Public Acceptance of the Underground Storage of Hydrogen: Lessons Learned from the Geological Storage of CO<sub>2</sub>

The successful commercialisation of underground hydrogen storage (UHS) is contingent upon technological readiness and social acceptance. A lack of social acceptance, inadequate policies/regulations, an unreliable business case, and environmental uncertainty have the potential to delay or prevent UHS...

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書誌詳細
出版年:Energies
主要な著者: Radosław Tarkowski, Barbara Uliasz-Misiak
フォーマット: 論文
言語:英語
出版事項: MDPI AG 2025-03-01
主題:
オンライン・アクセス:https://www.mdpi.com/1996-1073/18/6/1335
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author Radosław Tarkowski
Barbara Uliasz-Misiak
author_facet Radosław Tarkowski
Barbara Uliasz-Misiak
author_sort Radosław Tarkowski
collection DOAJ
container_title Energies
description The successful commercialisation of underground hydrogen storage (UHS) is contingent upon technological readiness and social acceptance. A lack of social acceptance, inadequate policies/regulations, an unreliable business case, and environmental uncertainty have the potential to delay or prevent UHS commercialisation, even in cases where it is ready. The technologies utilised for underground hydrogen and carbon dioxide storage are analogous. The differences lie in the types of gases stored and the purpose of their storage. It is anticipated that the challenges related to public acceptance will be analogous in both cases. An assessment was made of the possibility of transferring experiences related to the social acceptance of CO<sub>2</sub> sequestration to UHS based on an analysis of relevant articles from indexed journals. The analysis enabled the identification of elements that can be used and incorporated into the social acceptance of UHS. A framework was identified that supports the assessment and implementation of factors determining social acceptance, ranging from conception to demonstration to implementation. These factors include education, communication, stakeholder involvement, risk assessment, policy and regulation, public trust, benefits, research and demonstration programmes, and social embedding. Implementing these measures has the potential to increase acceptance and facilitate faster implementation of this technology.
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spelling doaj-art-8cf00ecf57bd4fcaa1f8a004fcfb538f2025-08-20T02:42:42ZengMDPI AGEnergies1996-10732025-03-01186133510.3390/en18061335Public Acceptance of the Underground Storage of Hydrogen: Lessons Learned from the Geological Storage of CO<sub>2</sub>Radosław Tarkowski0Barbara Uliasz-Misiak1Mineral and Energy Economy Research Institute, Polish Academy of Sciences, J. Wybickiego 7A, 31-261 Krakow, PolandFaculty of Drilling, Oil and Gas, AGH University of Krakow, Al. Mickiewicza 30, 30-059 Krakow, PolandThe successful commercialisation of underground hydrogen storage (UHS) is contingent upon technological readiness and social acceptance. A lack of social acceptance, inadequate policies/regulations, an unreliable business case, and environmental uncertainty have the potential to delay or prevent UHS commercialisation, even in cases where it is ready. The technologies utilised for underground hydrogen and carbon dioxide storage are analogous. The differences lie in the types of gases stored and the purpose of their storage. It is anticipated that the challenges related to public acceptance will be analogous in both cases. An assessment was made of the possibility of transferring experiences related to the social acceptance of CO<sub>2</sub> sequestration to UHS based on an analysis of relevant articles from indexed journals. The analysis enabled the identification of elements that can be used and incorporated into the social acceptance of UHS. A framework was identified that supports the assessment and implementation of factors determining social acceptance, ranging from conception to demonstration to implementation. These factors include education, communication, stakeholder involvement, risk assessment, policy and regulation, public trust, benefits, research and demonstration programmes, and social embedding. Implementing these measures has the potential to increase acceptance and facilitate faster implementation of this technology.https://www.mdpi.com/1996-1073/18/6/1335underground hydrogen storageCCS/CCUSpublic acceptancesocial barrierssocial challenges
spellingShingle Radosław Tarkowski
Barbara Uliasz-Misiak
Public Acceptance of the Underground Storage of Hydrogen: Lessons Learned from the Geological Storage of CO<sub>2</sub>
underground hydrogen storage
CCS/CCUS
public acceptance
social barriers
social challenges
title Public Acceptance of the Underground Storage of Hydrogen: Lessons Learned from the Geological Storage of CO<sub>2</sub>
title_full Public Acceptance of the Underground Storage of Hydrogen: Lessons Learned from the Geological Storage of CO<sub>2</sub>
title_fullStr Public Acceptance of the Underground Storage of Hydrogen: Lessons Learned from the Geological Storage of CO<sub>2</sub>
title_full_unstemmed Public Acceptance of the Underground Storage of Hydrogen: Lessons Learned from the Geological Storage of CO<sub>2</sub>
title_short Public Acceptance of the Underground Storage of Hydrogen: Lessons Learned from the Geological Storage of CO<sub>2</sub>
title_sort public acceptance of the underground storage of hydrogen lessons learned from the geological storage of co sub 2 sub
topic underground hydrogen storage
CCS/CCUS
public acceptance
social barriers
social challenges
url https://www.mdpi.com/1996-1073/18/6/1335
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