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Coupling simulation of multistage pulse conflagration compression fracturing

机译:多级脉冲爆燃压缩压裂的耦合模拟

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Due to the transient and multi-field coupling complexity of the multistage pulse conflagration compression fracturing, the coupling solution method for it was established, and the simulation calculation and field application analysis was conducted. The whole process of conflagration compression fracturing was divided into five subsystems: propellants conflagration loading, piezoresistive liquid column movement, perforation discharge, fracture initiation and dynamic extension. Based on the given assumptions, the kinetic model of each subsystem was built, and the coupling solution method of multistage pulse deflagration compression fracturing process was obtained using the node system analysis method. With the coupling solution method, a reasonable range of propellants charge can be calculated and the dynamic prediction of the conflagration pressure and fracture shape can be realized. Through simulation calculation, the changes of propellants conflagration pressure, piezoresistive gas-liquid interface displacement and fracture length were analyzed, and the whole process was divided into five phases by the time. The field application results indicate that the multistage pulse conflagration compression fracturing conducted based on the coupling solution method can fracture the reservoir successfully and reduce the breakdown pressure, making sure that the follow-up measures are carried out smoothly.
机译:针对多级脉冲爆燃压缩压裂的瞬态和多场耦合复杂性,建立了其耦合求解方法,并进行了仿真计算和现场应用分析。燃烧压缩破裂的整个过程分为五个子系统:推进剂燃烧负荷,压阻液柱运动,射孔射孔,裂缝萌生和动态扩展。在给定假设的基础上,建立了各个子系统的动力学模型,并采用节点系统分析方法,得到了多级脉冲爆燃压缩压裂过程的耦合解方法。采用耦合解法,可以计算出一定范围的推进剂装药量,可以实现对燃烧压力和断裂形状的动态预测。通过仿真计算,分析了推进剂燃烧压力,压阻气液界面位移和断裂长度的变化,按时间将整个过程分为五个阶段。现场应用结果表明,基于耦合解法进行的多级脉冲爆燃压缩压裂可以成功地使储层压裂,降低破裂压力,确保后续措施的顺利进行。

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