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Pore to pore validation of pore network modelling against micromodel experiment results

机译:针对微模型实验结果的孔隙网络建模的孔隙验证

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Pore network modelling (PNM) has been widely used to study the multiphase flow and transport in porous media. Although a number of recent papers discussed the PNM validation on core-scale parameters such as permeability, relative permeability and capillary pressure; quantitative predictive potential of PNM on pore by pore basis has rarely been studied. The aim of this paper is to present a direct comparison between PNM simulations and corresponding micro-model experiments at the same scale and the same geometry. A number of well-defined and constrained two-phase flow in porous medium experimental scenarios were utilized to validate the physics solving part in PNM (filling rules, capillary and viscous pressure). This work validates that a dynamic pore network flow solver can predict two-phase flow displacements for these experiments for drainage situations at both pore and plug scales. A glass-etched micro-model is used to quantify the accuracy of a dynamic PNM solver on pore and core levels. Two-phase drainage micro fluidic experiments at different flow conditions are performed on micro-models. PNM simulations are performed on the same pattern and flow conditions as used in micro-model experiments. The two-phase distribution extracted from experiment images is registered onto rsults of PNM simulations for direct pore to pore comparison. Pore-scale matching level is found at around 75 % for all three test cases. The matching level of core-scale parameters such as S (w c) and oil-phase permeability varies from case to case; the relative error to micro-model experiment measurements varies from 15 to 60 %. Possible reasons leading to discrepancies on core-scale parameters are discussed: missing considerations during validation of the combination of uncertainty in both simulator input parameters and experiments are seen as the principal factors.
机译:孔网络建模(PNM)已被广泛用于研究多孔介质中的多相流动和传输。尽管最近有许多论文讨论了对岩心尺度参数(如渗透率,相对渗透率和毛细管压力)的PNM验证;很少研究基于孔的PNM的定量预测潜力。本文的目的是在相同比例和相同几何条件下,对PNM模拟与相应的微模型实验进行直接比较。在多孔介质实验场景中,使用了许多定义明确且受约束的两相流,以验证PNM中的物理求解部分(填充规则,毛细管压力和粘性压力)。这项工作验证了动态孔隙网络流量求解器可以针对这些实验在孔隙和塞尺尺度下的排水情况下预测两相流位移。玻璃蚀刻的微观模型用于量化动态PNM求解器在孔隙和岩心水平上的精度。在微模型上进行了在不同流动条件下的两相排水微流体实验。 PNM模拟是在与微模型实验相同的模式和流动条件下进行的。从实验图像中提取的两相分布被记录到PNM模拟的结果中,以便直接进行孔与孔的比较。对于所有三个测试用例,发现孔尺度匹配水平约为75%。 S(w c)和油相渗透率等核心尺度参数的匹配水平因情况而异;相对于微模型实验测量的相对误差为15%至60%。讨论了导致核心尺度参数差异的可能原因:在模拟器输入参数和实验的不确定性组合验证过程中缺少考虑因素是主要因素。

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