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Splitting marine controlled-source electromagnetic responses into sea and subseafloor contributions: Grounding the air wave

机译:将海洋控制源电磁响应分成海和海底贡献:将空气波接地

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We have found how the effects of the air wave in marine controlled-source electromagnetic (CSEM) methods gradually vanish in the sea for shallow waters, and how at the same time they gradually grow below the seafloor, in an effort to comprehend existing detectability definitions. The transition from sea to land is smooth because the sea becomes a thin conductive layer when the water depth is smaller than the skin depth in the sea. We consider the problem of detecting resistive layers at depth associated with hydrocarbon reservoirs, particularly in shallow-water explorations and, specifically, on how the air wave affects detection. Our analysis is based on an integral representation of the electric field in terms of its sensitivity to changes in the electrical conductivity of a 1D profile. Two-dimensional images of the integrands are obtained by plotting the integrand as a function of depth for different offsets. Results include the expected growth of the inhibiting effect of the sea as the water depths decrease. However, we also find that this happens up to a point and that from then on its effect decreases to zero. Regarding the resistive layer at depth, its importance grows to a constant as the water depth decreases to zero. As a function of offsets, there appear first the direct current effects. The induction zone is next and is dominated by contributions from the underlying formations. The third zone, which corresponds to the air wave, is largely dominated by contributions from the sea. The fourth and last zone is the plane-wave asymptote. All four classical zones identified in marine CSEM are also present in land CSEM.
机译:我们已经找到了如何在海洋控制源电磁(CSEM)方法中的气波的影响如何在海上逐渐消失浅水区,以及如何同时逐渐在海底下方生长,努力理解现有的可检测性定义。从海上到陆地的过渡是光滑的,因为当水深比海中的肤浅深度小时,大海变得薄导电层。我们考虑检测与烃储层的深度的电阻层的问题,特别是在浅水探索中,具体地,关于空气波如何影响检测。我们的分析基于其对1D轮廓的电导率的变化的敏感性方面的电场的整体表示。通过将整合和绘制作为不同偏移的深度的函数来获得积分的二维图像。结果包括随着水深降低时海洋抑制效果的预期增长。但是,我们还发现这一切达到了一点,从那时起它的效果会降至零。关于深度的电阻层,随着水深降至零,其重要性将其增长至恒定。作为偏移的函数,首先出现直流效果。感应区是下一个,并以底层地层的贡献为主。与空气波相对应的第三区在很大程度上是由海洋的贡献主导。第四个和最后一个区域是平面波渐近。海洋CSEM中鉴定的所有四个经典区域也存在于土地CSEM中。

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