基于压裂与生产过程综合数值模拟方法的压裂优化

S. Wei, Yan Jin, Xing-gang Liu, Yang Xia
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引用次数: 3

摘要

不断钻新井,提高页岩气藏采收率。母井的生产过程会引起储层应力变化,进而影响充填井的压裂设计。本文采用综合数值方法对水力压裂和生产过程进行了单方法模拟,从而优化了充填井的压裂方案。综合数值方法是在有限元法(FEM)的基础上提出的,称为不连续离散断裂法(DDFM)。离散断裂模型可以与传统的有限元网格结合使用,与离散断裂模型(DFM)完全兼容。通过曼德尔问题的解析解和单断裂扩展的数值解验证了DDFM的全耦合解。在预测页岩气产量时,修正了新的扩散方程来描述页岩气的流动,模拟结果与现场数据吻合较好。最后,以中国南方某页岩气储层的充填井建设为例。利用微地震资料对母井水力裂缝进行解释,并用DFM进行描述,以减少计算成本。在此基础上,利用DDFM对充填井水力裂缝进行了描述。通过模拟两口母井的生产过程,得到了当前地层压力和应力状态。以获得整个井区的最大效益为目标,通过对比不同压裂方案的产气量,选择最优的充填井压裂方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The Optimization of Infill Well Fracturing Using an Integrated Numerical Simulation Method of Fracturing and Production Processes
New wells are continuously drilled to improve the recovery of shale gas reservoirs. Production processes of parent wells will induce stress changes in the reservoir and then affect infill wells’ fracturing design. In this paper, we employed an integrated numerical method to simulate the hydraulic fracturing and production processes with single one method, thus the fracturing scheme of the infill well can be optimized. The integrated numerical method is based on the finite element method (FEM), which is named as the discontinuous discrete fracture method (DDFM). The DDFM can be used with conventional finite element mesh, which is perfectly compatible with the discrete fracture model (DFM). The fully coupled solution of DDFM is validated by two problems, including Mandel problem's analytical solution and the numerical solutions of the single fracture propagation. When predict the shale gas production, a new diffusion equation is modified to describe the shale gas flow, and the simulation results showed a good agreement with the field data. At last, this paper takes an infill well construction in a shale gas reservoir in south China as an example. The hydraulic fractures of parent wells are interpreted from micro-seismic data and described with DFM to reduce the computational cost. Then the infill well's hydraulic fractures are described using DDFM. After simulating the production process of two parent wells, we get the current formation pressure and stress state. Aims at obtaining the maximum profit of the whole well region, by comparing the gas production of different fracturing schemes, we can choose the optimal fracturing scheme of the infill well.
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