Cyber-physical Co-simulation of Vessel Integrated Power System Based on HLA

被引:0
|
作者
Wu Y. [1 ]
Fu L. [1 ]
Ma F. [1 ]
Xiao X. [1 ]
Hao X. [1 ]
机构
[1] National Key Laboratory of Science and Technology on Vessel Integrated Power System (Naval University of Engineering), Wuhan, 430033, Hubei
来源
基金
中国国家自然科学基金;
关键词
Co-simulation; Cyber-physical system; HLA; Vessel integrated power system;
D O I
10.13335/j.1000-3673.pst.2018.2560
中图分类号
学科分类号
摘要
Aiming at close coupling between power system and information network in vessel integrated power systems, a designing of cyber-physical integrated power system co-simulation platform based on high level architecture (HLA) is proposed in this paper. In the proposed platform, simulations of information network and power system are implemented in OPNET and PSCAD respectively, and both the simulation models are extended with outside software to realize data exchange and simulation process control. Based on the runtime infrastructure interfaces provided by the HLA framework, a co-simulation controller is designed to enable OPNET and PSCAD to run simultaneously in HLA. And cyber-physical co-simulation is implemented by designing its time synchronization method and operational process. A simulation model of low voltage AC distribution network protection based on CAN bus communication is built and tested in the proposed co-simulation platform. And effectiveness of the proposed platform is validated through simulation results. © 2019, Power System Technology Press. All right reserved.
引用
收藏
页码:2422 / 2429
页数:7
相关论文
共 25 条
  • [1] Ma W., On comprehensive development of electrization and informationization in naval ships, Journal of Naval University of Engineering, 22, 5, pp. 1-4, (2010)
  • [2] Sheng C., Gao H., Chen Y., Et al., Summary and prospect of cyber physical power system simulation, Power System Technology, 36, 12, pp. 100-105, (2012)
  • [3] Mueller S.C., Georg H., Nutaro J.J., Et al., Interfacing power system and ICT simulators: challenges, state-of-the-art, and case studies, IEEE Transactions on Smart Grid, 99, (2016)
  • [4] Baran M., Sreenath R., Mahajan N.R., Et al., Extending EMTDC/PSCAD for simulating agent-based distributed applications, IEEE Power Engineering Review, 22, 12, pp. 52-54, (2002)
  • [5] Tong X., The co-simulation extending for wide-area communication networks in power system, Asia-Pacific Power and Energy Engineering Conference, pp. 1-4, (2010)
  • [6] Nutaro J., Kuruganti P.T., Miller L., Et al., Integrated hybrid-simulation of electric power and communications systems, 2007 IEEE Power Engineering Society General Meeting, pp. 1-8, (2007)
  • [7] Zeng Z., Liu D., Study on cyber-physical system modeling on coordinated control of photovoltaic generation and battery energy storage system, Power System Technology, 37, 6, pp. 1506-1513, (2013)
  • [8] Levesque M., Xu D.Q., Joos G., Et al., Communications and power distribution network co-simulation for multidisciplinary smart grid experimentations, The 45th Annual SimulationSymposium, pp. 6-10, (2012)
  • [9] Awais M.U., Gawlik W., De-Cillia G., Palensky P., Hybrid simulation using SAHISim framework, The 8th International Conference on Simulation Tools and Techniques, pp. 273-278, (2015)
  • [10] Schutte S., Scherfke S., Troschel T., Mosaik: A framework for modular simulation of active components in Smart Grids, 2011 IEEE First International Workshop on Smart Grid Modeling and Simulation (SGMS), pp. 55-60, (2011)