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Computational Method for Relative Permeability Curves based on the Bernoulli Generalized Porous Media Equations

机译:基于Bernoulli广义多孔介质方程的相对渗透曲线计算方法

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Obtaining the relpenn curves as a result of multiphase flow calculation immediately in the porous media can be of current interest. Some researches have been carried out to date where relperms are derived by solving the Navier-Stokes equations for communicating pore channels Those approaches have two significant drawbacks: (1) need to reconstruct the pore space based on the core CT scanning, and (21 intensive work for solving the Navier-Stokes equation system which requires supercomputers. The results of our work help to compute relperm curves using normal computers We were able to do this due to several factors: (1) simplified pore space reconstruction based on capillary curve data, (2) using the flow-cluster notion as an element that averagely describe the pore space geometry, and (3) using the Bernoulli generalized two-phase flow equation. This approach helped to compute the relpenn curves within plausible timing and compare them with actual test curves. We demonstrate that a material factor to affect the relperm curve shape is the pressure loss due to interfacial forces. We propose the empirical functions and parameters to simulate those effects. The computed relperm curves show a pretty good match with the actual test results.
机译:获得Relpenn曲线作为多相流量计算的立即在多孔介质中可以是当前的兴趣。一些研究已经进行了到relperms通过求解Navier-Stokes方程为连通孔通道衍生日期这些方法有两个显著缺点:(1)需要重建基于核心CT扫描孔隙空间,和(21密集解决需要超级计算机的Navier-Stokes公式系统的工作。我们的工作结果有助于使用正常计算机计算relperm曲线,我们能够通过多种因素来执行此操作:(1)基于毛细管曲线数据的简化孔隙空间重建, (2)使用流量集群概念作为平均描述孔隙空间几何形状的元素,(3)使用Bernoulli广义的两相流程方程。这种方法有助于计算合理的定时内的Relpenn曲线,并将它们与实际进行比较测试曲线。我们证明了影响relperm曲线形状的物质因素是由于界面力引起的压力损失。我们提出了经验职能和p arameters模拟这些效果。计算的relperm曲线显示出与实际测试结果相匹配。

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