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首页> 外文期刊>Journal of Petroleum Exploration and Production Technology >2D and 3D seismic simulation for fault modeling: exploratory revision from the Gullfaks field
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2D and 3D seismic simulation for fault modeling: exploratory revision from the Gullfaks field

机译:用于故障建模的2D和3D地震模拟:Gullfaks油田的探索性修订

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2D and 3D seismic data have emerged as a key tool in the oil and gas industry to visualize and understand subsurface morphology and boundaries. In addition to providing excellent structural images, the dense sampling of 2D and 3D survey can sometimes make it possible to map reservoir quality and the distribution of hydrocarbon with well-marked limitations. Here we use 2D and 3D seismic data to map and interpret basic structures and fault lines to construct 2D and 3D base fault models of the Gullfaks field, while avoiding common pitfalls. This work also highlights important concepts and principles that allow selection, interpretation and simulation of particular areas containing hydrocarbon traps through the comparison of different maps such as time structure, amplitude and coherence. The field covers an area of approximately 50?km2 entirely confined within block 34/10 in the Norwegian sector of the North Sea. The area of the seismic lines extends to 4875?m laterally and vertically up to 4.5?s. Based on all the selected horizons, constructed maps and dominant fault construction models (2D and 3D), we show the presence of a major fault that cuts five horizons of the area of interest. The structural features include antiform and a set of extensional faults with master, antithetic and synthetic faults with opposite sense of shear (dip direction and angle ~60°). Ductile deformation at the bottom of seismic lines shows the fluctuation of amplitude of acoustic signals in seismic lines. Our results demonstrate uplift along the major fault during extension indicated by chaotic distortion at the bottom, which reveals a gas trap. In the Gullfaks field, termination of fault movement and subsequent deformation appears to have occurred for a long period of time. This illustrates the use of 2D and 3D visualization with horizon attributes that can conveniently provide massive amounts of data which elucidates the trapping mechanism of faults.
机译:2D和3D地震数据已成为油气行业中可视化和理解地下形态和边界的关键工具。除了提供出色的结构图像外,2D和3D测量的密集采样有时还可以绘制储层质量和碳氢化合物的分布图,并具有明显的局限性。在这里,我们使用2D和3D地震数据来映射和解释基本结构和断层线,以构建Gullfaks场的2D和3D基础断层模型,同时避免常见的陷阱。这项工作还强调了重要的概念和原理,这些概念和原理允许通过比较不同的地图(例如时间结构,幅度和相干性)来选择,解释和模拟包含油气藏的特定区域。该油田的面积约50?km2,完全限制在北海挪威海域的34/10区块内。地震线的区域在横向和垂直方向上延伸至4875?m,最高可达4.5?s。基于所有选定的层位,构造图和主要断层构造模型(2D和3D),我们显示了一个主要断层的存在,该断层切开了感兴趣区域的五个层。结构特征包括反型和一组伸展断层,主,对生和合成断层具有相反的剪切力(倾角和角度约为60°)。地震线底部的延性变形表明地震线中声信号幅度的波动。我们的结果表明,在伸展过程中,沿主要断层的隆升由底部的混沌变形指示,这表明存在一个气藏。在Gullfaks字段中,断层运动终止和随后的变形似乎已经发生了很长一段时间。这说明了将2D和3D可视化与层位属性结合使用,可以方便地提供大量数据,从而阐明故障的捕获机制。

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