利用钻屑确定俯冲带结构、地层学和应力状态的最新进展

IF 3 2区 地球科学 Q2 GEOCHEMISTRY & GEOPHYSICS
P. H. Cornard, A. M. Schleicher, C. Regalla, M. Hamahashi, M. Kitamura, R. Fukuchi, K. T. Pickering, H. Kitajima, T. Wiersberg
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引用次数: 0

摘要

从活动俯冲系统中获取原位样品对于评估导致板块边界变形的岩石和沉积物的物质特性和地质演化,以及促进我们对导致断层锁定和破裂过程的理解至关重要。然而,获取和取心这些材料是具有挑战性的,通常需要隔水管钻井。国际海洋发现计划(IODP)南开海槽发震带实验(NanTroSEIZE)项目成功地利用超深隔管钻井通过岩心或岩屑采集了深部地壳样品。本文综述了利用岩屑解释俯冲带过程的分析方法和面临的挑战。分析岩屑的一个关键优势是能够收集钻探材料的岩性、生物地层、结构和地球化学性质的实时数据。将这些数据与随钻测井和泥浆气测井数据相结合,可以生成岩性变化和变形结构的深度剖面。岩屑的主要限制包括:样本小、水泥和钻井液的污染、钻井引起的黏结骨料(DICAs)的形成以及上升过程中的垂直混合。虽然不可能克服所有这些限制,但本研究提供并包括了说明这些问题如何影响地质构造评估的例子。尽管存在这些挑战,但岩屑已经提高了我们对俯冲带地层学、断层摩擦、流体流动和应力分布的认识。这极大地提高了我们对地震力学、大逆冲断层过程和板块断层边界锁定/破裂机制的理解。因此,未来的立管钻井作业对于理解特大逆冲地震和断层行为至关重要。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Recent Advances in the Use of Drill Cuttings for Determining Subduction Zone Structure, Stratigraphy, and Stress State

Recent Advances in the Use of Drill Cuttings for Determining Subduction Zone Structure, Stratigraphy, and Stress State

Obtaining in situ samples from active subduction systems is critical for assessing the material properties and geological evolution of rocks and sediments that host plate boundary deformation, and advancing our understanding of the processes that lead to fault locking and rupture. However, accessing and coring these materials is challenging, and commonly requires riser drilling. The International Ocean Discovery Program (IODP) Nankai Trough Seismogenic Zone Experiment (NanTroSEIZE) project has successfully used ultradeep riser-drilling to collect deep crust samples via core or cuttings. This paper reviews analytical methods and challenges associated with interpreting subduction zone processes from cuttings. A key advantage of analyzing cuttings is the ability to collect real time data on the lithological, biostratigraphical, structural and geochemical properties of the drilled materials. Combining these data with logging-while-drilling and mud gas logging data permits the generation of depth profiles of lithological variation and deformation structures. Significant limitations of cuttings include small sample size, contamination from cement and drilling fluids, the formation of drilling-induced cohesive aggregates (DICAs), and vertical mixing during ascent. While it is impossible to overcome all these limitations, this study provides and includes examples illustrating how these issues can impact the assessment of the geological formation. Despite these challenges, cuttings have advanced our knowledge of subduction zone stratigraphy, fault friction, fluid flow, and stress distribution. This has significantly improved our understanding of earthquake mechanics, megathrust fault processes and locking/rupture mechanisms along plate fault boundaries. Future riser-drilling operations are therefore crucial for understanding megathrust earthquakes and fault behavior.

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来源期刊
Geochemistry Geophysics Geosystems
Geochemistry Geophysics Geosystems 地学-地球化学与地球物理
CiteScore
5.90
自引率
11.40%
发文量
252
审稿时长
1 months
期刊介绍: Geochemistry, Geophysics, Geosystems (G3) publishes research papers on Earth and planetary processes with a focus on understanding the Earth as a system. Observational, experimental, and theoretical investigations of the solid Earth, hydrosphere, atmosphere, biosphere, and solar system at all spatial and temporal scales are welcome. Articles should be of broad interest, and interdisciplinary approaches are encouraged. Areas of interest for this peer-reviewed journal include, but are not limited to: The physics and chemistry of the Earth, including its structure, composition, physical properties, dynamics, and evolution Principles and applications of geochemical proxies to studies of Earth history The physical properties, composition, and temporal evolution of the Earth''s major reservoirs and the coupling between them The dynamics of geochemical and biogeochemical cycles at all spatial and temporal scales Physical and cosmochemical constraints on the composition, origin, and evolution of the Earth and other terrestrial planets The chemistry and physics of solar system materials that are relevant to the formation, evolution, and current state of the Earth and the planets Advances in modeling, observation, and experimentation that are of widespread interest in the geosciences.
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