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Integration of dynamic data into reservoir description using streamline approaches

机译:使用流线型方法将动态数据集成到储层描述中

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摘要

Integration of dynamic data is critical for reliable reservoir description and has been an outstanding challenge for the petroleum industry. This work develops practical dynamic data integration techniques using streamline approaches to condition static geological models to various kinds of dynamic data, including two-phase production history, interference pressure observations and primary production data. The proposed techniques are computationally efficient and robust, and thus well-suited for large-scale field applications. We can account for realistic field conditions, such as gravity, and changing field conditions, arising from infill drilling, pattern conversion, and recompletion, etc., during the integration of two-phase production data. Our approach is fast and exhibits rapid convergence even when the initial model is far from the solution. The power and practical applicability of the proposed techniques are demonstrated with a variety of field examples. To integrate two-phase production data, a travel-time inversion analogous to seismic inversion is adopted. We extend the method via a 'generalized travel-time' inversion to ensure matching of the entire production response rather than just a single time point while retaining most of the quasi-linear property of travel-time inversion. To integrate the interference pressure data, we propose an alternating procedure of travel-time inversion and peak amplitude inversion or pressure inversion to improve the overall matching of the pressure response. A key component of the proposed techniques is the efficient computation of the sensitivities of dynamic responses with respect to reservoir parameters. These sensitivities are calculated analytically using a single forward simulation. Thus, our methods can be orders of magnitude faster than finite-difference based numerical approaches that require multiple forward simulations. Streamline approach has also been extended to identify reservoir compartmentalization and flow barriers using primary production data in conjunction with decline type-curve analysis. The streamline 'diffusive' time of flight provides an effective way to calculate the drainage volume in 3D heterogeneous reservoirs. The flow barriers and reservoir compartmentalization are inferred based on the matching of drainage volumes from streamline-based calculation and decline type-curve analysis. The proposed approach is well-suited for application in the early stages of field development with limited well data and has been illustrated using a field example from the Gulf of Mexico.
机译:动态数据的集成对于可靠的储层描述至关重要,并且对石油工业来说是一个巨大的挑战。这项工作使用流线方法开发实用的动态数据集成技术,以将静态地质模型条件化为各种动态数据,包括两相生产历史,干扰压力观测值和主要生产数据。所提出的技术在计算上是有效且健壮的,因此非常适合于大规模现场应用。在整合两阶段生产数据期间,我们可以考虑到现实的现场条件,例如重力,以及由填充钻探,模式转换和重新完成等引起的不断变化的现场条件。即使初始模型离解决方案很远,我们的方法也很快并且展现出快速的收敛性。所提出的技术的力量和实际适用性通过各种现场实例得到了证明。为了整合两相生产数据,采用类似于地震反演的行程时间反演。我们通过“广义行程时间”反演扩展了该方法,以确保整个生产响应的匹配,而不是单个时间点的匹配,同时保留了行程时间反演的大部分准线性特性。为了整合干扰压力数据,我们提出了行进时间反演和峰值振幅反演或压力反演的交替过程,以改善压力响应的整体匹配性。所提出的技术的关键组成部分是关于储层参数的动态响应敏感性的有效计算。使用单个正向仿真分析地计算这些灵敏度。因此,我们的方法可以比需要多次正向仿真的基于有限差分的数值方法快几个数量级。流水线方法也已扩展为使用主要生产数据结合下降类型曲线分析来识别储层分隔和流动障碍。流线型“扩散”飞行时间提供了一种有效的方法来计算3D非均质油藏中的排水量。根据基于流线的计算和下降类型曲线分析得出的排水量的匹配,可以推断出流动障碍和储层分隔。所提出的方法非常适合在有限的井数据的情况下用于油田开发的早期阶段,并已使用墨西哥湾的油田实例进行了说明。

著录项

  • 作者

    He Zhong;

  • 作者单位
  • 年度 2004
  • 总页数
  • 原文格式 PDF
  • 正文语种 en_US
  • 中图分类

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