1. Enabling large-scale hydrogen storage in porous media – the scientific challenges
- Author
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Heinemann, Niklas, Alcalde, Juan, Miocic, Johannes M., Hangx, Suzanne J. T., Kallmeyer, Jens, Ostertag-Henning, Christian, Hassanpouryouzband, Aliakbar, Thaysen, Eike M., Strobel, Gion J., Wilkinson, Mark, Schmidt-Hattenberger, Cornelia, Edlmann, Katriona, Bentham, Michelle, Haszeldine, R. Stuart, Carbonell, Ramon, Rudloff, Alexander, Experimental rock deformation, Engineering and Physical Sciences Research Council (UK), Ministerio de Ciencia e Innovación (España), Federal Ministry of Education and Research (Germany), Carbonell, Ramón [0000-0003-2019-1214], Experimental rock deformation, and Carbonell, Ramón
- Subjects
Hydrogen ,020209 energy ,chemistry.chemical_element ,02 engineering and technology ,010501 environmental sciences ,01 natural sciences ,Energy storage ,Hydrogen storage ,Hydrogen economy ,0202 electrical engineering, electronic engineering, information engineering ,Environmental Chemistry ,Renewable Energy ,Process engineering ,0105 earth and related environmental sciences ,Sustainability and the Environment ,Renewable Energy, Sustainability and the Environment ,business.industry ,Pollution ,Electricity generation ,Nuclear Energy and Engineering ,chemistry ,Reservoir engineering ,Underground hydrogen storage ,Porous medium ,business ,Geology - Abstract
Expectations for energy storage are high but large-scale underground hydrogen storage in porous media (UHSP) remains largely untested. This article identifies and discusses the scientific challenges of hydrogen storage in porous media for safe and efficient large-scale energy storage to enable a global hydrogen economy. To facilitate hydrogen supply on the scales required for a zero-carbon future, it must be stored in porous geological formations, such as saline aquifers and depleted hydrocarbon reservoirs. Large-scale UHSP offers the much-needed capacity to balance inter-seasonal discrepancies between demand and supply, decouple energy generation from demand and decarbonise heating and transport, supporting decarbonisation of the entire energy system. Despite the vast opportunity provided by UHSP, the maturity is considered low and as such UHSP is associated with several uncertainties and challenges. Here, the safety and economic impacts triggered by poorly understood key processes are identified, such as the formation of corrosive hydrogen sulfide gas, hydrogen loss due to the activity of microbes or permeability changes due to geochemical interactions impacting on the predictability of hydrogen flow through porous media. The wide range of scientific challenges facing UHSP are outlined to improve procedures and workflows for the hydrogen storage cycle, from site selection to storage site operation. Multidisciplinary research, including reservoir engineering, chemistry, geology and microbiology, more complex than required for CH4 or CO2 storage is required in order to implement the safe, efficient and much needed large-scale commercial deployment of UHSP., This work was stimulated by the GEO*8 Workshop on “Hydrogen Storage in Porous Media”, November 2019 at the GFZ in Potsdam (Germany). NH, AH, ET, KE, MW and SH are funded by the Engineering and Physical Sciences Research Council (EPSRC) funded research project “HyStorPor” (grant number EP/S027815/1). JA is funded by the Spanish MICINN (Juan de la Cierva fellowship-IJC2018-036074-I). JM is co-funded by EU INTERREG V project RES-TMO (Ref: 4726 / 6.3). COH acknowledges funding by the Federal Ministry of Education and Research (BMBF, Germany) in the context of project H2_ReacT (03G0870C).
- Published
- 2021