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A compositional simulation model for carbon dioxide flooding with improved fluid trapping.

机译:具有改进的流体捕集的二氧化碳驱的组成模拟模型。

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摘要

A new formulation for fluid trapping using a dual-media approach which includes compositional trapping and interphase mass transfer was developed, coded, and validated. This formulation does not exist in notable commercial reservoir simulators. The formulation was incorporated into a three-dimensional, three-phase, parallel compositional simulator to simulate carbon dioxide (CO 2) water-alternating-gas (WAG) injection. Fluid phase trapping is both a channeling issue and a pore-scale issue. Pore-scale phase trapping is strongly related to hysteresis in the relative permeability and capillary pressure; the simulator incorporates them in a methodology consistent with these issues. New algorithms were developed to implement the CO 2 solubility in water and oil and CO2 phase trapping in a way that preserves the mass balance of the oil, water, and gas phases. The new simulator was implemented using a parallel infrastructure to facilitate computationally intensive fine grid systems.;For test examples, we focused on a mixed wet carbonate reservoir in the Middle East. These tests were used to evaluate the significance of various trapping scenarios. Compositional trapping, gas relative permeability hysteresis, CO2 solubility in water, and permeability heterogeneity were found to have significant impacts on oil recovery and timing, as well as CO 2 storage and utilization during waterflood and CO2 WAG processes.
机译:开发,编码和验证了一种使用双介质方法捕获流体的新配方,该方法包括成分捕获和相间传质。该公式在著名的商业油藏模拟器中不存在。将该制剂掺入三维,三相,平行组成的模拟器中,以模拟二氧化碳(CO 2)水交替气(WAG)的注入。液相捕获既是通道问题,也是孔垢问题。孔相捕集与相对渗透率和毛细管压力的滞后关系密切。模拟器将它们纳入与这些问题一致的方法中。开发了新的算法来实现在水和油中的CO 2溶解度以及捕集CO 2的方式,从而保持油,水和气相的质量平衡。新的模拟器是使用并行基础结构实施的,以促进计算密集型精细网格系统的使用。对于测试示例,我们重点研究了中东的一个混合湿碳酸盐储层。这些测试用于评估各种诱捕方案的重要性。研究发现,组分捕集,气体相对渗透率滞后,CO2在水中的溶解度和渗透性非均质性对注油和采油时间以及注水和CO2 WAG过程中的CO 2储存和利用有重大影响。

著录项

  • 作者

    Brown, Jeffrey S.;

  • 作者单位

    Colorado School of Mines.;

  • 授予单位 Colorado School of Mines.;
  • 学科 Petroleum engineering.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 558 p.
  • 总页数 558
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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