Wettability of shale�brine�H2 system and H2-brine interfacial tension for assessment of the sealing capacities of shale formations during underground hydrogen storage

Replacement of fossil fuels with clean hydrogen has been recognized as the most feasible approach of implementing CO2-free hydrogen economy globally. However, large-scale storage of hydrogen is a critical component of hydrogen economy value chain because hydrogen is the lightest molecule and has mod...

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Main Authors: Al-Mukainah, H., Al-Yaseri, A., Yekeen, N., Hamad, J.A., Mahmoud, M.
Format: Article
Published: Elsevier Ltd 2022
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85133834073&doi=10.1016%2fj.egyr.2022.07.004&partnerID=40&md5=37f0978f9a797a6420349c5dfcb1e74a
http://eprints.utp.edu.my/33302/
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spelling my.utp.eprints.333022022-07-26T06:39:58Z Wettability of shale�brine�H2 system and H2-brine interfacial tension for assessment of the sealing capacities of shale formations during underground hydrogen storage Al-Mukainah, H. Al-Yaseri, A. Yekeen, N. Hamad, J.A. Mahmoud, M. Replacement of fossil fuels with clean hydrogen has been recognized as the most feasible approach of implementing CO2-free hydrogen economy globally. However, large-scale storage of hydrogen is a critical component of hydrogen economy value chain because hydrogen is the lightest molecule and has moderately low volumetric energy content. To achieve successful storage of buoyant hydrogen at the subsurface and convenient withdrawal during the period of critical energy demand, the integrity of the underground storage rock and overlying seal (caprock) must be assured. Presently, there is paucity of information on hydrogen wettability of shale and the interfacial properties of H2/brine system. In this research, contact angles of shale/H2/brine system and hydrogen/brine interfacial tension (IFT) were measured using Krüss drop shape analyzer (DSA 100) at 50 °C and varying pressure (14.7�1000 psi). A modified form of sessile drop approach was used for the contact angles measurement, whereas the H2-brine IFT was measured through the pendant drop method. H2-brine IFT values decreased slightly with increasing pressure, ranging between 63.68° at 14.7 psia and 51.29° at 1000 psia. The Eagle-ford shale with moderate total organic carbon (TOC) of 3.83 attained fully hydrogen-wet (contact angle of 99.9°) and intermediate-wet condition (contact angle of 89.7°) at 14.7 psi and 200 psi respectively. Likewise, the Wolf-camp shale with low TOC (0.30) attained weakly water-wet conditions, with contact angles of 58.8° and 62.9°, at 14.7 psi and 200 psi respectively. The maximum height of hydrogen that can be securely trapped by the Wolf-camp shale was approximately 325 meters whereas the value was merely 100 meters for the Eagle-ford shale. Results of this study will aid in assessment of hydrogen storage capacity of organic-rich shale (adsorption trapping), as well as evaluation of the sealing potentials of low TOC shale (caprock) during underground hydrogen storage. © 2022 Elsevier Ltd 2022 Article NonPeerReviewed https://www.scopus.com/inward/record.uri?eid=2-s2.0-85133834073&doi=10.1016%2fj.egyr.2022.07.004&partnerID=40&md5=37f0978f9a797a6420349c5dfcb1e74a Al-Mukainah, H. and Al-Yaseri, A. and Yekeen, N. and Hamad, J.A. and Mahmoud, M. (2022) Wettability of shale�brine�H2 system and H2-brine interfacial tension for assessment of the sealing capacities of shale formations during underground hydrogen storage. Energy Reports, 8 . pp. 8830-8843. http://eprints.utp.edu.my/33302/
institution Universiti Teknologi Petronas
building UTP Resource Centre
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Petronas
content_source UTP Institutional Repository
url_provider http://eprints.utp.edu.my/
description Replacement of fossil fuels with clean hydrogen has been recognized as the most feasible approach of implementing CO2-free hydrogen economy globally. However, large-scale storage of hydrogen is a critical component of hydrogen economy value chain because hydrogen is the lightest molecule and has moderately low volumetric energy content. To achieve successful storage of buoyant hydrogen at the subsurface and convenient withdrawal during the period of critical energy demand, the integrity of the underground storage rock and overlying seal (caprock) must be assured. Presently, there is paucity of information on hydrogen wettability of shale and the interfacial properties of H2/brine system. In this research, contact angles of shale/H2/brine system and hydrogen/brine interfacial tension (IFT) were measured using Krüss drop shape analyzer (DSA 100) at 50 °C and varying pressure (14.7�1000 psi). A modified form of sessile drop approach was used for the contact angles measurement, whereas the H2-brine IFT was measured through the pendant drop method. H2-brine IFT values decreased slightly with increasing pressure, ranging between 63.68° at 14.7 psia and 51.29° at 1000 psia. The Eagle-ford shale with moderate total organic carbon (TOC) of 3.83 attained fully hydrogen-wet (contact angle of 99.9°) and intermediate-wet condition (contact angle of 89.7°) at 14.7 psi and 200 psi respectively. Likewise, the Wolf-camp shale with low TOC (0.30) attained weakly water-wet conditions, with contact angles of 58.8° and 62.9°, at 14.7 psi and 200 psi respectively. The maximum height of hydrogen that can be securely trapped by the Wolf-camp shale was approximately 325 meters whereas the value was merely 100 meters for the Eagle-ford shale. Results of this study will aid in assessment of hydrogen storage capacity of organic-rich shale (adsorption trapping), as well as evaluation of the sealing potentials of low TOC shale (caprock) during underground hydrogen storage. © 2022
format Article
author Al-Mukainah, H.
Al-Yaseri, A.
Yekeen, N.
Hamad, J.A.
Mahmoud, M.
spellingShingle Al-Mukainah, H.
Al-Yaseri, A.
Yekeen, N.
Hamad, J.A.
Mahmoud, M.
Wettability of shale�brine�H2 system and H2-brine interfacial tension for assessment of the sealing capacities of shale formations during underground hydrogen storage
author_facet Al-Mukainah, H.
Al-Yaseri, A.
Yekeen, N.
Hamad, J.A.
Mahmoud, M.
author_sort Al-Mukainah, H.
title Wettability of shale�brine�H2 system and H2-brine interfacial tension for assessment of the sealing capacities of shale formations during underground hydrogen storage
title_short Wettability of shale�brine�H2 system and H2-brine interfacial tension for assessment of the sealing capacities of shale formations during underground hydrogen storage
title_full Wettability of shale�brine�H2 system and H2-brine interfacial tension for assessment of the sealing capacities of shale formations during underground hydrogen storage
title_fullStr Wettability of shale�brine�H2 system and H2-brine interfacial tension for assessment of the sealing capacities of shale formations during underground hydrogen storage
title_full_unstemmed Wettability of shale�brine�H2 system and H2-brine interfacial tension for assessment of the sealing capacities of shale formations during underground hydrogen storage
title_sort wettability of shale�brine�h2 system and h2-brine interfacial tension for assessment of the sealing capacities of shale formations during underground hydrogen storage
publisher Elsevier Ltd
publishDate 2022
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85133834073&doi=10.1016%2fj.egyr.2022.07.004&partnerID=40&md5=37f0978f9a797a6420349c5dfcb1e74a
http://eprints.utp.edu.my/33302/
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score 13.18916