电力系统运行中的经济调度安全问题

D. Shelar, Pengfei Sun, Saurabh Amin, S. Zonouz
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引用次数: 17

摘要

电网的运行依赖于关键控制中心功能的可靠运行,包括所谓的经济调度(ED)问题。电力系统优化问题是一个大规模的优化问题,需要系统运营者周期性地解决,以保证供电和负荷的平衡,同时保持可靠性约束。在本文中,我们提出了一种基于语义的攻击生成和实现方法来研究ED的安全性问题首先,我们对输电线路额定值生成最优攻击向量,以诱导关键线路的最大拥塞,从而导致违反容量限制。我们提出了一个双层优化问题,其中攻击者选择线路容量额定值的操作,以最大限度地提高线性潮流下线路容量违规的百分比。我们将双层问题重新表述为可有效求解的混合整数线性规划。其次,我们描述了如何在商业能源管理系统(ems)中实现最佳攻击向量。该攻击探索了EMS的动态内存空间,并将存储在数据区域中的真实线路容量评级替换为最优攻击向量。与众所周知的需要破坏分布式传感器的控制系统的虚假数据注入攻击相比,我们的方法直接实现对控制中心服务器的攻击。我们在基准电力系统和五种广泛使用的EMSs上的实验结果表明了我们的攻击生成和实现方法的实际可行性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Compromising Security of Economic Dispatch in Power System Operations
Power grid operations rely on the trustworthy operation of critical control center functionalities, including the so-called Economic Dispatch (ED) problem. The ED problem is a large-scale optimization problem that is periodically solved by the system operator to ensure the balance of supply and load while maintaining reliability constraints. In this paper, we propose a semantics-based attack generation and implementation approach to study the security of the ED problem.1 Firstly, we generate optimal attack vectors to transmission line ratings to induce maximum congestion in the critical lines, resulting in the violation of capacity limits. We formulate a bilevel optimization problem in which the attacker chooses manipulations of line capacity ratings to maximinimize the percentage line capacity violations under linear power flows. We reformulate the bilevel problem as a mixed integer linear program that can be solved efficiently. Secondly, we describe how the optimal attack vectors can be implemented in commercial energy management systems (EMSs). The attack explores the dynamic memory space of the EMS, and replaces the true line capacity ratings stored in data regions with the optimal attack vectors. In contrast to the well-known false data injection attacks to control systems that require compromising distributed sensors, our approach directly implements attacks to the control center server. Our experimental results on benchmark power systems and five widely utilized EMSs show the practical feasibility of our attack generation and implementation approach.
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