Efficient Co-simulator Integration with Application to Smart Grids

📅 2026-09-02
📈 Citations: 0
Influential: 0
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🤖 AI Summary
本文提出了一种高效的联合仿真策略,用于智能电网的研究,通过改进的事件驱动同步方法和NS-3事件处理优化,显著提高了仿真效率。
📝 Abstract
The evolution of the electric power grid towards a "smart grid" is an example of an emerging large-scale cyber-physical system. To study the potential of cyberattacks or other sources of extreme events, high-fidelity co-simulation is the only realistic strategy. In this work, we demonstrate a practical and high-performance co-simulation strategy for smart grids, which provides lessons about co-simulation integration that can be carried over to other cyber-physical systems. Specifically, we present a co-simulation platform based on the Mosaik framework that integrates several federates including OpenDSS for power flow, a refined NS-3 for communication networks, and custom Python-based simulators for on-load tap changer control, distributed state estimation, and data collection. We compare synchronization strategies -- exhaustive lock-step time advancement versus an optimized event-driven approach that exploits lower-bound time stamps (LBTS) and next-event prediction -- and introduce targeted refinements to NS-3 event handling and relevance filtering of internal events. Performance is evaluated on two standard IEEE benchmark systems: the 13-node test feeder with tap-changer voltage regulation and a large-scale 33-bus system augmented with 32 European low-voltage feeders (1,793 nodes total) performing distributed state estimation with thousands of phasors and smart meters. Experimental results demonstrate that the refined event-based synchronization that uses LBTS-based NS-3 event filtering reduces execution time by up to 50% (and more than 4$\times$ in smaller scenarios) compared to naïve lock-step methods, while strictly preserving temporal correctness and simulation accuracy. We additionally summarize a domain ontology that standardizes multi-simulator configuration and entity mapping across power, communication, and control domains.
Problem

Research questions and friction points this paper is trying to address.

co-simulation
smart grids
cyber-physical systems
high-fidelity
Innovation

Methods, ideas, or system contributions that make the work stand out.

co-simulation
smart grids
event-driven synchronization
LBTS (Lower-Bound Time Stamps)
multi-domain integration
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