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Using empirical geological rules to reduce structural uncertainty in seismic interpretation of faults

机译:在断层的地震解释中使用经验地质规则来减少结构的不确定性

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Good seismic interpretation of faults should include a workflow that checks the interpretation against known structural properties of fault systems. Estimates of wall-rock strains provide one objective means for discriminating between correct and incorrect structural interpretations of 2D and 3D seismic data - implied wall-rock strain should be below a geologically plausible maximum. We call this the strain minimisation approach. Drawing on the large body of published data for strike dimension and maximum displacement for faults we suggest a realistic upper limit of wall-rock shear strain of 0.05, and 0.1 for maximum longitudinal strain when measured in the displacement direction. Small-scale variation of fault wall-rock strain also adheres to this rule, except in specific areas of strain localisation such as relay zones. As a case study we review an existing structural interpretation of 2D seismic surveys. Mapping of shear and longitudinal strain on the fault planes show values commonly greater than 0.05 and 0.1 respectively. Thus the model is deemed inadmissible. We then reinterpreted the area in an iterative manner using the strain minimisation approach. By using regions of implied high wall-rock strain as an indicator of high uncertainty in the interpretation, we were able to break out two self-consistent fault sets, each of which had geologically plausible wall-rock strains, where previously there had only been one fault set with highly implausible wall-rock strains.
机译:良好的断层地震解释应包括一个工作流程,该工作流程应对照断层系统的已知结构特性检查解释。估算壁岩应变提供了一种客观的方法,用于区分2D和3D地震数据的正确和不正确的结构解释-隐含的壁岩应变应低于地质上合理的最大值。我们称其为应变最小化方法。利用已发布的大量有关走向尺寸和断层最大位移的数据,我们建议在位移方向上测量时,岩壁切变应变的实际上限为0.05,最大纵向应变的上限为0.1。断层围岩应变的小范围变化也遵循该规则,除了在应变局部化的特定区域(如中继带)外。作为案例研究,我们回顾了2D地震勘测的现有结构解释。断层平面上的剪切力和纵向应变的映射通常分别分别大于0.05和0.1。因此,该模型被认为是不可接受的。然后,我们使用应变最小化方法以迭代方式重新解释了该区域。通过使用隐含的高围岩应变区域作为解释中高度不确定性的指标,我们能够分解出两个自洽断层,每个断层具有地质上合理的围岩应变,而以前仅存在一个断层,壁岩应变极高。

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