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Efficient Modeling of IEC-61850 Logical Nodes in IEDs for Scalability in CPS Security Testbed

机译:CPS安全性试验台IED中IEC-61850逻辑节点的高效建模

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Though the deep penetration of cyber systems across the smart grid sub-domains enrich the operation of the wide-area protection, control, and smart grid applications, the stochastic nature of cyber-attacks by adversaries inflict their performance and the system operation. Various hardware-in-the-loop (HIL) cyber-physical system (CPS) testbeds have attempted to evaluate the cyberattack dynamics and power system perturbations for robust wide-area protection algorithms. However, physical resource constraints and modular integration designs have been significant barriers while modeling large-scale grid models (scalability) and have limited many of the CPS testbeds to either small-scale HIL environment or complete simulation environments. This paper proposes a meticulous design and efficient modeling of IEC-61850 logical nodes in physical relays to simulate large-scale grid models in a HIL real-time digital simulator environment integrated with industry-grade hardware and software systems for wide-area power system applications. The proposed meticulous design includes multi-breaker emulation in the physical relays, which extends the capacity of a physical relay to accommodate more number of CPS interfaces in the HIL CPS security testbed environment. We have used our existing HIL CPS security testbed to demonstrate scalability by the real-time performance of ten simultaneous IEEE-39 CPS grid models. The experiments demonstrated significant results by 100% real-time performance with zero overruns, and low latency while receiving and executing control signals from physical SEL relays via IEC-61850 and DNP-3 protocols to real-time digital simulator, substation remote terminal unit (RTU) software and supervisory control and data acquisition (SCADA) software at control center.
机译:虽然网络系统跨越智能电网域的深度渗透,但是通过对手的网络攻击的随机性质来丰富了广泛面积保护,控制和智能电网应用的运行,造成了对敌人的随机性能造成了它们的性能和系统操作。各种硬件循环(HIL)网络物理系统(CPS)试验台试图评估强大的广域保护算法的网络攻击动力学和电力系统扰动。然而,物理资源限制和模块化集成设计在建模大规模网格模型(可扩展性)并将许多CPS测试到小规模的HIL环境或完整的仿真环境中有限。本文提出了一种物理继电器IEC-61850逻辑节点的一丝不苟设计和有效建模,以模拟与广域电力系统应用的行业级硬件和软件系统集成的HIL实时数字模拟器环境中的大型网格模型。所提出的细致设计包括物理继电器中的多断路器仿真,其扩展了物理继电器的容量,以适应​​HIL CPS安全测试平面环境中更多数量的CPS接口。我们使用了现有的HIL CPS安全性测试平台,以通过十个同步IEEE-39 CPS网格模型的实时性能来展示可扩展性。该实验通过100%的实时性能,通过IEC-61850和DNP-3协议通过IEC-61850和DNP-3协议从物理SEL继电器接收和执行控制信号,对实时数字模拟器,变电站远程终端单元( RTU)控制中心的软件和监督控制和数据采集(SCADA)软件。

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