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An optimization framework for sandstone acidizing using design of experiment (DOE) and mathematical modelling

机译:使用实验设计的砂岩优化框架(DOE)和数学建模

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Fluoroboric acid (HBF4) serve as one of the alternatives for conventional mud acid in the application of sandstone wells stimulation. Various parameters such as formation temperature and acid injection velocity would significantly affect the performance of sandstone acidizing and hence determine the success rate of well stimulation. It is therefore undeniable that a deep understanding of the effects of these major parameters are of paramount importance. However, there is a scarcity of data available in the literature regarding the use of HBF4 in sandstone acidizing in comparison to the use of mud acid. In this work, an optimization framework is developed to study the combined effects of formation temperature and acid injection velocity to the change in porosity and pressure drop. Apart from porosity improvement, a pressure drop across the sandstone core would also give an indication to the acidizing performance. The optimization approach is achieved by using design of experiment (DOE) and response surface methodology, coupled with a mechanistic model for sandstone acidizing. The design of experiment used in this work is central composite design (CCD). Meanwhile, the mechanistic model that simulate a flow in porous media is being developed using COMSOL Multi-physics, which is a computational fluid dynamics (CFD) software that uses finite element method (FEM). In this optimization tool, a range of formation temperature was set between 41°C and 88'C. whereas the range of acid injection velocity was set between 1.79 X 10~(-5) m/s to 3.78 X 10~(-5) m/s. According to the results, the optimum condition studied was found out to be 88'C and 3.78 X 10~(-5) m/s. Under such an operating condition, the favourable maximum porosity enhancement and pressure drop profile were obtained. The maximum porosity and pressure drop were up to 17% and 16.6979 kPa respectively. The porosity enhancement and pressure drop in the sandstone core showed an excellent agreement with the data predicted by the model. In general, this optimization study had proven that response surface methodology (RSM) could be applied to determine the acid performance in sandstone acidizing.
机译:氟硼酸(HBF4)作为常规泥酸在砂岩孔刺激的溶液中的替代方案之一。诸如形成温度和酸注射速度的各种参数将显着影响砂岩酸化的性能,因此确定良好刺激的成功率。因此,不可否认的是,对这些主要参数的影响深入了解重要的重要性。然而,与使用泥酸相比,有关使用HBF4在砂岩中的使用的文献中可用的数据缺乏。在这项工作中,开发了优化框架以研究地层温度和酸注射速度与孔隙率和压降变化的组合效果。除了孔隙率改善之外,砂岩核心的压降还将表明酸化性能。通过使用实验(DOE)和响应面方法的设计实现优化方法,与砂岩酸化的机械模型相结合。本作工作中使用的实验设计是中央复合设计(CCD)。同时,使用COMSOL多物理开发了模拟多孔介质流动的机制模型,这是一种使用有限元方法(FEM)的计算流体动力学(CFD)软件。在该优化工具中,在41°C和88'C之间设定了一系列地层温度。而酸注射速度范围设定为1.79×10〜( - 5)m / s至3.78×10〜(-5)m / s。根据结果,研究的最佳条件被发现为88' C和3.78 x 10〜(5)m / s。在这种操作条件下,获得了有利的最大孔隙率增强和压降曲线。最大孔隙率和压降分别高达17%和16.6979 kPa。孔隙率在砂岩岩心增强和压降显示出与由模型预测的数据极好的一致。一般来说,这种优化研究已经证明,响应面分析法(RSM)可以被应用于确定在砂岩酸化的酸的性能。

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