Hydrogen production, storage, utilisation and environmental impacts: a review

Производство, хранение, использование водорода и его влияние на окружающую среду: обзор
Ahmed M. Elgarahy, Amer Al‐Hinai, David W. Rooney, Ala’a H. Al‐Muhtaseb, Ahmed I. Osman, Neha Mehta, Mahmoud Hefny
2021-10-06

ammonia productioncoal gasificationdecarbonisationhydrogen geological storagehydrogen productionhydrogen utilisationlife cycle analysismetallurgical industriesmethane pyrolysispower systemssalt cavernssteam methane reformingtransportationunderground porous mediawater electrolysis
Abstract Dihydrogen (H 2 ), commonly named ‘hydrogen’, is increasingly recognised as a clean and reliable energy vector for decarbonisation and defossilisation by various sectors. The global hydrogen demand is projected to increase from 70 million tonnes in 2019 to 120 million tonnes by 2024. Hydrogen development should also meet the seventh goal of ‘affordable and clean energy’ of the United Nations. Here we review hydrogen production and life cycle analysis, hydrogen geological storage and hydrogen utilisation. Hydrogen is produced by water electrolysis, steam methane reforming, methane pyrolysis and coal gasification. We compare the environmental impact of hydrogen production routes by life cycle analysis. Hydrogen is used in power systems, transportation, hydrocarbon and ammonia production, and metallugical industries. Overall, combining electrolysis-generated hydrogen with hydrogen storage in underground porous media such as geological reservoirs and salt caverns is well suited for shifting excess off-peak energy to meet dispatchable on-peak demand.
1
Combining electrolysis-produced hydrogen with geological storage (porous reservoirs and salt caverns) effectively shifts excess off-peak energy to meet on-peak dispatchable demand.
2
Global hydrogen demand is projected to rise from 70 million tonnes in 2019 to 120 million tonnes by 2024.
3
Hydrogen can be produced via water electrolysis, steam methane reforming, methane pyrolysis, and coal gasification.
4
Hydrogen is applicable across sectors including power systems, transportation, hydrocarbon and ammonia production, and metallurgical industries, supporting decarbonisation and affordable clean energy goals.
5
Life cycle analysis is used to compare the environmental impacts of different hydrogen production routes.

Hydrogen (H2) as an energy vector including its production, geological storage, and utilisation pathways

Environmental impacts and life-cycle performance of hydrogen across production routes, geological storage (underground porous media and salt caverns), and end-use sectors (power systems, transportation, hydrocarbon/ammonia production, metallurgy), including the role of electrolysis plus storage for shifting energy demand

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Publication Date
2021-10-06
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Authors
Ahmed M. Elgarahy
Amer Al‐Hinai
David W. Rooney
Ala’a H. Al‐Muhtaseb
Ahmed I. Osman
Neha Mehta
Mahmoud Hefny
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