Climate Change Data Portal
DOI | 10.1016/j.epsl.2020.116679 |
Time-resolved grain-scale 3D imaging of hydrofracturing in halite layers induced by gypsum dehydration and pore fluid pressure buildup | |
Marti S.; Fusseis F.; Butler I.B.; Schlepütz C.; Marone F.; Gilgannon J.; Kilian R.; Yang Y. | |
发表日期 | 2021 |
ISSN | 0012821X |
卷号 | 554 |
英文摘要 | Fluid release from dehydration reactions is considered to have significant effects on the strength and dynamics of tectonic faults at convergent plate boundaries. It is classically assumed that the production of fluid leads to increased pore fluid pressures that perturb a fault's stress state and thereby facilitates and enhances deformation. This important assumption has never been supported by direct microstructural observations. Here, we investigate the role of gypsum dehydration in the deformation of evaporitic rocks using synchrotron-based time-resolved X-ray computed microtomography (4D) imaging. This approach enables the documentation of coupled chemical, hydraulic and mechanical processes on the grain scale. In our experiments with deforming halite-gypsum-halite sandwiches we observe that the fluid released by dehydrating gypsum accumulates at the gypsum-halite interface before a distributed hydraulic failure of the halite layer drains the fluid. From our observations we conclude that perceivedly impermeable halite layers in evaporites are unlikely to trap overpressured fluid, e.g., in thin-skinned tectonic detachment horizons. Moreover, as the hydraulic failure is diffuse and not localized, our experiments suggest that dehydration reactions alone may not explain intermediate depth seismicity in subduction zones. Our data demonstrate the significant potential that in-situ 4D imaging has for the grain-scale investigation of fundamental tectonic processes. © 2020 Elsevier B.V. |
关键词 | 4D micro tomographydehydration reaction causing hydraulic fracturingevaporite deformationgypsum dehydration |
英文关键词 | Deformation; Dehydration; Faulting; Gypsum; Reaction intermediates; Sodium chloride; Convergent plate boundaries; Dehydration reactions; Intermediate depths; Mechanical process; Micro-structural observations; Pore fluid pressure; Thin-skinned tectonics; X-ray computed microtomography; Chloride minerals; crystal chemistry; deformation; dehydration; evaporite; fluid pressure; gypsum; halite; hydraulic fracturing; imaging method; induced response; porewater; X-ray tomography |
语种 | 英语 |
来源期刊 | Earth and Planetary Science Letters
![]() |
文献类型 | 期刊论文 |
条目标识符 | http://gcip.llas.ac.cn/handle/2XKMVOVA/203212 |
作者单位 | School of Geosciences, The University of Edinburgh, Edinburgh, United Kingdom; Swiss Light Source, Paul Scherrer Institut, Villigen, Switzerland; Institute of Geological Sciences, University of Bern, Bern, Switzerland; Institute of Geoscience, Martin-Luther-Universität Halle-Wittenberg, Halle, Germany |
推荐引用方式 GB/T 7714 | Marti S.,Fusseis F.,Butler I.B.,et al. Time-resolved grain-scale 3D imaging of hydrofracturing in halite layers induced by gypsum dehydration and pore fluid pressure buildup[J],2021,554. |
APA | Marti S..,Fusseis F..,Butler I.B..,Schlepütz C..,Marone F..,...&Yang Y..(2021).Time-resolved grain-scale 3D imaging of hydrofracturing in halite layers induced by gypsum dehydration and pore fluid pressure buildup.Earth and Planetary Science Letters,554. |
MLA | Marti S.,et al."Time-resolved grain-scale 3D imaging of hydrofracturing in halite layers induced by gypsum dehydration and pore fluid pressure buildup".Earth and Planetary Science Letters 554(2021). |
条目包含的文件 | 条目无相关文件。 |
除非特别说明,本系统中所有内容都受版权保护,并保留所有权利。