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Assessing the Benthic Response to Climate-Driven Methane Hydrate Destabilisation: State of the Art and Future Modelling Perspectives

Author

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  • Maria De La Fuente

    (BGeoSys, Department Geoscience, Environment & Society (DGES), Université Libre de Bruxelles, 1050 Brussels, Belgium)

  • Sandra Arndt

    (BGeoSys, Department Geoscience, Environment & Society (DGES), Université Libre de Bruxelles, 1050 Brussels, Belgium)

  • Héctor Marín-Moreno

    (Norwegian Geotechnical Institute, PB 3930 Ullevål Stadion, N-0806 Oslo, Norway)

  • Tim A. Minshull

    (School of Ocean and Earth Science, University of Southampton, European Way, Southampton SO14 3ZH, UK)

Abstract

Modern observations and geological records suggest that anthropogenic ocean warming could destabilise marine methane hydrate, resulting in methane release from the seafloor to the ocean-atmosphere, and potentially triggering a positive feedback on global temperature. On the decadal to millennial timescales over which hydrate-sourced methane release is hypothesized to occur, several processes consuming methane below and above the seafloor have the potential to slow, reduce or even prevent such release. Yet, the modulating effect of these processes on seafloor methane emissions remains poorly quantified, and the full impact of benthic methane consumption on ocean carbon chemistry is still to be explored. In this review, we document the dynamic interplay between hydrate thermodynamics, benthic transport and biogeochemical reaction processes, that ultimately determines the impact of hydrate destabilisation on seafloor methane emissions and the ocean carbon cycle. Then, we provide an overview of how state-of-the-art numerical models treat such processes and examine their ability to quantify hydrate-sourced methane emissions from the seafloor, as well as their impact on benthic biogeochemical cycling. We discuss the limitations of current models in coupling the dynamic interplay between hydrate thermodynamics and the different reaction and transport processes that control the efficiency of the benthic sink, and highlight their shortcoming in assessing the full implication of methane release on ocean carbon cycling. Finally, we recommend that current Earth system models explicitly account for hydrate driven benthic-pelagic exchange fluxes to capture potential hydrate-carbon cycle-climate feed-backs.

Suggested Citation

  • Maria De La Fuente & Sandra Arndt & Héctor Marín-Moreno & Tim A. Minshull, 2022. "Assessing the Benthic Response to Climate-Driven Methane Hydrate Destabilisation: State of the Art and Future Modelling Perspectives," Energies, MDPI, vol. 15(9), pages 1-32, May.
  • Handle: RePEc:gam:jeners:v:15:y:2022:i:9:p:3307-:d:807242
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    References listed on IDEAS

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    1. M. Carson & A. Köhl & D. Stammer & A. B. A. Slangen & C. A. Katsman & R. S. W. van de Wal & J. Church & N. White, 2016. "Coastal sea level changes, observed and projected during the 20th and 21st century," Climatic Change, Springer, vol. 134(1), pages 269-281, January.
    2. Antje Boetius & Katrin Ravenschlag & Carsten J. Schubert & Dirk Rickert & Friedrich Widdel & Armin Gieseke & Rudolf Amann & Bo Barker Jørgensen & Ursula Witte & Olaf Pfannkuche, 2000. "A marine microbial consortium apparently mediating anaerobic oxidation of methane," Nature, Nature, vol. 407(6804), pages 623-626, October.
    3. Helge Niemann & Tina Lösekann & Dirk de Beer & Marcus Elvert & Thierry Nadalig & Katrin Knittel & Rudolf Amann & Eberhard J. Sauter & Michael Schlüter & Michael Klages & Jean Paul Foucher & Antje Boet, 2006. "Novel microbial communities of the Haakon Mosby mud volcano and their role as a methane sink," Nature, Nature, vol. 443(7113), pages 854-858, October.
    4. K. H. Caesar & J. R. Kyle & T. W. Lyons & A. Tripati & S. J. Loyd, 2019. "Carbonate formation in salt dome cap rocks by microbial anaerobic oxidation of methane," Nature Communications, Nature, vol. 10(1), pages 1-9, December.
    5. Marcus Gutjahr & Andy Ridgwell & Philip F. Sexton & Eleni Anagnostou & Paul N. Pearson & Heiko Pälike & Richard D. Norris & Ellen Thomas & Gavin L. Foster, 2017. "Very large release of mostly volcanic carbon during the Palaeocene–Eocene Thermal Maximum," Nature, Nature, vol. 548(7669), pages 573-577, August.
    6. M. Carson & A. Köhl & D. Stammer & A. A. Slangen & C. Katsman & R. W. van de Wal & J. Church & N. White, 2016. "Coastal sea level changes, observed and projected during the 20th and 21st century," Climatic Change, Springer, vol. 134(1), pages 269-281, January.
    7. Shubhangi Gupta & Barbara Wohlmuth & Matthias Haeckel, 2020. "An All-At-Once Newton Strategy for Marine Methane Hydrate Reservoir Models," Energies, MDPI, vol. 13(2), pages 1-29, January.
    8. Klaus Wallmann & Elena Pinero & Ewa Burwicz & Matthias Haeckel & Christian Hensen & Andrew Dale & Lars Ruepke, 2012. "The Global Inventory of Methane Hydrate in Marine Sediments: A Theoretical Approach," Energies, MDPI, vol. 5(7), pages 1-50, July.
    9. Bjørn Kvamme & Matthew Clarke, 2021. "Hydrate Phase Transition Kinetic Modeling for Nature and Industry–Where Are We and Where Do We Go?," Energies, MDPI, vol. 14(14), pages 1-47, July.
    10. Tian, Hailong & Yu, Ceting & Xu, Tianfu & Liu, Changling & Jia, Wei & Li, Yuanping & Shang, Songhua, 2020. "Combining reactive transport modeling with geochemical observations to estimate the natural gas hydrate accumulation," Applied Energy, Elsevier, vol. 275(C).
    11. Ewa Burwicz & Lars Rüpke, 2019. "Thermal State of the Blake Ridge Gas Hydrate Stability Zone (GHSZ)—Insights on Gas Hydrate Dynamics from a New Multi-Phase Numerical Model," Energies, MDPI, vol. 12(17), pages 1-24, September.
    12. Maria De La Fuente & Jean Vaunat & Héctor Marín-Moreno, 2019. "Thermo-Hydro-Mechanical Coupled Modeling of Methane Hydrate-Bearing Sediments: Formulation and Application," Energies, MDPI, vol. 12(11), pages 1-23, June.
    13. Kai-Uwe Hinrichs & John M. Hayes & Sean P. Sylva & Peter G. Brewer & Edward F. DeLong, 1999. "Methane-consuming archaebacteria in marine sediments," Nature, Nature, vol. 398(6730), pages 802-805, April.
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