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Improved estimation of elastic attributes from prestack seismic data for reservoir characterization

机译:从储层表征中提高了Prestack地震数据的弹性属性估计

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摘要

Seismic derivable elastic attributes, e.g., elastic impedance, lambda-rho, mu-rho, and Poisson impedance (PI), are routinely being used for reservoir characterization practice. These attributes could be derived from inverted V P, V S, and density, and usually indicate high sensitivity to reservoir lithology and fluid. Due to the high sensitivity of such elastic attributes, errors or measurement noise associated with the acquisition, processing, and inversion of prestack seismic data will propagate through the inversion products, and will lead to even larger errors in the computed attributes. To solve this problem, we have developed a two-step cascade workflow that combines linear inversion and nonlinear optimization techniques for the improved estimation of elastic attributes and better prediction and delineation of reservoir lithology and fluids. The linear inversion in the first step is an inversion scheme with a sparseness assumption, based on L1-norm regularization. This step is used to select the major reflective layer locations, followed in the second step by a nonlinear optimization process with the predefined layer structure. The combination of these two procedures produces a reasonable blocky earth model with consistent elastic properties, including the ones that are sensitive to reservoir lithology and fluid change, and thus provides an accurate approach for seismic reservoir characterization. Using PI, as one of the target elastic attributes, as an example, this workflow has been successfully applied to synthetic and field data examples. The results indicate that our workflow improves the estimation of elastic attributes from the noisy prestack seismic data and may be used for the identification of the reservoir lithology and fluid.
机译:地震衍生弹性属性,例如弹性阻抗,λ-rho,mu-rho和泊松阻抗(pi),通常用于储层特征实践。这些属性可以衍生自变频V P,V S和密度,并且通常表示对储层岩性和流体的高灵敏度。由于这种弹性属性的高灵敏度,与获取,处理和Prestack地震数据的采集,处理和反转相关的误差或测量噪声将通过反转产品传播,并且将导致计算属性中的更大误差。为了解决这个问题,我们开发了一种两步的级联工作流,将线性反转和非线性优化技术结合了改进的弹性属性估计和更好的预测和储存器岩性和流体的预测和描绘。基于L1-Norm正规,第一步骤中的线性反转是具有稀疏假设的反演方案。该步骤用于选择主反射层位置,然后通过具有预定层结构的非线性优化过程中的第二步。这两种方法的组合产生了具有一致弹性特性的合理块状地球模型,包括对储层岩性和流体变化敏感的那些,因此提供了一种准确的地震储层表征方法。使用PI作为目标弹性属性之一,例如,此工作流已成功应用于合成和现场数据示例。结果表明,我们的工作流程从嘈杂的Prestack地震数据中提高了弹性属性的估计,并且可用于识别储层岩性和液体。

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  • 来源
    《CASTANEA》 |2020年第1期|共13页
  • 作者单位

    SINOPEC Tech Houston LLC 3050 Post Oak Blvd Suite 777 Houston TX 77056 USA;

    SINOPEC Tech Houston LLC 3050 Post Oak Blvd Suite 777 Houston TX 77056 USA;

    SINOPEC Tech Houston LLC 3050 Post Oak Blvd Suite 777 Houston TX 77056 USA;

    SINOPEC Tech Houston LLC 3050 Post Oak Blvd Suite 777 Houston TX 77056 USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 植物学;
  • 关键词

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