Abstract

Smart grids (SGs) are attracting attention as high value-added platforms, which mass-produce new business models through real-time information sharing. However, the open-ended information structure of SGs increases the risk of exposure to cyberattacks through the creation of multiple communication access points. In a power system where a real-time balance of supply and demand is essential, cyberattacks result in cascading failures leading to power outages. Therefore, this paper proposes a method to evaluate the robustness of large-scale SGs against cybersecurity disturbances. The proposed evaluation method established a hierarchy quantification technique considering the structural characteristics of SGs. With respect to the cyber hierarchy, relevant standards (NERC CIP, NIST FIPS) were applied to classify the grades of information security risk. In the case of physical hierarchy, the power system was calculated by using optimal power flow and analyzed the frequency stability. This study was aimed at identifying the vulnerabilities in the physical topology aspect of intelligent power systems due to cybersecurity disturbances.

Highlights

  • A smart grid (SG) is a representative convergence technology that provides various services and high-value through the advancement of power infrastructure

  • This study was aimed at identifying the vulnerabilities in the physical topology aspect of intelligent power systems due to cybersecurity disturbances

  • (Influence on the power system by the capacity of power facilities) after identifying the security threats defined in the SG security standard (SGSF-121-1) for SG components

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Summary

Introduction

A smart grid (SG) is a representative convergence technology that provides various services and high-value through the advancement of power infrastructure. In recent years, related studies have been actively conducted on SG security reflecting cyber disturbances for the power-system-analysis techniques such as optimal power-flow-calculation normalization according to cyber-attacks [11,12]. The organic relationship of the SG infrastructure was analyzed, and a robustnessevaluation technique was proposed in terms of the physical topology based on the contingency analysis of cyber disturbances.

Structural Characteristics of SG
Definition of Risk Impact of Cybersecurity Threats
Evaluation of Risk Impact of Cybersecurity Threats
Objective function
Simulation System Modeling and Prerequisites
Simulation Results and Analysis
Conclusions
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