首页> 外文期刊>Journal of Hydrology >Fluid dynamic modeling of multiphase flow in heterogeneous porous media with matrix, fracture, and skin
【24h】

Fluid dynamic modeling of multiphase flow in heterogeneous porous media with matrix, fracture, and skin

机译:用基质,裂缝和皮肤流体流体动力学模拟多相流动的多相流动

获取原文
获取原文并翻译 | 示例
           

摘要

Underground contaminants such as non-aqueous phase liquids (NAPLs) or volatile organic compounds (VOCs) threaten public safety and health. The presence of fractures or regions of high permeability significantly limits the recovery due to the contrast in the capillary pressures of the low- and high-permeability regions. We previously proposed a methodology to improve the recovery of liquids upon gas injection process from a porous system with a percolating network of fractures. This methodology uses a high capillary pressure skin at the production well and controls the injection pressure below a threshold value for the breakthrough. In this paper, a mixed finite element method is employed to model the gas-water drainage process in a porous medium containing, matrix, fracture, and skin. An additional mixed-layer is also used to account for the mixing of the solid particles at the boundaries between the matrix, fracture, and skin. The mathematical model for immiscible gas-water displacement in the heterogeneous porous medium is implemented in COMSOL Multiphysics (R). The model successfully captures the dynamics of the injection pressure and fluid recovery with and without gravitational effects. The model is developed to predict the injection pressure corresponding to gas breakthrough. By injecting the gas phase at a pressure below this threshold value, the gas breakthrough can be significantly postponed. During this delayed time, more liquid recovery is expected. The model is verified with experiments using a constant injection rate scheme. We also study the optimal operation by considering recovery factor and process time as the variables, in horizontal gas injection case. Without the use of high capillary pressure skin and pressure control scheme, the ultimate recovery from porous medium is limited to that from the fracture only, (approximately 9% pore volume or PV). Using the skin and pressure control, the model predicts the recovery values to be increased by one order of magnitude, which is in agreement with the experimental data. The computational fluid dynamic (CFD) model can be used for process control and optimization to achieve optimal recovery conditions in remediation and enhanced oil recovery (EOR).
机译:诸如非水相液体(NaPLS)或挥发性有机化合物(VOCS)的地下污染物威胁着公共安全和健康。由于低渗透性区域的毛细管压力的对比度,骨折或高渗透率的裂缝或区域显着限制了恢复。我们之前提出了一种方法,以改善气体喷射过程的液体从多孔系统的腐蚀性裂缝的渗透过程中的回收。该方法使用生产井的高毛细管压力皮肤,并将喷射压力低于阈值的突破。在本文中,采用混合有限元法在含有,基质,裂缝和皮肤的多孔介质中模拟气排水过程。另外的混合层也用于考虑固体颗粒在基质,裂缝和皮肤之间的边界处的混合。异源多孔介质中不混溶的气体水位位移的数学模型在COMSOL Multiphysics(R)中实施。该模型成功地捕获了注射压力的动态和流体回收,无需引力效应。开发模型以预测对应于气体突破的喷射压力。通过在低于该阈值的压力下注入气相,可以显着推迟气体突破。在此延迟时间期间,预期更多的液体恢复。使用恒定注射速率方案进行实验验证该模型。我们还通过将恢复因子和处理时间视为横向气体喷射箱来研究最佳操作。在不使用高毛细管压力皮肤和压力控制方案的情况下,来自多孔介质的最终回收仅限于裂缝(约9%孔隙体积或PV)。使用皮肤和压力控制,该模型预测恢复值增加一个幅度,这与实验数据一致。计算流体动力学(CFD)模型可用于过程控制和优化,以实现修复和增强的采油(EOR)中的最佳恢复条件。

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