TransHyDE‐Sys: An Integrated Systemic Approach for Analyzing and Supporting the Transformation of Energy Systems and Hydrogen Infrastructure Development

Author:

Kigle Stephan12ORCID,Mohr Stephan1,Kneiske Tanja3,Clees Tanja45,Ebner Michael1,Harper Ryan1,Jahn Matthias6,Klaassen Bernhard4,Köppel Wolfgang7,Ausfelder Florian8,Neitz‐Regett Anika1,Ragwitz Mario3

Affiliation:

1. FfE Munich Am Blütenanger 71 München 80995 Germany

2. School of Engineering and Design TUM Arcisstraße 21 München 80333 Germany

3. Fraunhofer IEG Gulbener Straße 23 03046 Cottbus Germany

4. Fraunhofer SCAI Schloss Birlinghoven Sankt Augustin 53757 Germany

5. Hochschule Bonn‐Rhein‐Sieg Grantham‐Allee 20 53757 Sankt Augustin Germany

6. Fraunhofer IKTS Winterbergstr. 28 01277 Dresden Germany

7. DVGW‐Forschungsstelle am Engler‐Bunte‐Institut des KIT Engler‐Bunte‐Ring 1‐9 76131 Karlsruhe Germany

8. DECHEMA e.V. Theodor‐Heuss‐Allee 25 60486 Frankfurt am Main Germany

Abstract

In addition to the long‐term goal of mitigating climate change, the current geopolitical upheavals heighten the urgency to transform Europe's energy system. This involves expanding renewable energies while managing intermittent electricity generation. Hydrogen is a promising solution to balance generation and demand, simultaneously decarbonizing complex applications. To model the energy system's transformation, the project TransHyDE‐Sys, funded by the German Federal Ministry of Education and Research, takes an integrated approach beyond traditional energy system analysis, incorporating a diverse range of more detailed methods and tools. Herein, TransHyDE‐Sys is situated within the recent policy discussion. It addresses the requirements for energy system modeling to gain insights into transforming the European hydrogen and energy infrastructure. It identifies knowledge gaps in the existing literature on hydrogen infrastructure‐oriented energy system modeling and presents the research approach of TransHyDE‐Sys. TransHyDE‐Sys analyzes the development of hydrogen and energy infrastructures from “the system” and “the stakeholder” perspectives. The integrated modeling landscape captures temporal and spatial interactions among hydrogen, electricity, and natural gas infrastructure, providing comprehensive insights for systemic infrastructure planning. This allows a more accurate representation of the energy system's dynamics and aids in decision‐making for achieving sustainable and efficient hydrogen network development integration.

Funder

Bundesministerium für Bildung und Forschung

Publisher

Wiley

Subject

General Energy

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