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A new model of acid fracturing based on boundary element method coupled with multi-field multi-phase process

机译:基于边界元方法和多场多相过程的酸化压裂新模型

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In this research, the thermal-hydro-mechanical-chemistry coupling process involved in acid fracturing is simulated using 2D displacement discontinuity method combined with the finite volume method. Temperature field models, acid flow models, and acid rock reaction models are also established based on material conservation and energy conservation criteria. And the new acid fracturing method is used to solve the problem of rock deformation, fluid interference, fracture opening, temperature, acid rock reaction, multiphase flow, and carbon dioxide characteristics coupling. Simulations of larger scale acid fracturing are carried out to analyze the influence of injection rate, initial acid concentration, acid viscosity and initial reservoir temperature, and acid temperature on the bottom of the well on optimizing acidizing design. The results show: the acid rock reaction and its reaction product have a significant influence on the fracture extension. And the coupled process and the influence of carbon dioxide are necessary to be considered when studying the acid fracturing process. For obtaining as long as possible effective penetration distance of the acid, a larger injection rate can be selected, a larger initials acid concentration, a lower acid viscosity and a lower acid temperature at the bottom of the well.
机译:在这项研究中,利用二维位移不连续性方法与有限体积方法相结合,模拟了酸压裂过程中的热-水-力-化学-化学耦合过程。基于材料节约和节能标准,还建立了温度场模型,酸流模型和酸岩反应模型。并采用新的酸压裂法解决了岩石变形,流体干扰,裂缝张开,温度,酸岩反应,多相流和二氧化碳特征耦合的问题。进行了大规模的酸化压裂模拟,以分析注入速率,初始酸浓度,酸粘度和初始储层温度以及井底温度对优化酸化设计的影响。结果表明:酸岩反应及其反应产物对裂缝扩展有重要影响。在研究酸压裂过程时,必须考虑耦合过程和二氧化碳的影响。为了获得尽可能长的酸有效渗透距离,可以选择较大的注入速率,较大的初始酸浓度,较低的酸粘度和较低的底部酸温度。

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