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3D seismic volume visualization and interpretation: An integrated workflow with case studies

机译:3D地震体积的可视化和解释:带有案例研究的集成工作流程

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One of the major problems in subsurface seismic exploration is the uncertainty (nonuniqueness) in geologic interpretation because of the complexity of subsurface geology and the limited dimension of the data available. Case studies from worldwide exploration projects indicate that an integrated, three-dimensional (3D) seismic volume visualization and interpretation workflow contributes to resolving the problem by mining and exposing critical geologic information from within seismic data volumes. Following 3D seismic data acquisition and processing, the interpretation workflow consists of four integrated phases from data selection and conditioning, to structure and facies characterization, to prospect evaluation and generation, to well-bore planning. In the data selection and conditioning phase, the most favored and frequently used data are the full-angle, limited-angle, and limited-azimuth stack amplitude with significant structure and facies enhancements. Signal-to-noise ratio, color scheme, dynamic range, bit resolution, and visual contrast all affect the visibility of features of interest. In the structure and facies characterization phase, vertical slicing along arbitrary traverses demonstrates structure styles, stratigraphic architecture, and reservoir geometry in the cross-sectional view. Time/depth slicing defines lateral and vertical variability in the structural trend and areal extent in the map view. Stratal slicing and fault slicing map chronostratigraphic seismic facies and cross-stratal, along-fault seismic signature. Volume flattening and structure restoration aid in unraveling paleostructural framework and stratigraphic architecture and their growth histories. In the prospect evaluation and generation phase, a combination of volume trimming, co-rendering, transparency, attribute analysis, and attribute-body detection is instrumental in delineating volumetric extent and evaluating spatial connectivity of critical seismic features. Finally, in the well-bore planning phase, informed decision-making relies on the integration of all the information and knowledge interrogated from 3D seismic data. Most importantly, interpreters' geologic insight and play concept are crucial to optimal well-bore planning with high geologic potential and low economic risk.
机译:地下地震勘探的主要问题之一是地质解释的不确定性(非唯一性),原因是地下地质的复杂性和可用数据的有限性。来自全球勘探项目的案例研究表明,集成的三维(3D)地震体积可视化和解释工作流程有助于通过从地震数据量中挖掘和公开关键地质信息来解决问题。在进行3D地震数据采集和处理之后,解释工作流程包括四个集成阶段,从数据选择和条件处理,到结构和相特征描述,到前景评估和生成,再到井眼计划。在数据选择和调节阶段,最受青睐和最常用的数据是具有显着结构和相增强的全角度,有限角度和有限方位角的叠加振幅。信噪比,配色方案,动态范围,位分辨率和视觉对比度都会影响目标特征的可见性。在结构和相表征阶段,沿任意导线的垂直切片在剖面图中显示了结构样式,地层构造和储层几何形状。时间/深度切片定义了地图视图中结构趋势和面积范围的横向和纵向变化。地层切片和断层切片绘制了年代地层地震相和跨地层,沿断层的地震特征。体平面化和结构恢复有助于揭示古构造框架和地层构造及其增长历史。在前景评估和生成阶段,将体积修整,共同渲染,透明度,属性分析和属性实体检测相结合,有助于描述体积范围和评估关键地震特征的空间连通性。最后,在井眼计划阶段,明智的决策依赖于从3D地震数据中询问的所有信息和知识的集成。最重要的是,口译员的地质洞察力和游戏概念对于具有高地质潜力和低经济风险的最佳井眼计划至关重要。

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