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首页> 外文期刊>Tectonophysics: International Journal of Geotectonics and the Geology and Physics of the Interior of the Earth >Mass-transport deposits controlling fault propagation, reactivation and structural decoupling on continental margins (Espírito Santo Basin, SE Brazil)
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Mass-transport deposits controlling fault propagation, reactivation and structural decoupling on continental margins (Espírito Santo Basin, SE Brazil)

机译:控制大陆边缘断层的传播,复活和结构解耦的大规模沉积物(巴西东南部埃斯皮里托桑托盆地)

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摘要

This work uses high-quality 3D seismic data to assess the importance of mass-transport deposits (MTDs) as markers of fault propagation. We mapped three distinct MTDs and several fault families on the continental slope of Espírito Santo, SE Brazil. Fault mapping was based on seismic attributes such as seismic coherence and structural smoothing, and was further completed using ant tracking algorithms. Genetically related fault families were analysed in terms of their throw-depth (t-z) and throw-distance (t-x) gradient curves. A key result in this paper is that vertical fault propagation can be hindered by MTDs, as demonstrated for Eocene to Early Miocene faults in parts of the study area. Throw-depth variations in faults affected by MTDs are associated with: a) lithologic controls resulting from the presence of MTDs, b) local fault segmentation and c) reactivation by dip linkage. Based on their orientation and degree of interactionwithMTDs, interpreted faults can be classified as decoupled and non-decoupled. Importantly, faults decoupled by MTDs have quasi-elliptical t-x profiles and show smaller cumulative throw values and fault propagation rates when compared to their non-decoupled counterparts. Recurrent MTDs can therefore be used as markers to estimate structural decoupling between distinct fault families.
机译:这项工作使用高质量的3D地震数据来评估大规模矿床(MTD)作为断层传播标志的重要性。我们在巴西东南部EspíritoSanto的大陆坡上绘制了三个不同的MTDs和几个断层科。故障映射基于地震属性,例如地震相干性和结构平滑度,并使用蚂蚁跟踪算法进一步完成。遗传相关的断层科系根据其投掷深度(t-z)和投掷距离(t-x)梯度曲线进行了分析。本文的一个关键结果是,MTD可能会阻碍垂直断层的传播,正如在研究区域的部分中的始新世至中新世断层所证明的那样。受MTD影响的断层的投掷深度变化与以下因素有关:a)由于MTD的存在而引起的岩性控制,b)局部断层分割,以及c)通过倾角连锁重新激活。根据其方向和与MTD的相互作用程度,可以将解释的断层分为解耦和非解耦。重要的是,与非解耦对象相比,MTD解耦的故障具有准椭圆的t-x轮廓,并且显示出较小的累积抛出值和故障传播速率。因此,可以将循环MTD用作标记,以估计不同断层家族之间的结构解耦。

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