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Helping the climate by replacing liquefied natural gas with liquefied hydrogen or ammonia

Bibliographic Data

ID15545657
AuthorsPaul Wolfram (0000-0002-8470-427X, Joint Global Change Research Institute, corresponding author), Patrick O’Rourke (0000-0002-7549-491X, Joint Global Change Research Institute), Haewon McJeon (0000-0003-0348-5704, Korea Advanced Institute of Science and Technology), Page Kyle (0000-0002-1257-8358, Joint Global Change Research Institute)
Year2024
Volume19
Issue5
Pages054005-054005
Publication date2024-03-25
Peer ReviewedYes
Open AccessYes
TypeARTICLE
VenueEnvironmental Research Letters (JOURNAL)
Journal identifiersISSN: 1748-9326 • E-ISSN: 1748-9326
PublisherIOP Publishing (PUBLISHER • GB)
DOI10.1088/1748-9326/ad376f
OpenAlexW4393143313
LanguageEN
Citations received1
References cited19

The war in Ukraine caused Europe to more than double its imports of liquefied natural gas (LNG) in only one year. In addition, imported LNG remains a crucial source of energy for resource-poor countries, such as Japan, where LNG imports satisfy about a quarter of the country’s primary energy demand. However, an increasing number of countries are formulating stringent decarbonization plans. Liquefied hydrogen and liquefied ammonia coupled with carbon capture and storage (LH 2 -CCS, LNH 3 -CCS) are emerging as the front runners in the search for low-carbon alternatives to LNG. Yet, little is currently known about the full environmental profile of LH 2 -CCS and LNH 3 -CCS because several characteristics of the two alternatives have only been analyzed in isolation in previous work. Here we show that the potential of these fuels to reduce greenhouse gas (GHG) emissions throughout the supply chain is highly uncertain. Our best estimate is that LH 2 -CCS and LNH 3 -CCS can reduce GHG emissions by 25%–61% relative to LNG assuming a 100 year global warming potential. However, directly coupling LNG with CCS would lead to substantial GHG reductions on the order of 74%. Further, under certain conditions, emissions from LH 2 -CCS and LNH 3 -CCS could exceed those of LNG, by up to 44%. These results question the suitability of LH 2 -CCS and LNH 3 -CCS for stringent decarbonization purposes

Ammonia · Liquefied natural gas · Natural (archaeology · Natural gas · Waste management · Chemistry · Engineering · Environmental Science · Hybrid Renewable Energy Systems · Integrated Energy Systems Optimization · Spacecraft and Cryogenic Technologies · Geology · Organic Chemistry

  • The hydrogen economy can reduce costs of climate change mitigation by up to 22

    Open Access•Paul Wolfram, Page Kyle et al.•One Earth•2024

Unique citing works1
Citations per year0,5
Citation span2024 - 2024 (1)
Citation velocityrecent
Highly citedNo
Citation typesNeutral: 1
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