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Advanced Simultaneous Formation Evaluation and CompletionOriented Rock Classification in the Midland Basin Using Integrated Analysis of Well logs, Core Measurements, and Geostatistical Data

机译:使用井日志,核心测量和地质统计数据的综合分析,Midland盆地的先进同步形成评估和完成的岩石分类

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Complexities in petrophysical and compositional properties as well as significant spatial heterogeneity of rock properties make formation evaluation challenging in organic-rich mudrocks. Conventional methods often overlook the importance of integrated rock classification for evaluation of formation properties, resulting in high uncertainties in estimates of mineralogy, porosity, fluid saturations, and total organic carbon content (TOC). The objectives of this paper include (a) developing an iterative workflow to simultaneously enhance formation evaluation and rock classification, (b) using the estimates of petrophysical, compositional, geochemical, and mechanical properties for completion-oriented rock classification to improve production decisions, and (c) using field-scale geostatistical analysis to extend the introduced workflow to neighboring wells without core measurements and minimizing model calibration efforts, while maintaining reliable formation evaluation results. First, we perform a joint inversion of well logs for depth-by-depth estimation of volumetric concentrations of minerals, porosity, TOC, mechanical properties, and fluid saturations by integrating information about thermal maturity and core/well-log measurements. These initial estimates are used for a preliminary petrophysical rock classification. Model parameters are updated in each rock class and are used in the second iteration for a class-by-class-based assessment of petrophysical, compositional, and mechanical properties. Spatial geostatistical analysis of formation properties is then used to select the range of neighboring wells where the developed models in each rock type is reliable. This iterative procedure is repeated until convergence of petrophysical/compositional properties in two subsequent iterations or agreement with core measurements (if available) is achieved. Finally, we perform an integrated completionoriented rock classification to determine the best rock types for completion.
机译:岩石物理和组成特性的复杂性以及岩石性能的显着空间异质性使得在有机丰富的泥虫中挑战形成评价。常规方法常常忽略了集成岩分类的重要性,以评估形成性质,导致矿物学,孔隙率,流体饱和和总有机碳含量(TOC)估计的高不确定性。本文的目的包括(a)开发迭代工作流程,以同时增强形成评估和岩石分类,(b)使用岩石物理,组成,地球化学和机械性能的估计,用于完成导向的岩石分类,以改善生产决策,以及(c)使用现场级地质稳流分析,将引入的工作流程扩展到邻近的井中而无需核心测量,并最大限度地减少模型校准工作,同时保持可靠的形成评估结果。首先,我们通过将关于热成熟度和核心/井 - 日志测量的信息集成信息,执行孔对数量的孔,孔隙,TOC,机械性能和流体饱和度的深度估计的联合反演。这些初始估计用于初步岩石物理岩石分类。每个摇滚类更新模型参数,并用于第二次迭代,用于基于逐级岩石物理,组成和机械性能的评估。然后使用形成性能的空间地质统计分析来选择每个岩型中开发的井的相邻井的范围是可靠的。重复该迭代程序,直到在后续迭代或与核心测量(如果可用)的两个后续迭代或协议中的岩石物理/组成特性的收敛性。最后,我们执行一个集成的完整的Rock分类,以确定完成的最佳岩石类型。

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