
format Article
sources DOAJ
author Yu Chen
Yong Li
Wenguo Li
Xiaorui Wu
Ye Cai
Yijia Cao
Christian Rehtanz
spellingShingle Yu Chen
Yong Li
Wenguo Li
Xiaorui Wu
Ye Cai
Yijia Cao
Christian Rehtanz
Cascading Failure Analysis of Cyber Physical Power System With Multiple Interdependency and Control Threshold
IEEE Access
Cascading failure
control threshold
cyber physical system
percolation theory
robustness
author_facet Yu Chen
Yong Li
Wenguo Li
Xiaorui Wu
Ye Cai
Yijia Cao
Christian Rehtanz
author_sort Yu Chen
title Cascading Failure Analysis of Cyber Physical Power System With Multiple Interdependency and Control Threshold
title_short Cascading Failure Analysis of Cyber Physical Power System With Multiple Interdependency and Control Threshold
title_full Cascading Failure Analysis of Cyber Physical Power System With Multiple Interdependency and Control Threshold
title_fullStr Cascading Failure Analysis of Cyber Physical Power System With Multiple Interdependency and Control Threshold
title_full_unstemmed Cascading Failure Analysis of Cyber Physical Power System With Multiple Interdependency and Control Threshold
title_sort cascading failure analysis of cyber physical power system with multiple interdependency and control threshold
publisher IEEE
series IEEE Access
issn 2169-3536
publishDate 2018-01-01
description The traditional infrastructure in power system is undergoing a transition to the Smart Grid, in which the communication network and power grid will be integrated into a cyber-physical power system (CPPS). Although the traditional topological analysis reveals the mechanism of cascading failure between two networks, it ignores the control redundancy and standby lines from communication network to power grid. The robustness analysis in CPPS requires a more comprehensive model to analyze failure behavior in reality. Here, we propose a cascading failure model with one-to-multiple interdependency and a relevant theoretical framework to analyze CPPS cascading failure. In consideration of real CPPS, in the proposed model we introduce two robustness factors, the number of dependent links and control threshold, which can better describe the control function from communication nodes to power nodes. The remaining fraction under different initial attacking on high voltage transmission network, small world network, double star network, and the different topological combination of CPPS are analyzed. The results show that the proposed model and robustness factors can better reveal the robustness and the mechanism of two networks in cascading failure.
topic Cascading failure
control threshold
cyber physical system
percolation theory
robustness
url https://ieeexplore.ieee.org/document/8416663/
work_keys_str_mv AT yuchen cascadingfailureanalysisofcyberphysicalpowersystemwithmultipleinterdependencyandcontrolthreshold
AT yongli cascadingfailureanalysisofcyberphysicalpowersystemwithmultipleinterdependencyandcontrolthreshold
AT wenguoli cascadingfailureanalysisofcyberphysicalpowersystemwithmultipleinterdependencyandcontrolthreshold
AT xiaoruiwu cascadingfailureanalysisofcyberphysicalpowersystemwithmultipleinterdependencyandcontrolthreshold
AT yecai cascadingfailureanalysisofcyberphysicalpowersystemwithmultipleinterdependencyandcontrolthreshold
AT yijiacao cascadingfailureanalysisofcyberphysicalpowersystemwithmultipleinterdependencyandcontrolthreshold
AT christianrehtanz cascadingfailureanalysisofcyberphysicalpowersystemwithmultipleinterdependencyandcontrolthreshold
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