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A nonlinear approach for predicting pore pressure using genetic algorithm in one of the Iranian petroleum carbonate reservoirs

机译:一种在伊朗石油碳酸盐储层中遗传算法预测孔隙压力的非线性方法

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摘要

The fluid pressure within a formation pores is called the pore pressure in petroleum engineering. The estimation of pore pressure is a challenging task during a reservoir's life cycle. An impermeable rock, such as shale, confides the fluids which lead to anomalously high pressures. Besides, during the exploitation life of a reservoir, the pressure reduces in the reservoir. The estimation of these high-risk pore pressures is an essential task in planning for infill drilling and field development. Herein, we propose a nonlinear model for pore pressure estimation, using a genetic algorithm. We compare our method with two of the classical linear methods for pore pressure estimation, the modified Eaton method and the Bowers method, using the Modular Formation Dynamics Tester (MDT) and well logs data related to an Iranian oil-bearing carbonate reservoirs. The results of the nonlinear estimation models showed higher accuracy and less uncertainty than the other models. The studied oil field is in the development phase; therefore, a reliable estimation of pore pressure decreases the future drillings risks and can find application in hydraulic fracturing, completion, and cement works operations.
机译:地层孔内的流体压力称为石油工程中的孔隙压力。孔隙压力的估计是储层生命周期中的一个具有挑战性的任务。一种不透水的岩石,如页岩,旨在透过大气压的流体。此外,在储层的开发寿命期间,压力在储层中减少。这些高风险孔隙压力的估计是规划筛分钻井和现场发展的必要任务。这里,使用遗传算法提出了一种用于孔隙压估计的非线性模型。我们将我们的方法与孔隙压力估计的两种经典线性方法进行比较,使用模块化形成动力学测试仪(MDT)和与伊朗含油碳酸盐储层相关的数据和井数数据。非线性估计模型的结果表明,比其他模型更高,不确定度较少。学习的油田正在开发阶段;因此,可靠地估计孔隙压力降低了未来的钻孔风险,并且可以在液压压裂,完成和水泥作业中找到应用。

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