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Modeling Subsurface Hydrogen Storage With Transport Properties From Entropy Scaling Using the PC‐SAFT Equation of State

Eller, JohannesORCIDiD
Sauerborn, Tim
Becker, BeatrixORCIDiD
Buntic, IvanORCIDiD
Gross, JoachimORCIDiD
Helmig, RainerORCIDiD
DOI: https://doi.org/10.1029/2021WR030885
Persistent URL: http://resolver.sub.uni-goettingen.de/purl?gldocs-11858/10275
Supplement: https://git.iws.uni-stuttgart.de/dumux-pub/sauerborn2020a
Eller, Johannes; Sauerborn, Tim; Becker, Beatrix; Buntic, Ivan; Gross, Joachim; Helmig, Rainer, 2022: Modeling Subsurface Hydrogen Storage With Transport Properties From Entropy Scaling Using the PC‐SAFT Equation of State. In: Water Resources Research, Band 58, 4, DOI: 10.1029/2021WR030885.
 
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  • Abstract
Hydrogen is a promising alternative to carbon based energy carriers and may be stored in large quantities in subsurface storage deposits. This work assesses the impact of static (density and phase equilibria) and dynamic (viscosity and diffusion coefficients) properties on the pressure field during the injection and extraction of hydrogen in the porous subsurface. In a first step, we derive transport properties for water, hydrogen and their mixture using the Perturbed‐Chain Statistical Associating Fluid Theory equation of state in combination with an entropy scaling approach and compare model predictions to alternative models from the literature. Our model compares excellently to experimental transport coefficients and models from literature with a higher number of adjustable parameters, such as GERG2008, and shows a clear improvement over empirical correlations for transport coefficients of hydrogen. In a second step, we determine the effect of further model reduction by comparing our against a much simpler model applying empirical transport coefficients from the literature. For this purpose, hydrogen is periodically injected into and extracted out of a dome‐shaped porous aquifer under a caprock. Our results show that density and viscosity of hydrogen have the highest impact on the pressure field, and that a thermodynamic model like the new model presented here is essential for modeling the storage aquifer, while keeping the number of coefficients at a minimum. In diffusion‐dominated settings such as the diffusion of hydrogen through the caprock, our developed diffusion coefficients show a much improved dependence on temperature and pressure, leading to a more accurate approximation of the diffusive fluxes.
 
Key Points: We model the phase behavior of pure hydrogen and the binary hydrogen‐water mixture using the Perturbed‐Chain Statistical Associating Fluid Theory equation of state. New entropy scaling relations for the transport properties of hydrogen and water and diffusion coefficients of their mixture are derived. The impact of the newly derived fluid properties is analyzed for a scenario of hydrogen storage in a porous aquifer.
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  • Montanwesen, Energie, Ressourcen, Umwelt [208]
Subjects:
hydrogen
PC‐SAFT
entropy scaling
DUMUX
subsurface storage
porous media
This is an open access article under the terms of the Creative Commons Attribution License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.

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