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Analysis of adaptive grid refinement technique for simulations of ES-SAGD in heavy oil reservoirs

机译:稠油油藏ES-SAGD模拟的自适应网格细化技术分析

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摘要

The intrinsic advantages of hybrid steam-solvent or solvent-based thermal recovery methods for heavy oil include faster oil production, higher ultimate recovery factor, reduction of energy, and water treatment expenses, better control of GHG emission. Light hydrocarbon injection implies improved heavy oil mobilization, steam and solvent condensation, solvent to oil mixing, and oil viscosity effect at moderate temperature. Typically, field-scale reservoir simulation models are built on numerical grids with cell sizes making practically difficult accurate description of heat and mass transport at the edge of the gas chamber. Outside this zone, this typical grid can be acceptable. The adaptive grid refinement may offer a compromise solution if the numerical model accepts the necessary degree of refinement. In our current work, we present a methodology of large-scale numerical simulations for so-called expanding solvent SAGD (ES-SAGD) processes using adaptive dynamic gridding at different degrees of the refinement. The adaptive grid refinement is a Cartesian grid amalgamation process based on threshold values of predefined trigger variables. Comparison is performed between oil production mechanism interactions for typical Athabasca bitumen and illustrated with temperature and solvent concentration fields for different discretization sizes. Good adaptive grid refinement results have been obtained for the models based on adaptive implicit approach with high refinement degree, in heterogeneous reservoir (at relatively small correlation length) in vertical 2D cross-section. The numerical performance aspects including the CPU time analysis with and without the use of dynamic gridding are presented in some detail.
机译:混合蒸汽溶剂或基于溶剂的重油热采方法的固有优势包括更快的采油速度,更高的最终采收率,减少能源和水处理费用,更好地控制温室气体排放。轻烃注入意味着改善了重油的流动性,蒸汽和溶剂的冷凝,溶剂与油的混合以及在适度温度下的油粘度效应。通常,现场规模的油藏模拟模型是建立在具有网格大小的数字网格上的,这使得精确描述气室边缘的热量和质量传输变得非常困难。在此区域之外,可以使用此典型网格。如果数值模型接受必要的细化程度,则自适应网格细化可能会提供折衷解决方案。在我们当前的工作中,我们提出了在不同精化程度下使用自适应动态网格对所谓的扩展溶剂SAGD(ES-SAGD)过程进行大规模数值模拟的方法。自适应网格细化是基于预定义触发变量的阈值的笛卡尔网格合并过程。比较了典型阿萨巴斯卡沥青的采油机理之间的相互作用,并用温度和溶剂浓度场说明了不同的离散化尺寸。在垂直二维横截面的非均质油藏中(相关长度相对较小),基于基于精细化程度高的自适应隐式方法的模型已经获得了良好的自适应网格化结果。详细介绍了数字性能方面的内容,包括使用和不使用动态网格划分的CPU时间分析。

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  • 来源
    《Computational Geosciences》 |2017年第6期|937-948|共12页
  • 作者单位

    UFR Sci & Tech, Open & Expt Ctr Heavy Oil CHLOE, Av Univ,BP 1155, F-64013 Pau, France;

    UFR Sci & Tech, Open & Expt Ctr Heavy Oil CHLOE, Av Univ,BP 1155, F-64013 Pau, France|Univ Lorraine, Ecole Natl Super Elect & Mecan, Nancy, France|Bouygues Energies & Serv, 19 Rue Stephenson, F-78180 St Quentin En Yvelines, France;

    UFR Sci & Tech, Open & Expt Ctr Heavy Oil CHLOE, Av Univ,BP 1155, F-64013 Pau, France;

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

    Adaptive grid refinement; Heterogeneous reservoir; Solvent injection; ES-SAGD;

    机译:自适应网格细化;非均质油藏;溶剂注入;ES-SAGD;

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