Proceedings of the International Renewable Energy Storage Conference (IRES 2022)

Numerical Model for Underground Hydrogen Storage in Cased Boreholes

Authors
Antoine Bachand1, *, Bernard Doyon2, Robert Schulz3, Ralph Rudd4, Jasmin Raymond1
1Institut National de la Recherche Scientifique (INRS), Québec City, Canada
2Centre d’Études Nordiques (CEN), Québec City, Canada
3Institut de recherche d’Hydro-Québec, Québec City, Canada
4Department of Engineering, Reykjavik University, Québec City, Canada
*Corresponding author. Email: antoinebachand@outlook.com
Corresponding Author
Antoine Bachand
Available Online 25 May 2023.
DOI
10.2991/978-94-6463-156-2_3How to use a DOI?
Keywords
Energy storage; Renewable energy; Thermodynamics; Cased well; Heat transfer
Abstract

The decrease in generation costs of renewable energy, combined with advances in electrolyser technologies, suggest that green hydrogen production may be a viable option in the ongoing energy transition. Yet, a green hydrogen economy requires not only production solutions but also storage options, which prove to be challenging. An underexplored solution is the underground storage of hydrogen gas (H2) in cased boreholes or shafts. Its integration would bring versatility in the implementation, and large applicability since it does not require a particular geological context. The objective of this paper is to evaluate the technical viability of this new storage technology. Accurate prediction of temperature and pressure variations is essential for design, materials selection and safety reasons. This work uses numerical models based on the mass and energy conservation equations to simulate hydrogen storage operations in cased boreholes. The study shows that the heat transfer at the cavity walls strongly affects temperature and pressure variations. This effect is accentuated by a borehole’s geometry providing significant contact area. Thus, such technology mitigates extreme pressure and temperature variations and yields a higher hydrogen density than conventional caverns for a given pressure constraint. Results show that with a radius of 0.2 m, a hydrogen density of 30 kg m−3 can be attained at a maximum pressure of 50 MPa. The response of the system in terms of maximum temperature and pressure is relatively linear with an injection over 4 h but quickly becomes non-linear with a shorter injection time. The optimization of the initial storage conditions appears essential to minimize the cooling cost and maximize the storage mass.

Copyright
© 2023 The Author(s)
Open Access
Open Access This chapter is licensed under the terms of the Creative Commons Attribution-NonCommercial 4.0 International License (http://creativecommons.org/licenses/by-nc/4.0/), which permits any noncommercial use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license and indicate if changes were made.

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Volume Title
Proceedings of the International Renewable Energy Storage Conference (IRES 2022)
Series
Atlantis Highlights in Engineering
Publication Date
25 May 2023
ISBN
978-94-6463-156-2
ISSN
2589-4943
DOI
10.2991/978-94-6463-156-2_3How to use a DOI?
Copyright
© 2023 The Author(s)
Open Access
Open Access This chapter is licensed under the terms of the Creative Commons Attribution-NonCommercial 4.0 International License (http://creativecommons.org/licenses/by-nc/4.0/), which permits any noncommercial use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license and indicate if changes were made.

Cite this article

TY  - CONF
AU  - Antoine Bachand
AU  - Bernard Doyon
AU  - Robert Schulz
AU  - Ralph Rudd
AU  - Jasmin Raymond
PY  - 2023
DA  - 2023/05/25
TI  - Numerical Model for Underground Hydrogen Storage in Cased Boreholes
BT  - Proceedings of the International Renewable Energy Storage  Conference (IRES 2022)
PB  - Atlantis Press
SP  - 14
EP  - 28
SN  - 2589-4943
UR  - https://doi.org/10.2991/978-94-6463-156-2_3
DO  - 10.2991/978-94-6463-156-2_3
ID  - Bachand2023
ER  -