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Institut / FIR-Bereiche
Durch das Erneuerbare-Energien-Gesetz und den Wandel in der Energieversorgung ergeben sich immer neue Herausforderungen. Aufgrund der zunehmenden Einspeisung durch fluktuierende Erneuerbare-Energie-Erzeugungsanlagen ist der Ausbau von Energienetzen in Kopplung mit einer sicheren, schnell verfügbaren, energieeffizienten und wirtschaftlichen Informations- und Kommunikationstechnologie unabdingbar. Im Rahmen des Forschungsprojekts ‚eSafeNet‘ werden verschiedene Funk- und Kabelübertragungstechnologien auf ihr Potenzial für das Internet der Energie untersucht. Des Weiteren wird eine
Dienstleistungsplattform für Smart Services entwickelt. Ein interaktiver Demonstrator wird kreiert, der die Lösungsansätze für eine sichere Informations- und Kommunikations- sowie Energieinfrastruktur erlebbar darstellen soll. Das Vorhaben 03ET7549A der Forschungsvereinigung FIR e. V. an der RWTH Aachen wird über den PTJ durch das Bundesministerium für Wirtschaft und Energie (BMWi) aufgrund eines Beschlusses des Deutschen Bundestages gefördert.
The shift towards a decentralized electricity supply based on renewable energy sources requires constant communication between the entities in the electric grid. To satisfy this communication need, energy market players have to select suitable communication technologies for their use cases. Conventionally, these decisions are made on a case-by-case, non-systematic basis. This paper proposes a technology configurator, which is a systematic, solution neutral approach for energy market players to select the most suitable communication technology for their communication use case. The developed methodology consists of eight steps, in an interaction between a user and a system, leading to a prioritized list of technology recommendations for the given use case. In conclusion, the proposed approach presents energy market players with a systematic way to select the best suitable communication technology to connect their system to the smart grid.
The digitalization of manufacturing processes is expected to lead to a growing interconnection of production sites, as well as machines, tools and work pieces. In the course of this development, new use-cases arise which have challenging requirements from a communication technology point of view. In this paper we propose a communication network architecture for Industry 4.0 applications, which combines new 5G and non-cellular wireless network technologies with existing (wired) fieldbus technologies on the shop floor. This architecture includes the possibility to use private and public mobile networks together with local networking technologies to achieve a flexible setup that addresses many different industrial use cases. It is embedded into the Industrial Internet Reference Architecture and the RAMI4.0 reference architecture. The paper shows how the advancements introduced around the new 5G mobile technology can fulfill a wide range of industry requirements and thus enable new Industry 4.0 applications. Since 5G standardization is still ongoing, the proposed architecture is in a first step mainly focusing on new advanced features in the core network, but will be developed further later.
Factory automation and production are currently
undergoing massive changes, and 5G is considered being a key
enabler. In this paper, we state uses cases for using 5G in the
factory of the future, which are motivated by actual needs of the
industry partners of the “5Gang” consortium. Based on these use
cases and the ones by 3GPP, a 5G system architecture for the
factory of the future is proposed. It is set in relation to existing
architectural frameworks.