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Optimizing ydraulic racturing esign for hale as roduction through umerical imulations

机译:优化HALE用Umerical IMULATION的液压压裂设计

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Hydraulic fracturing stimulation is one of the key technologies for shale gas development. The recent advances in micro- seismic data acquisition and processing suggest that hydraulic fracturing stimulation has often resulted in complex fracture network due to the pre-existing natural fractures. Modeling hydraulic fracturing processes needs to couple in-situ stress response and flow of engineered fluid that includes water, proppant and other chemicals. Moreover, the high Reynolds number indicates that the flow in the hydraulic fracturing processes is either in transition or turbulent flow regime. Consequently, the resulting mathematical model is complex and needs to be numerically solved. In this paper, we have developed a hydraulic fracturing model considering the in-situ stress response to turbulent flow process. The mixed finite element method is employed for numerical solution of the resulting system of coupled nonlinear partial different equations. The proposed model has been validated with bi-wing hydraulic fracture model through regression tests. The preliminary numerical results show the significant differences in hydraulic fracture growth in comparison with the models that assume laminar flow in hydraulic fracturing processes. We have also integrated proposed hydraulic fracturing model into a numerical reservoir simulator and are currently conducting field-scale numerical simulation studies. The preliminary results also suggest that the proposed model is also capable of modeling the interactions between the hydraulic fracture and pre-existing natural fractures based on initial fracture mapping. The proposed model provides an opportunity to optimize hydraulic fracturing stimulation design through numerical simulations, which is vital in unconventional reservoir production.
机译:液压压裂刺激是页岩气体开发的关键技术之一。微地震数据采集和加工的最近进步表明,由于预先存在的自然骨折,液压压裂刺激通常导致复杂的骨折网络。建模液压压裂过程需要对包括水,支撑剂和其他化学品的工程液体的原位应力反应和流动。此外,高雷诺数表示液压压裂过程中的流动在过渡或湍流状态。因此,得到的数学模型是复杂的并且需要在数值上解决。在本文中,我们开发了一种液压压裂模型,考虑到湍流过程的原位应力反应。混合有限元法用于耦合非线性部分不同方程的所得系统的数值解。拟议的模型通过回归测试用双翼液压骨折模型进行了验证。初步数值结果表明,与采用液压压裂过程中的层流程的模型相比,液压骨折增长的显着差异。我们还将提出的液压压裂模型集成到数值水库模拟器中,目前正在进行现场规模的数值模拟研究。初步结果还表明,所提出的模型还能够基于初始断裂测绘来建模液压断裂和预先存在的自然骨折之间的相互作用。该拟议的模型提供了通过数值模拟优化液压压裂刺激设计的机会,这对于非传统的储层生产至关重要。

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