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Upscaling in Vertically Fractured Oil Reservoirs Using Homogenization

机译:利用均质化技术改造垂直裂缝油藏

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Flow modeling in fractured reservoirs is largely confined to the so-called sugar cube model. Here, however, we consider vertically fractured reservoirs, i.e., the situation that the reservoir geometry can be approximated by fractures enclosed columns running from the base rock to the cap rock (aggregated columns). This article deals with the application of the homogenization method to derive an upscaled equation for fractured reservoirs with aggregated columns. It turns out that vertical flow in the columns plays an important role, whereas it can be usually disregarded in the sugar cube model. The vertical flow is caused by coupling of the matrix and fracture pressure along the vertical faces of the columns. We formulate a fully implicit three-dimensional upscaled numerical model. Furthermore, we develop a computationally efficient numerical approach. As found previously for the sugar cube model, the Peclet number, i.e., the ratio between the capillary diffusion time in the matrix and the residence time of the fluids in the fracture, plays an important role. The gravity number plays a secondary role. For low Peclet numbers, the results are sensitive to gravity, but relatively insensitive to the water injection rate, lateral matrix column size, and reservoir geometry, i.e., sugar cube versus aggregated column. At a low Peclet number and sufficiently low gravity number, the effective permeability model gives good results, which agree with the solution of the aggregated column model. However, ECLIPSE simulations (Barenblatt or Warren and Root (BWR) approach) show deviations at low Peclet numbers, but show good agreement at intermediate Peclet numbers. At high Peclet numbers, the results are relatively insensitive to gravity, but sensitive to the other conditions mentioned above. The ECLIPSE simulations and the effective permeability model show large deviations from the aggregated column model at high Peclet numbers. We conclude that at low Peclet numbers, it is advantageous to increase the water injection rate to improve the net present value. However, at high Peclet numbers, increasing the flow rate may lead to uneconomical water cuts.
机译:裂缝储层中的流动模型在很大程度上局限于所谓的方糖模型。但是,在这里,我们考虑了垂直裂缝的储层,即储层的几何形状可以通过从基岩到盖层的裂缝封闭柱(聚集柱)来近似。本文探讨了均质化方法的应用,以导出带有聚集柱的裂缝性储层的放大方程。事实证明,塔中的垂直流起着重要的作用,而通常在方糖模型中可以忽略不计。垂直流动是由基体和沿柱的垂直面的断裂压力的耦合引起的。我们制定了一个完全隐式的三维放大数值模型。此外,我们开发了一种计算有效的数值方法。如先前对于方糖模型所发现的,Peclet数,即基质中的毛细扩散时间与流体在裂缝中的停留时间之间的比率起着重要的作用。重力数起次要作用。对于低Peclet数,结果对重力敏感,但对注水速率,侧向基质柱尺寸和储层几何形状(即方糖和聚集柱)相对不敏感。在低Peclet数和足够低的重力数的情况下,有效渗透率模型给出了良好的结果,与聚集柱模型的解一致。但是,ECLIPSE模拟(Barenblatt或Warren and Root(BWR)方法)在低Peclet数下显示出偏差,但在中等Peclet数下显示出良好的一致性。在高Peclet数下,结果对重力相对不敏感,但对上述其他条件敏感。 ECLIPSE模拟和有效渗透率模型显示在高Peclet数下与聚集柱模型有较大偏差。我们得出的结论是,在低Peclet数下,增加注水速率以提高净现值是有利的。但是,在高Peclet数时,增加流速可能会导致不经济的含水率。

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