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Optimization of ionic concentrations in engineered water injection in carbonate reservoir through ANN and FGA

机译:碳酸盐储层通过ANN和FGA在碳酸盐储层中的离子浓度优化

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Engineered Water Injection (EWI) has been increasingly tested and applied to enhance fluid displacement in reservoirs.The modification of ionic concentration provides interactions with the pore wall, which facilitates the oil mobility.This mechanism in carbonates alters the natural rock wettability being quite an attractive recovery method.Currently, numerical simulation with this injection method remains limited to simplified models based on experimental data.Therefore, this study uses Artificial Neural Networks (ANN) learnability to incorporate the analytical correlation between the ionic combination and the relative permeability (Kr), which depicts the wettability alteration.The ionic composition in the injection system of a Brazilian Pre-Salt benchmark is optimized to maximize the Net Present Value (NPV) of the field.The optimization results indicate the EWI to be the most profitable method for the cases tested.EWI also increased oil recovery by about 8.7% with the same injected amount and reduced the accumulated water production around 52%, compared to the common water injection.
机译:设计的注水(EWI)已经越来越多地测试并施加以增强储层中的流体位移。离子浓度的改性提供与孔隙壁的相互作用,这有利于油迁移率。碳酸盐的机制改变了天然岩石的润湿性是非常有吸引力的恢复方法。使用该注射方法的数值模拟仍然限于基于实验数据的简化模型。因此,本研究使用人工神经网络(ANN)可学学纳入离子组合与相对渗透率(KR)之间的分析相关性,描绘了润湿性改变。巴西盐预盐基准的注射系统中的离子组成被优化,以最大化该领域的净现值(NPV)。优化结果表明EWI是案件最有利可图的方法Tested.ewi也将储存量增加约8.7%,同样注射了与普通注水相比,储存并降低了累积的水产量约为52%。

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