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Inversion-based detection of bed boundaries for petrophysical evaluation with well logs: Applications to carbonate and organic-shale formations

机译:基于井底测井的岩层边界的反演检测:在碳酸盐岩和有机页岩地层中的应用

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Petrophysical interpretation of well logs acquired in organic shales and carbonates is challenging because of the presence of thin beds and spatially complex lithology; conventional interpretation techniques often fail in such cases. Recently introduced methods for thin-bed interpretation enable corrections for shoulder-bed effects on well logs but remain sensitive to incorrectly picked bed boundaries.,We introduce a new inversion-based method to detect bed boundaries and to estimate petrophysical and compositional properties of multilayer formations from conventional well logs in the presence of thin beds, complex lithology/fluids, and kerogen. Bed boundaries and bed properties are updated in two serial inversion loops. Numerical simulation of well logs within both inversion loops explicitly takes into account differences in the volume of investigation of all well logs involved in the estimation, thereby enabling corrections for shoulder-bed effects. The successful application of the new interpretation method is documented with synthetic cases and field data acquired in thinly bedded carbonates and in the Haynesville shale-gas formation. Estimates of petrophysical/compositional properties obtained with the new interpretation method were compared to those obtained with (1) nonlinear inversion of well logs with inaccurate bed boundaries, (2) depth-by-depth inversion of well logs, and (3) core/x-ray diffraction measurements. Results indicated that the new method improves the estimation of porosity of thin beds by more than 200% in the carbonate field example and by more 'than 40% in the shale-gas example, compared to depth-by-depth interpretation results obtained with commercial software. This improvement in the assessment of petrophysical/compositional properties reduces uncertainty in hydrocarbon reserves and aids in the selection of hydraulic.fracture locations in organic shale.
机译:由于存在薄层和空间复杂的岩性,对在有机页岩和碳酸盐中采集的测井资料进行岩石物理解释具有挑战性。在这种情况下,传统的解释技术通常会失败。最近引入的用于薄层解释的方法可以校正测井仪上的肩层效应,但仍对不正确选择的层界保持敏感。我们引入了一种新的基于反演的方法来检测层界并估算多层地层的岩石物理和组成性质在薄层,复杂的岩性/流体和干酪根的存在下,从常规测井中提取。床边界和床属性在两个串行反演循环中更新。在两个反演循环内对测井曲线进行数值模拟时,明确考虑了估算中涉及的所有测井曲线的调查量差异,从而可以校正台肩效应。新的解释方法的成功应用已通过在薄层碳酸盐岩和海恩斯维尔页岩气层中获得的合成案例和现场数据进行了证明。将通过新解释方法获得的岩石物理/组成特性估计值与(1)床层边界不准确的测井曲线非线性反演,(2)测井深度逐深度反演和(3)岩心/ X射线衍射测量。结果表明,与商业上获得的逐层深度解释结果相比,该新方法在碳酸盐岩油田实例中将薄层孔隙率的估算提高了200%以上,在页岩气实例中将其提高了超过40%以上。软件。岩石物理/组成性质评估的这种改进减少了油气储量的不确定性,并有助于选择有机页岩中的水力压裂位置。

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