Geomechanical and environmental risks in deep-sea gas hydrate exploitation: Insights from multiscale multiphysics couplings
Геомеханические и экологические риски при разработке глубоководных газовых гидратов: выводы из многомасштабных мультифизических взаимодействий
2026-05-10
SCID: 54.1/9bcjgsac
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deep-sea gas hydratesdigital rock physicsfines-migration-induced clogginggeophysical monitoringmultiscale multiphysics coupling
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Abstract (AI)
Deep-sea natural gas hydrates represent a vast energy frontier, yet commercial extraction triggers complex multiphysics couplings, posing significant geomechanical and environmental hazards. This perspective synthesizes recent advances in elucidating multiscale triggers of reservoir instability and gas leakage. Leveraging three-dimensional digital rock physics, the impact of microstructural evolution on nonlinear flow is investigated, with specific focus on hydrate morphology transitions and fines-migration-induced clogging. Geomechanical hazards are interpreted through novel stress-partitioning constitutive models coupled with acoustic-mechanical monitoring. Furthermore, the integration of multidimensional geophysical monitoring with hybrid data-driven and physics-based fusion methodologies offers a novel pathway for predicting coupled hydro-mechanical behaviors and enables real-time adaptive management. By bridging the scale gap from molecular kinetics to reservoir-scale responses, a comprehensive framework is outlined for safe and predictable hydrate production while mitigating environmental leakage risks. Document Type: Perspective Cited as: Liu, L., Wang, K., Luo, T., Cao, S. C. Geomechanical and environmental risks in deep-sea gas hydrate exploitation: Insights from multiscale multiphysics couplings. Advances in Geo-Energy Research, 2026, 20(3): 209-212. https://doi.org/10.46690/ager.2026.06.03
Key Findings
1
Bridging molecular kinetics with reservoir-scale responses is identified as essential for safe, predictable hydrate production and mitigation of environmental leakage risks.
2
Deep-sea gas hydrate extraction involves coupled multiphysics processes that can trigger reservoir instability and environmental gas leakage.
3
Integrating multidimensional geophysical monitoring with hybrid data-driven and physics-based fusion can predict coupled hydro-mechanical behavior and support real-time adaptive management.
4
Stress-partitioning constitutive models combined with acoustic-mechanical monitoring provide a framework for interpreting and detecting geomechanical hazards.
5
Three-dimensional digital rock physics links hydrate morphology transitions and fines-migration-induced clogging to microstructural evolution and nonlinear flow behavior.
Research Object
deep-sea natural gas hydrate reservoirs under exploitation
Research Subject
multiscale multiphysics controls on reservoir instability, nonlinear flow, gas leakage, and associated geomechanical and environmental risks
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2026-05-10
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