On the model flexibility of the geographical distributed real-time co-simulation: The of ENET-RT lab

被引:0
|
作者
Mazza, A. [1 ]
Benedettoa, G. [1 ]
Ponsa, E. [1 ]
Bompard, E. [1 ]
De Paola, A. [2 ]
Thomas, D. [2 ,9 ]
Kotsakis, E. [2 ]
Fulli, G. [2 ]
Vogel, S. [3 ]
Gild, A. Acosta [4 ]
Monti, A. [4 ]
Bruno, S. [5 ]
Iurlaro, C. [5 ]
La Scala, M. [5 ]
Bonfiglio, A. [6 ]
Cepollini, P. [6 ]
D'Agostino, F. [6 ]
Invernizzi, M. [6 ]
Rossi, M. [6 ]
Silvestro, F. [6 ]
De Caro, F. [7 ]
Giannoccaro, G. [8 ]
Villacci, D. [8 ]
机构
[1] Politecn Torino, Dept Energy, Turin, Italy
[2] European Commiss, Smart Grid Interoperabil Lab, Joint Res Ctr, Via Enrico Fermi 2749, I-21027 Ispra, Italy
[3] OPAL RT Germany, Aachen, Germany
[4] RWTH Aachen Univ Aachen, Inst Automat Complex Power Syst, Aachen, Germany
[5] Politecn Bari, Dept Elect & Informat Engn, Bari, Italy
[6] Univ Genoa, Elect Elect & Telecom Engn & Naval Architecture De, Genoa, Italy
[7] Univ Sannio, Dept Engn, Benevento, Italy
[8] Univ Napoli Federico II, Dept Ind Engn, Naples, Italy
[9] European Climate Infrastruct & Environm Execut Agc, Brussels, Belgium
来源
关键词
Real time co-simulation; Power hardware-in-the-loop; Software-in-the-loop; Control-in-the-loop; Frequency control; IMPACT; LOAD;
D O I
10.1016/j.segan.2024.101501
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
The decarbonization of the energy sector represents a challenge that requires new tools and approaches of analysis. This paper aims to demonstrate the fundamental role that geographical distributed real-time co- simulations (GD-RTDS) can play in this regard. To this end, three different case studies have been analyzed with GD-RTDS, covering a wide range of applications for the energy sector decarbonization: (a) implementation of Renewable Energy Communities for supporting the share increase of Renewable Energy Sources, (b) the integration and management of Onshore Power Supply, and (c) the integration of a forecasting tool for the management of the Electric Vehicle charging. The performed experiments included fully simulated components, together with (power) hardware-in-the-loop and software-in-the-loop elements. These components have been simulated in different laboratory facilities in Italy and Germany, all operating in a synchronized manner under the presented geographically-distributed setup. The results show that the proposed architecture is flexible enough to be used for modeling all the different case studies; moreover, they highlight the significant contribution that the GD-RTDS methodology can give in informing and driving energy transition policies and the fundamental role of power systems to spearhead the complete decarbonization of the energy sector.
引用
收藏
页数:17
相关论文
共 50 条
  • [31] A real-time co-simulation of PV power generation system using transmission line model interface
    Bai, Hao
    Tang, Xueyong
    Pan, Shuhui
    Chen, Julong
    Zhou, Changcheng
    Deng, Pu
    Yuan, Zhiyong
    Li, Qingsheng
    ENERGY REPORTS, 2022, 8 : 196 - 204
  • [32] A real-time co-simulation solution for train-track-bridge interaction
    Gong, Wei
    Zhu, Zhihui
    Wang, Kun
    Yang, Weichao
    Bai, Yu
    Ren, Juanjuan
    JOURNAL OF VIBRATION AND CONTROL, 2021, 27 (13-14) : 1606 - 1616
  • [33] Universal Equivalent Model for Real-Time CPU/FPGA Co-Simulation of Hybrid Cascaded Multilevel Converters
    Bieber, Levi
    Wang, Liwei
    Jatskevich, Juri
    Li, Wei
    IEEE ACCESS, 2023, 11 : 4228 - 4241
  • [34] Design of real-time co-simulation platform for wind energy conversion system
    Li, Bing
    Zhao, Haoran
    Diao, Junchao
    Han, Mingzhe
    ENERGY REPORTS, 2020, 6 : 403 - 409
  • [35] Verification of embedded real-time systems using hardware/software co-simulation
    El Shobaki, M
    24TH EUROMICRO CONFERENCE - PROCEEDING, VOLS 1 AND 2, 1998, : 46 - 50
  • [36] OpenDSS and Typhoon HIL Co-Simulation for Real-Time Evaluation of a Distribution Network
    Yelem, Srikanth
    Goli, Preetham
    Alhashem, Mohammed
    Gampa, Srinivasa Rao
    2023 NORTH AMERICAN POWER SYMPOSIUM, NAPS, 2023,
  • [37] HIL based Real-Time Co-Simulation for BEV Fault Injection Testing
    Konzept, Anja
    Reick, Benedikt
    Pintaric, Igor
    Osório, Caio
    SAE International Journal of Advances and Current Practices in Mobility, 2023, 6 (04): : 1964 - 1973
  • [38] Real-time Harmonic Elimination PWM for PV Inverters, Co-simulation Approach
    Douadi, Bendib
    Fethi, Akel
    Mohamed, Laour
    Madjid, Chikh
    Cherif, Larbes
    PROCEEDINGS OF 2016 INTERNATIONAL RENEWABLE & SUSTAINABLE ENERGY CONFERENCE (IRSEC' 16), 2016, : 503 - 508
  • [39] Real-Time Co-Simulation Testbed for Microgrid Cyber-Physical Analysis
    Venkataramanan, Venkatesh
    Srivastava, Anurag
    Hahn, Adam
    2016 WORKSHOP ON MODELING AND SIMULATION OF CYBER-PHYSICAL ENERGY SYSTEMS (MSCPES), 2016,
  • [40] Real-Time Challenges of Co-Simulation Framework for Integrated Grid Operations System
    Mohammed, Abdul Shafae
    Enslin, Johan
    Smith, Zachary
    IEEE 15TH INTERNATIONAL SYMPOSIUM ON POWER ELECTRONICS FOR DISTRIBUTED GENERATION SYSTEMS, PEDG 2024, 2024,