Quantifying the resilience of ICT-enabled grid services in cyber-physical energy system

Q2 Energy Energy Informatics Pub Date : 2023-10-19 DOI:10.1186/s42162-023-00287-y
Anand Narayan, Michael Brand, Sebastian Lehnhoff
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Abstract

Information and Communication Technology (ICT) is vital for the operation of modern power systems, giving rise to Cyber-Physical Energy Systems (CPESs). ICT enables the grid services (GSs) needed for monitoring and controlling the physical parameters of the power system, especially for remedying the impact of disturbances. But the ICT integration makes the overall system more complex, leading to new and unforeseen disturbances. This motivates the need for a resilient system design capable of absorbing and recovering from such disturbances. The current state of the art lacks a comprehensive resilience assessment of ICT-enabled GSs in CPESs. To address this, a novel method and metrics to assess the resilience of GSs in CPESs are presented in this paper. An operational state model of a GS, with three states, i.e., normal, limited and failed, is used to capture its performance, which is essential for quantifying its resilience. Sequential Monte Carlo simulations are performed with the model to capture the behaviour of ICT components to compute the operational state trajectory of the GSs. Metrics are then derived to quantify the resilience and its constituting phases. The method is demonstrated using two ICT system designs for the CIGRE MV benchmark grid, considering the state estimation as an exemplary GS. The simulation results show that the proposed method can capture the differences between ICT system designs with regard to resilience metrics. The contribution can, therefore, be used to analyse, compare and potentially improve the resilience of ICT system designs for CPES.

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量化网络物理能源系统中ICT支持的电网服务的弹性
信息和通信技术(ICT)对现代电力系统的运行至关重要,从而产生了网络物理能源系统(CPE)。ICT能够提供监测和控制电力系统物理参数所需的电网服务,特别是用于补救干扰的影响。但信息和通信技术的整合使整个系统更加复杂,导致新的和不可预见的干扰。这激发了对能够吸收这种干扰并从中恢复的弹性系统设计的需求。目前的技术水平缺乏对CPES中支持ICT的GS的全面恢复力评估。为了解决这一问题,本文提出了一种新的方法和指标来评估CPE中GS的弹性。GS的操作状态模型有三种状态,即正常、受限和失败,用于捕捉其性能,这对于量化其弹性至关重要。利用该模型进行了顺序蒙特卡罗模拟,以捕捉ICT组件的行为,从而计算GS的运行状态轨迹。然后导出度量标准,以量化弹性及其构成阶段。该方法使用CIGRE MV基准网格的两个ICT系统设计进行了演示,将状态估计视为一个示例GS。仿真结果表明,所提出的方法可以捕捉ICT系统设计在弹性度量方面的差异。因此,这一贡献可用于分析、比较和潜在地提高CPES信通技术系统设计的弹性。
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来源期刊
Energy Informatics
Energy Informatics Computer Science-Computer Networks and Communications
CiteScore
5.50
自引率
0.00%
发文量
34
审稿时长
5 weeks
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