基于积分-微分-摄动耦合方法的无流边界压敏油藏非稳态机械地层损伤建模

F. Fernandes, A. Braga, Petrobras Ant°audio Soares
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摘要

在油田开发过程中,无流层的识别和机械地层损伤管理对于成功的勘探和生产活动至关重要。本文提出了一种新的非稳态二维(2d)积分微分解,用于无限密封断层附近井的渗透率损失监测。该模型允许用油源项求解非线性水力扩散方程(NHDE)。对于无限密封屏障,适当的格林函数(GF)代表了油井的瞬时油点源/汇效应。基于图像法(IM),用两个指数积分函数Ei(tD)的和给出了恒渗透率解的压力场。然而,该方案没有考虑压敏渗透率损失引起的非线性效应。导出了一个新的偏差因子ξ(p),并将其与渐近一阶级数展开相耦合以处理这一现象。该模型还允许在井-储生产曲线中评估油流量对渗透率损失的影响。灵敏度分析研究了对扩散系数偏差系数影响较大的参数。压力和渗透率输入数据是通过在巴西海上油田同一储层的两个砂岩层进行单轴测试获得的。本文采用广泛应用于油藏工程的多孔介质油流模拟器IMEX®对解析解进行了标定,结果准确。结果表明,与半对数图的线性解相比,渗透率的瞬时衰减效应有一个偏差。所提出的解决方案的主要优点是准确性、GFs综合表的可用性、易于实现和节省计算成本。它是一种有价值和有吸引力的数学工具,用于校准新模型和支持井-油藏动态管理。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Unsteady-State Mechanical Formation Damage Modeling in Pressure-Sensitive Oil Reservoirs Near No-Flow Boundaries Using a Coupled-Integro-Differential-Perturbation Method
Identification of no-flow zones and mechanical formation damage management are essential for a successful exploratory and production campaign during the development of an oil field. This work develops a new unsteady-state two-dimensional (2-D) integro-differential solution for permeability loss monitoring in a well near an infinite sealing fault. The model presented in this study allows solving the nonlinear hydraulic diffusivity equation (NHDE) with the oil source term. The proper Green's Function (GF) for an infinite sealed barrier represents the well's instantaneous oil point-source/sink effect. Based on image method (IM), the pressure field for the constant permeability solution is given by the sum of two exponential integral functions Ei(tD). However, this solution does not consider the nonlinear effect caused by pressure-sensitive permeability loss. A new deviation factor ξ(p) is derived and coupled to an asymptotic first-order series expansion to deal with this phenomenon. The model also allows for evaluating the oil flow rate influence on the permeability loss during the well-reservoir production curve. Sensitivity analysis investigates the parameters that highly influence the diffusivity deviation factor. Pressure and permeability input data were obtained through a uni-axial test performed in two sandstone layers of the same reservoir rock in an offshore field in Brazil. The analytical solution addressed in this paper was calibrated by a porous media oil flow simulator named IMEX®, broadly used in reservoir engineering works, and the results were accurate. The results present the instantaneous permeability decay effect by a deviation compared to the linear solution in a semi-log plot. The main advantages of the proposed solution are the accuracy, availability of a comprehensive table of the GFs, ease of implementation, and computational cost savings. It constitutes a valuable and attractive mathematical tool to calibrate new models and support well-reservoir performance management.
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