首页> 外文会议>Society of Petroleum Engineers Reservoir Simulation Sympoium >Multiblock methods for coupled flow-transport and compositional ?ow through porous media - Applications to the simulation of transport of reactive species and carbon sequestration
【24h】

Multiblock methods for coupled flow-transport and compositional ?ow through porous media - Applications to the simulation of transport of reactive species and carbon sequestration

机译:通过多孔介质耦合流动和组成的多帧方法 - 通过多孔介质 - 用于模拟反应性物种和碳封存的仿真

获取原文

摘要

This paper presents multiblock methods for coupled multiphase flow and species transport modeling in porous me- dia applications. These methods provide local mass conservation and a continuous approximation of fluxes across nter-element faces and sub-domain (inter-block) interfaces and can treat non-matching grids, allowing for a flexible choice of grid refinements. Furthermore, they lend themselves naturally to parallel implementations of multiphysics, multinumerics, multiscale applications of porous media flow and transport. The paper briefly introduces mortar mixed finite element methods (MMFEM) [1] for coupled porous media flow and ransport applications, followed by the main emphasis of the paper which is a novel extension of an enhanced velocity mixed finite element method (EVMFEM) [2] to similar problems flow and reactive transport. The paper also presents he formulation of a recent application of EVMFEM to such challenging problems as compositional flow simulations of CO2 sequestration, that is now widely accepted as the most feasible solution to address the growing environmental concerns due to global warming, as well as a very effective means for enhanced oil and gas recovery. Computational experiments with EVMFEM suggest that it is advantageous to apply grid refinements around wells and where plumes of chemical species are expected to be transported. Allowing for variable grid refinements greatly reduces the simulation cost (wall clock times), compared with single block fine-grid everywhere strategies, while pre- serving overall accuracy of the solution. Furthermore, initial studies indicate that the implementation is scalable in parallel simulations. For completeness, a few significant analytic results on convergence of the method are stated and referenced, omitting proof. This work is significant in advancing the understanding and application of multiblock methods in reservoir simu- ation development. Problems such as transport of chemical species in multiphase flow and CO2 sequestration have begun to assume significant importance in decisions regarding the preservation of our environment and in the safe and reliable means of delivering energy. This paper offers useful methods and some innovative future directions to address he huge computational costs involved in solving such complex problems.
机译:本文介绍了多孔ME-DIA-应用中耦合多相流动和物种传输建模的多嵌段方法。这些方法提供局部质量保护和跨越元素面和子域(间块间)接口的通量连续近似,并且可以处理非匹配网格,允许灵活地选择网格改进。此外,它们自然地为多孔,多体,多尺度应用的平行实现,多孔介质流动和运输。本文简要介绍了耦合多孔介质流量和Ransport应用的砂浆混合有限元方法(MMFEM)[1],然后是纸张的主要重点是增强速度混合有限元法(EVMFEM)的新颖延伸[2 ]对类似的问题流动和反应运输。本文还展示了最近将EVMFEM应用于这种挑战性问题,作为CO2封存的组成流动模拟,现在广泛被认为是最可行的解决方案,以解决由于全球变暖而导致的环境问题日益增长,以及非常增强石油和天然气回收的有效手段。具有EVMFEM的计算实验表明,在井周围施加栅格细化以及预期化学物质的羽毛的情况是有利的。允许可变网格改进大大降低了仿真成本(挂钟时间),与各种策略的单块微电网相​​比,在整体精度的情况下。此外,初始研究表明,该实现在并行仿真中可扩展。为了完整性,对该方法的收敛性进行了一些重要的分析结果并引用,省略了证明。这项工作在推进水库拟合发展中的多块方法的理解和应用方面具有重要意义。多相流动和CO2封存中的化学物种运输等问题已经开始在关于保护环境的决策以及提供能源的安全可靠手段的决定中具有重要意义。本文提供了有用的方法和一些创新的未来方向,以解决解决这些复杂问题所涉及的巨大计算成本。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号