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A framework for analyzing the impact of data integrity/quality on electricity market operations.

机译:分析数据完整性/质量对电力市场运营的影响的框架。

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摘要

This dissertation examines the impact of data integrity/quality in the supervisory control and data acquisition (SCADA) system on real-time locational marginal price (LMP) in electricity market operations. Measurement noise and/or manipulated sensor errors in a SCADA system may mislead system operators about real-time conditions in a power system, which, in turn, may impact the price signals in real-time power markets. This dissertation serves as a first attempt to analytically investigate the impact of bad/malicious data on electric power market operations. In future power system operations, which will probably involve many more sensors, the impact of sensor data integrity/quality on grid operations will become increasingly important.;The first part of this dissertation studies from a market participant's perspective a new class of malicious data attacks on state estimation, which subsequently influences the result of the newly emerging look-ahead dispatch models in the real-time power market. In comparison with prior work of cyber-attack on static dispatch where no inter-temporal ramping constraint is considered, we propose a novel attack strategy, named ramp-induced data (RID) attack, with which the attacker can manipulate the limits of ramp constraints of generators in look-ahead dispatch. It is demonstrated that the proposed attack can lead to financial profits via malicious capacity withholding of selected generators, while being undetected by the existing bad data detection algorithm embedded in today's state estimation software.;In the second part, we investigate from a system operator's perspective the sensitivity of locational marginal price (LMP) with respect to data corruption-induced state estimation error in real-time power market. Two data corruption scenarios are considered, in which corrupted continuous data (e.g., the power injection/flow and voltage magnitude) falsify power flow estimate whereas corrupted discrete data (e.g., the on/off status of a circuit breaker) do network topology estimate, thus leading to the distortion of LMP. We present an analytical framework to quantify real-time LMP sensitivity subject to continuous and discrete data corruption via state estimation. The proposed framework offers system operators an analytical tool to identify economically sensitive buses and transmission lines to data corruption as well as find sensors that impact LMP changes significantly.;This dissertation serves as a first step towards rigorous understanding of the fundamental coupling among cyber, physical and economical layers of operations in future smart grid.
机译:本文研究了电力市场运营中监督控制和数据采集(SCADA)系统中数据完整性/质量对实时边际电价(LMP)的影响。 SCADA系统中的测量噪声和/或可操纵的传感器错误可能使系统操作员误解电力系统中的实时状况,进而可能影响实时电力市场中的价格信号。本文是尝试分析不良/恶意数据对电力市场运行的影响的首次尝试。在未来可能涉及更多传感器的电力系统运行中,传感器数据完整性/质量对电网运行的影响将变得越来越重要。本论文的第一部分从市场参与者的角度研究了新型的恶意数据攻击状态估计,这会影响实时电力市场中新出现的超前调度模型的结果。与不考虑跨时间斜坡约束的静态攻击网络攻击的先前工作相比,我们提出了一种新颖的攻击策略,称为斜坡诱导数据(RID)攻击,攻击者可以利用这种策略来控制斜坡约束的限制。提前调度中的发电机组。事实证明,所提议的攻击可以通过恶意扣留选定的发电机来带来经济利益,而目前状态估计软件中嵌入的现有不良数据检测算法却无法发现这种攻击。第二部分,我们从系统操作员的角度进行了调查。实时电力市场中位置边际价格(LMP)对数据损坏引起的状态估计误差的敏感性。考虑了两种数据损坏情况,其中损坏的连续数据(例如,功率注入/流量和电压幅度)伪造了潮流估计,而损坏的离散数据(例如,断路器的开/关状态)进行了网络拓扑估计,从而导致LMP失真。我们提出了一个分析框架,用于量化通过状态估计对连续和离散数据损坏进行实时LMP敏感度。所提出的框架为系统运营商提供了一种分析工具,可以识别经济敏感的总线和传输线以防止数据损坏,并找到对LMP变化有重大影响的传感器;该论文是迈向严格理解网络,物理之间基本耦合的第一步。未来智能电网中经济高效的运营层。

著录项

  • 作者

    Choi, Dae Hyun.;

  • 作者单位

    Texas A&M University.;

  • 授予单位 Texas A&M University.;
  • 学科 Electrical engineering.;Energy.;Industrial engineering.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 144 p.
  • 总页数 144
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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