LAPSE:2021.0493
Published Article
LAPSE:2021.0493
Techno-Economic Analysis of a Kilo-Watt Scale Hydrogen-Bromine Flow Battery System for Sustainable Energy Storage
Yohanes Antonius Hugo, Wiebrand Kout, Guido Dalessi, Antoni Forner-Cuenca, Zandrie Borneman, Kitty Nijmeijer
June 2, 2021
Transitioning to a renewable energy economy requires the widespread integration of solar and wind power, which are intermittent, into the electricity grid. To this goal, it is paramount to develop cost-competitive, reliable, location-independence, and large-scale energy storage technologies. The hydrogen bromine flow battery (HBFB) is a promising technology given the abundant material availability and its high power density. Here, the aim is to perform a comprehensive techno-economic analysis of a 500 kW nominal power/5 MWh HBFB storage system, based on the levelized cost of storage approach. Then, we systematically analyze stack and system components costs for both the current base and a future scenario (2030). We find that, for the base case, HBFB capital investments are competitive to Li-ion battery technology, highlighting the potential of large-scale HBFB market introduction. Improving the stack performance and reducing the stack and system costs are expected to result in ~62% reduction potential in capital investments. The base-case levelized cost of storage, $0.074/kWh, is sufficiently low for a wind-solar storage system to compete with a fossil-based power plant, with potential for reduction to $0.034/kWh in the future scenario. Sensitivity analysis indicates that the levelized cost of storage is most sensitive towards the stack lifetime, which motivates research efforts into advanced electrocatalysts with higher durability and ion-exchange membranes with improved selectivity.
Keywords
hydrogen bromine flow battery (HBFB), levelized cost of storage, market barriers, stack lifetime, Technoeconomic Analysis
Suggested Citation
Hugo YA, Kout W, Dalessi G, Forner-Cuenca A, Borneman Z, Nijmeijer K. Techno-Economic Analysis of a Kilo-Watt Scale Hydrogen-Bromine Flow Battery System for Sustainable Energy Storage. (2021). LAPSE:2021.0493
Author Affiliations
Hugo YA: Membrane Materials and Processes, Department of Chemical Engineering and Chemistry, Eindhoven University of Technology, P.O. Box 513, 5600 MB Eindhoven, The Netherlands; Elestor B.V., P.O. Box 882, 6800 AW Arnhem, The Netherlands
Kout W: Elestor B.V., P.O. Box 882, 6800 AW Arnhem, The Netherlands
Dalessi G: Elestor B.V., P.O. Box 882, 6800 AW Arnhem, The Netherlands
Forner-Cuenca A: Membrane Materials and Processes, Department of Chemical Engineering and Chemistry, Eindhoven University of Technology, P.O. Box 513, 5600 MB Eindhoven, The Netherlands [ORCID]
Borneman Z: Membrane Materials and Processes, Department of Chemical Engineering and Chemistry, Eindhoven University of Technology, P.O. Box 513, 5600 MB Eindhoven, The Netherlands; Dutch Institute for Fundamental Energy Research (DIFFER), P.O. Box 6336, 5600 HH Eind
Nijmeijer K: Membrane Materials and Processes, Department of Chemical Engineering and Chemistry, Eindhoven University of Technology, P.O. Box 513, 5600 MB Eindhoven, The Netherlands; Dutch Institute for Fundamental Energy Research (DIFFER), P.O. Box 6336, 5600 HH Eind
Journal Name
Processes
Volume
8
Issue
11
Article Number
E1492
Year
2020
Publication Date
2020-11-18
Published Version
ISSN
2227-9717
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Original Submission
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PII: pr8111492, Publication Type: Journal Article
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LAPSE:2021.0493
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doi:10.3390/pr8111492
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Jun 2, 2021
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Calvin Tsay
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