Monitoring and Research on Submarine Hydrate Mound: Review and Future Perspective

IF 0.7 4区 工程技术 Q4 ENGINEERING, OCEAN Marine Technology Society Journal Pub Date : 2022-08-23 DOI:10.4031/mtsj.56.4.14
Y. Ge, C. Cao, Jia-wang Chen, Hao Wang, Peihao Zhang, Jiamin He, Yuan Lin
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引用次数: 1

Abstract

Abstract Submarine hydrate mounds are important indicators of submarine methane seepages, hydrocarbon reservoirs, and seabed instability. In order to fully understand the formation of hydrate mounds, here, we review the study of hydrate mounds, in which the morphology, the formation mechanism, as well as the research techniques are introduced. The formation mechanism of hydrate mounds can be classified into: (1) The sediment volume expands due to the formation and accumulation of shallow hydrates; (2) unconsolidated shallow sediment layers respond mechanically to increasing pore pressure caused by shallow gas accumulation; (3) materials extrude from submarine layers driven by the over-pressure caused by shallow gas accumulation; and (4) the interaction of multiple factors. Most hydrate mounds occur in submarine gas hydrate occurrence areas. Active hydrate mounds are circular or ellipse well-rounded shaped, with gas seepages and abundant organisms, whereas inactive hydrate mounds are rough or uneven irregular shaped, with low flux of fluid in the migration channel. Due to the limitation of long-term in-situ observation technology, the existing observation method makes it possible to provide basic morphology features, stratigraphic structures, and fluid migration channels of the hydrate mound. Future research should be focused on the long-term in-situ monitoring technology, the formation mechanism of the hydrate mounds, and the role of gas hydrates in the seafloor evolution. In addition, the features of hydrate mounds (e.g., gas chimneys and fluid migration conduits) and the relationship between hydrate mounds and pockmarks could be further studied to clarify the influence of methane release from hydrate mounds on biogeochemical processes and the atmospheric carbon contents.
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海底水合物丘监测与研究综述与展望
海底水合物丘是海底甲烷渗漏、油气储层和海底失稳的重要标志。为了更全面地认识水合物丘的形成,本文对水合物丘的研究进行了综述,介绍了水合物丘的形态、形成机理以及研究方法。水合物丘的形成机制可分为:(1)浅层水合物的形成和堆积使沉积物体积增大;(2)松散浅层沉积层对浅层气成藏引起的孔隙压力增大有机械响应;(3)浅层天然气聚集形成的超压驱动物质从海底层挤出;(4)多因素的相互作用。大多数水合物丘产于海底天然气水合物赋存区。活性水合物丘呈圆形或椭圆形,形状圆润,有气体渗漏,生物丰富;非活性水合物丘形状粗糙或凹凸不平,不规则,运移通道流体通量低。由于长期原位观测技术的限制,现有的观测方法只能提供水合物丘的基本形态特征、地层结构和流体运移通道。未来的研究重点应放在长期的原位监测技术、水合物丘的形成机制以及天然气水合物在海底演化中的作用等方面。此外,还可以进一步研究水合物丘的特征(如烟囱和流体运移管道)以及水合物丘与麻坑的关系,以阐明水合物丘甲烷释放对生物地球化学过程和大气碳含量的影响。
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来源期刊
Marine Technology Society Journal
Marine Technology Society Journal 工程技术-工程:大洋
CiteScore
1.70
自引率
0.00%
发文量
83
审稿时长
3 months
期刊介绍: The Marine Technology Society Journal is the flagship publication of the Marine Technology Society. It publishes the highest caliber, peer-reviewed papers, six times a year, on subjects of interest to the society: marine technology, ocean science, marine policy, and education.
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