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Semantic Interoperability between IEC 61850 and oneM2M for IoT-Enabled Smart Grids.

Salvatore Cavalieri1

  • 1Department of Electrical Electronic and Computer Engineering, University of Catania, Viale A. Doria 6, 95125 Catania, Italy.

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|April 30, 2021
PubMed
Summary

This study introduces a novel solution for interworking Internet of Things (IoT) devices with smart grids using IEC 61850 and oneM2M standards. It addresses the challenge of semantic interoperability for seamless data exchange in Industry 4.0 applications.

Keywords:
IEC 61850SAREFinternet of thingsoneM2Msemantic interoperabilitysmart grid

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Area of Science:

  • Electrical Engineering
  • Computer Science
  • Information Technology

Background:

  • Industry 4.0 necessitates pervasive communication technologies, particularly the Internet of Things (IoT), across various domains.
  • Smart grids require integrating heterogeneous devices for measuring, monitoring, and exchanging grid component information, overcoming current limitations.
  • Existing research focuses on enabling IoT in smart grids, often aiming for interworking between IoT and smart grid communication standards, but semantic interoperability remains a challenge.

Purpose of the Study:

  • To propose a novel solution for interworking the IEC 61850 (smart grid) and oneM2M (IoT) communication systems.
  • To address the open challenge of semantic interoperability in smart grid and IoT interworking.
  • To enable seamless information exchange between heterogeneous devices from different domains within the smart grid context.

Main Methods:

  • Developing an interworking scheme between IEC 61850 and oneM2M standards.
  • Proposing a semantic interoperability solution tailored for the presented interworking scheme.
  • Facilitating common data meaning for heterogeneous devices through the integrated solution.

Main Results:

  • A novel interworking solution between IEC 61850 and oneM2M is presented.
  • A semantic interoperability solution is proposed to enhance the interworking scheme.
  • The solution aims to enable effective data exchange among diverse devices in smart grids.

Conclusions:

  • The proposed solution offers a pathway to achieve semantic interoperability between smart grid and IoT communication standards.
  • This work contributes to overcoming a key challenge in integrating IoT into smart grids for Industry 4.0.
  • The developed interworking and semantic solution facilitates enhanced communication and data utilization in smart grid environments.