Towards generalized co-simulation of urban energy systems

被引:22
|
作者
Wang, Kunpeng [1 ,2 ]
Siebers, Peer-Olaf [2 ]
Robinson, Darren [2 ]
机构
[1] Austrian Inst Technol, Giefinggasse 2, A-1210 Vienna, Austria
[2] Univ Nottingham, Univ Pk, Nottingham NG7 2RD, England
来源
关键词
Urban Energy Systems; Co-Simulation; Functional Mock-up Interface; Functional Mock-up Unit;
D O I
10.1016/j.proeng.2017.07.092
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Maximizing energy conservation, improving energy efficiency and integration and control of renewable energy sources are critical in order to achieve a low carbon future. An integrated modelling system is needed to evaluate and improve energy performance of urban energy systems' design and operation, from both financial and environmental perspectives. To this end, this paper presents an urban energy co-simulation framework. It is based on co-simulation standard Functional Mock-up Interface (FMI) and CityGML-based semantic 3D city model and utilized programing packages, like PyFMI, FMILibrary, and mosaik, which is capable of orchestrating the execution of dynamic simulation models supporting the for co-simulation. To demonstrate the proof of concept, two simulation tools are coupled in the first instance: EnergyPlus and NoMASS. Based on the two use cases, the principles and workflow of the framework and results from its application are described. Results from use cases show that synchronization and interaction between our urban energy co-simulation framework and coupled co-simulation components works as intended. The paper concludes by discussing strategies to tackle more complex and multiscale energy systems. (c) 2017 Published by Elsevier Ltd.
引用
收藏
页码:366 / 374
页数:9
相关论文
共 50 条
  • [41] Co-simulation tools for networked control systems
    Al-Hammouri, Ahmad T.
    Branicky, Michael S.
    Liberatore, Vincenzo
    HYBRID SYSTEMS: COMPUTATION AND CONTROL, 2008, 4981 : 16 - 29
  • [42] Co-Simulation of Power Systems, Communication and Controls
    Stifter, Matthias
    Kazmi, Jawad Haider
    Andren, Filip
    Strasser, Thomas
    2014 WORKSHOP ON MODELING AND SIMULATION OF CYBER-PHYSICAL ENERGY SYSTEMS (MSCPES), 2014,
  • [43] A novel co-simulation approach for mechanical systems
    Evangelos Koutras
    Elias Paraskevopoulos
    Sotirios Natsiavas
    Multibody System Dynamics, 2022, 55 : 83 - 102
  • [44] Co-simulation method for designing embedded systems
    Jiang, W.H.
    Yu, H.Q.
    Ying, H.
    Wu, Y.J.
    Huadong Ligong Daxue Xuebao /Journal of East China University of Science and Technology, 2001, 27 (05):
  • [45] HYBRID SYSTEMS MODELLING AND SIMULATION IN DESTECS: A CO-SIMULATION APPROACH
    Ni, Yunyun
    Broenink, Jan F.
    EUROPEAN SIMULATION AND MODELLING CONFERENCE 2012, 2012, : 32 - 36
  • [46] Topological modelling of gas networks for co-simulation applications in multi-energy systems
    Vaccariello, Enrico
    Leone, Pierluigi
    Canavero, Flavio G.
    Stievano, Igor S.
    MATHEMATICS AND COMPUTERS IN SIMULATION, 2021, 183 : 244 - 253
  • [47] An FMI-based co-simulation framework for simulations of wave energy converter systems
    Shao, Xinyuan
    Ringsberg, Jonas W.
    Johnson, Erland
    Li, Zhiyuan
    Yao, Hua-Dong
    Skjoldhammer, Jan G.
    Bjorklund, Stefan
    ENERGY CONVERSION AND MANAGEMENT, 2025, 323
  • [48] Co-simulation of building energy and control systems with the Building Controls Virtual Test Bed
    Wetter, Michael
    JOURNAL OF BUILDING PERFORMANCE SIMULATION, 2011, 4 (03) : 185 - 203
  • [49] Adaptive-fine tuning of building energy management systems using co-simulation
    Kontes, G. D.
    Giannakis, G. I.
    Kosmatopoulos, E. B.
    Rovas, D. V.
    2012 IEEE INTERNATIONAL CONFERENCE ON CONTROL APPLICATIONS (CCA), 2012, : 1664 - 1669
  • [50] Energy-leak monitoring and correction to enhance stability in the co-simulation of mechanical systems
    Gonzalez, Francisco
    Arbatani, Siamak
    Mohtat, Arash
    Kovecses, Jozsef
    MECHANISM AND MACHINE THEORY, 2019, 131 : 172 - 188