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A Critical Review of IEC 61850 Testing Tools

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  • Taha Selim Ustun

    (Fukushima Renewable Energy Institute (FREA), Advanced Industrial Science and Technology (AIST), Koriyama 963-0298, Japan)

Abstract

Smartgrid technologies necessitate the use of information technologies (IT) and communication in power system networks. There are different ways of integrating power system equipment in the communication layer for successful information exchange. IEC 61850 offers standard support object-oriented modeling and standardized parameter declaration. This lends itself to the diverse nature of power systems and supports plug-and-play (PnP) operation in smartgrids. Considering the amount of time that is invested in customizing non-PnP communication networks, this is a huge advantage and the main reason behind the popularity of IEC 61850. In line with this popularity, the body of research regarding this standard is constantly growing. In order to test the developed IEC 61850 models and messages, various tools are required. Researchers operate with a limited budget and have to know the abilities and limitations of such tools before making a procurement decision. This paper provides a critical review of IEC 61850 testing tools available in the market. It compares them in terms of their abilities, technical superiority and customer experience, including delivery time and customer support. Researchers in this field will benefit significantly from this work when making procurement decisions based on their needs.

Suggested Citation

  • Taha Selim Ustun, 2021. "A Critical Review of IEC 61850 Testing Tools," Sustainability, MDPI, vol. 13(11), pages 1-36, May.
  • Handle: RePEc:gam:jsusta:v:13:y:2021:i:11:p:6213-:d:566609
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    References listed on IDEAS

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    1. Zhang, Yaning & Ke, Cunfeng & Fu, Wenming & Cui, Yunlei & Rehan, Mirza Abdullah & Li, Bingxi, 2020. "Simulation of microwave-assisted gasification of biomass: A review," Renewable Energy, Elsevier, vol. 154(C), pages 488-496.
    2. Mahmud, Khizir & Town, Graham E., 2016. "A review of computer tools for modeling electric vehicle energy requirements and their impact on power distribution networks," Applied Energy, Elsevier, vol. 172(C), pages 337-359.
    3. Nogaret, E. & Stavrakakis, G. & Kariniotakis, G. & Papadopoulos, M. & Hatziargyriou, N. & Androutsos, A. & Papathanassiou, S. & Lopes, J.A.Peças & Halliday, J. & Dutton, G. & Gatopoulos, J. & Karagoun, 1997. "An advanced control system for the optimal operation and management of medium size power systems with a large penetration from renewable power sources," Renewable Energy, Elsevier, vol. 12(2), pages 137-149.
    4. Furquan Nadeem & Mohd Asim Aftab & S.M. Suhail Hussain & Ikbal Ali & Prashant Kumar Tiwari & Arup Kumar Goswami & Taha Selim Ustun, 2019. "Virtual Power Plant Management in Smart Grids with XMPP Based IEC 61850 Communication," Energies, MDPI, vol. 12(12), pages 1-20, June.
    5. Taha Selim Ustun & S. M. Suhail Hussain & Mazheruddin H. Syed & Paulius Dambrauskas, 2021. "IEC-61850-Based Communication for Integrated EV Management in Power Systems with Renewable Penetration," Energies, MDPI, vol. 14(9), pages 1-15, April.
    6. Vera, Sergio & Pinto, Camilo & Tabares-Velasco, Paulo Cesar & Bustamante, Waldo, 2018. "A critical review of heat and mass transfer in vegetative roof models used in building energy and urban enviroment simulation tools," Applied Energy, Elsevier, vol. 232(C), pages 752-764.
    7. Bilal Naji Alhasnawi & Basil H. Jasim & Bishoy E. Sedhom & Eklas Hossain & Josep M. Guerrero, 2021. "A New Decentralized Control Strategy of Microgrids in the Internet of Energy Paradigm," Energies, MDPI, vol. 14(8), pages 1-34, April.
    8. Allegrini, Jonas & Orehounig, Kristina & Mavromatidis, Georgios & Ruesch, Florian & Dorer, Viktor & Evins, Ralph, 2015. "A review of modelling approaches and tools for the simulation of district-scale energy systems," Renewable and Sustainable Energy Reviews, Elsevier, vol. 52(C), pages 1391-1404.
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