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Energy and Exergy Assessment of Renewable Energy Storage using Iron as Energy Carrier

Neumann, Jannik ; Corbean, Elisa ; Dammel, Frank ; Ulbrich, Stefan ; Stephan, Peter (2022)
Energy and Exergy Assessment of Renewable Energy Storage using Iron as Energy Carrier.
35th International Conference on Efficiency, Cost, Optimization, Simulation and Environmental Impact of Energy Systems. Copenhagen, Denmark (03.06.2022-07.06.2022)
doi: 10.26083/tuprints-00022982
Konferenzveröffentlichung, Erstveröffentlichung, Postprint

Kurzbeschreibung (Abstract)

The transformation to a climate-neutral electricity economy makes the sustainable generation of electricity from renewable energies a key technology. However, the widespread use of renewable energy faces several challenges, especially its volatility and locally limited availability. Addressing the temporal and geographic mismatch between renewable energy supply and demand is therefore crucial for a successful carbon-neutral electricity economy. Large-scale, transportable, and storable energy carriers are a key element in redressing this imbalance. Besides hydrogen-based fuels, metal fuels and iron in particular are promising alternatives to serve this purpose: electrical energy from renewable sources is stored by thermochemical reduction of iron oxides with green hydrogen and can be converted back into electricity by thermochemical oxidation (e.g., in retrofitted coal-fired power plants) spatially and temporally separated from the storage process. Despite the increasing interest in metal fuels, not many cycle analyses are available. This study provides quantitative and qualitative information on the thermodynamic performance of two thermodynamically controlled regeneration processes for iron oxides utilising a shaft furnace and a flash reactor, respectively. For the shaft furnace direct reduction of iron oxides energetic and exergetic efficiencies of 59.4% and 51.4 %, respectively, are determined. A sensitivity analysis indicates that energetic efficiencies up to 63.0% might be achievable within the model assumptions. The evaluation of the flash reactor direct reduction of iron oxides shows energetic and exergetic efficiencies of 68.5% and 59.9 %, respectively. In this case, optimal values based on sensitivity analyses lead to an energetic efficiency of 71.0% within the model assumptions. In addition to the use of commercial software, a modelling environment with direct access to mathematical optimisation techniques is in development and showcased for the flash reduction process leading to energetic efficiencies of 73.1 %. The developed models are the foundation for future thermoeconomic evaluations.

Typ des Eintrags: Konferenzveröffentlichung
Erschienen: 2022
Autor(en): Neumann, Jannik ; Corbean, Elisa ; Dammel, Frank ; Ulbrich, Stefan ; Stephan, Peter
Art des Eintrags: Erstveröffentlichung
Titel: Energy and Exergy Assessment of Renewable Energy Storage using Iron as Energy Carrier
Sprache: Englisch
Publikationsjahr: 2022
Ort: Darmstadt
Kollation: 13 Seiten
Veranstaltungstitel: 35th International Conference on Efficiency, Cost, Optimization, Simulation and Environmental Impact of Energy Systems
Veranstaltungsort: Copenhagen, Denmark
Veranstaltungsdatum: 03.06.2022-07.06.2022
DOI: 10.26083/tuprints-00022982
URL / URN: https://tuprints.ulb.tu-darmstadt.de/22982
Kurzbeschreibung (Abstract):

The transformation to a climate-neutral electricity economy makes the sustainable generation of electricity from renewable energies a key technology. However, the widespread use of renewable energy faces several challenges, especially its volatility and locally limited availability. Addressing the temporal and geographic mismatch between renewable energy supply and demand is therefore crucial for a successful carbon-neutral electricity economy. Large-scale, transportable, and storable energy carriers are a key element in redressing this imbalance. Besides hydrogen-based fuels, metal fuels and iron in particular are promising alternatives to serve this purpose: electrical energy from renewable sources is stored by thermochemical reduction of iron oxides with green hydrogen and can be converted back into electricity by thermochemical oxidation (e.g., in retrofitted coal-fired power plants) spatially and temporally separated from the storage process. Despite the increasing interest in metal fuels, not many cycle analyses are available. This study provides quantitative and qualitative information on the thermodynamic performance of two thermodynamically controlled regeneration processes for iron oxides utilising a shaft furnace and a flash reactor, respectively. For the shaft furnace direct reduction of iron oxides energetic and exergetic efficiencies of 59.4% and 51.4 %, respectively, are determined. A sensitivity analysis indicates that energetic efficiencies up to 63.0% might be achievable within the model assumptions. The evaluation of the flash reactor direct reduction of iron oxides shows energetic and exergetic efficiencies of 68.5% and 59.9 %, respectively. In this case, optimal values based on sensitivity analyses lead to an energetic efficiency of 71.0% within the model assumptions. In addition to the use of commercial software, a modelling environment with direct access to mathematical optimisation techniques is in development and showcased for the flash reduction process leading to energetic efficiencies of 73.1 %. The developed models are the foundation for future thermoeconomic evaluations.

Freie Schlagworte: Recyclable Metal Fuels; Thermochemical Reduction of Iron Oxides; Shaft Furnace direct Reduction; Flash Reactor direct Reduction
Status: Postprint
URN: urn:nbn:de:tuda-tuprints-229825
Sachgruppe der Dewey Dezimalklassifikatin (DDC): 600 Technik, Medizin, angewandte Wissenschaften > 620 Ingenieurwissenschaften und Maschinenbau
Fachbereich(e)/-gebiet(e): 16 Fachbereich Maschinenbau
16 Fachbereich Maschinenbau > Fachgebiet für Technische Thermodynamik (TTD)
04 Fachbereich Mathematik
04 Fachbereich Mathematik > Optimierung
04 Fachbereich Mathematik > Optimierung > Nonlinear Optimization
Hinterlegungsdatum: 09 Dez 2022 13:46
Letzte Änderung: 12 Dez 2022 06:40
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