The structure of the hydrothermal root zone of the sheeted dikes in the fast-spread oceanic crust: A core-log integration study of ODP Hole 1256D, Eastern equatorial pacific.

IF 1.2 4区 地球科学 Q2 GEOLOGY
M. Violay, P. Pezard, B. Ildefonse, B. Célérier, Agathe Deleau
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引用次数: 5

Abstract

Ocean Drilling Program Hole 1256D reached for the first time the transition zone between the sheeted dike complex and the uppermost gabbros. The recovered crustal section offers a unique opportunity to study the deepest part of the hydrothermal system in present-day oceanic crust. We present a structural analysis of electrical borehole wall images. We identified, and measured the orientations of four categories of structures: major faults, minor fractures, possibly hydrothermal veins, and dikes. All structures tend to strike parallel to the paleo-ridge axis. Three major fault zones (meter thick) and dikes are steeply dipping (~ 75° on average) outward the ridge. Centimeter-thick moderately conductive planar features are interpreted as hydrothermal veins, are organized in arrays of consistent spacing, thickness, and orientation, and are dipping about 15-20° toward the ridge. This structural pattern is interpreted as an on-axis paleohydrothermal circulation system, with vertical, dike-parallel fractures, and sub-horizontal high-temperature hydrothermal veins at the base of the sheeted dike, which was subsequently rotated ~ 15° westward around a ridge-parallel, sub-horizontal axis. This rotation can be caused by upper-crustal block rotation along a listric normal fault, and/or subsidence at the ridge axis.
快速扩张洋壳中片状岩脉热液根带结构——赤道东太平洋ODP 1256D孔岩心-测井整合研究
1256D孔首次到达片状脉杂岩与最上层辉长岩之间的过渡带。恢复的地壳剖面为研究当今海洋地壳中热液系统的最深处提供了一个独特的机会。本文对电钻孔壁图像进行了结构分析。我们确定并测量了四类构造的方向:大断裂、小断裂、可能的热液脉和岩脉。所有构造都趋向于与古脊轴线平行。三个主要断裂带(米厚)和岩脉向外陡倾(平均约75°)。厘米厚的中等导电性平面特征被解释为热液脉,排列成间距、厚度和方向一致的阵列,向脊倾斜约15-20°。这种构造模式被解释为一个沿轴的古热液循环系统,在片状脉的底部有垂直的、平行于脉脉的裂缝和亚水平的高温热液脉,随后沿平行于脊的亚水平轴向西旋转约15°。这种旋转可能是由上地壳块体沿表状正断层旋转和/或脊轴沉降引起的。
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来源期刊
Ofioliti
Ofioliti 地学-地质学
CiteScore
2.40
自引率
7.70%
发文量
1
期刊介绍: Since 1976, Ofioliti provides an international forum for original contributions and reviews in the field of the geodynamics, petrology, geochemistry, biostratigraphy, stratigraphy, tectonics and paleogeography applied to ophiolitic terrains and modern oceanic lithosphere, including their sedimentary cover. Studies of topics such as geodynamics of the mantle, the evolution of orogens including ophiolites and paleoceanography are also welcome
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