基于全耦合地质力学和DFN模型的裂缝扩展模拟研究

Wei Li, Yangyi Xing, Haijie Zhang, Tongtong Luo, Wenhong Li, Jinpeng He, Xingning Huang, Thanapol Singjaroen, Piyanuch Kieduppatum
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引用次数: 0

摘要

页岩气藏具有气丰度低、渗透率差、天然产能低于工业油流下限、地层能量下降快等特点。目前,这类低孔低渗油藏的开发普遍采用水平井钻井和分段水力压裂技术。储层中水平井的长井段和压裂形成的水力裂缝是储层深层气体流向井筒的“地下高速公路”。它们的结合可以大大提高储层油气资源的生产动态。水平井分段多簇压裂是实现页岩气高产的关键技术。现场井下射孔成像和分布式光纤温度声监测结果表明,压裂过程中,各裂缝簇均存在明显的不均匀液体流入和膨胀现象。相关研究结果还表明,储层非均质性和多缝扩展引起的应力干扰等因素是水力裂缝扩展不均匀的主要原因。因此,基于弹性力学和裂缝力学基本理论的数值模拟方法可以模拟压裂段内各裂缝簇的复杂平衡扩展,以提高水平井段水力裂缝的覆盖范围,揭示上述工程地质因素如何影响和控制裂缝扩展。利用裂缝扩展模型对深层页岩气水平井压裂处理段的模拟结果与微震监测结果吻合较好,对加快开发难开发资源、保障天然气资源供应具有明显意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Study on Fracture Propagation Simulation with the Integration of Fully-Coupled Geomechanical and DFN Modeling
Shale gas reservoirs are characterized in low gas abundance, poor permeability, lower natural productivity than the lower limit of industrial oil flow, and rapid formation energy decline. At present, the technology of horizontal well drilling and staged hydraulic fracturing is widely used for the exploitation of such low-porosity and low-permeability reservoirs. The long well section of the horizontal well in the reservoir and the hydraulic fractures formed by fracturing act as the "underground expressway" for the deep gas in the reservoir to flow toward the wellbore. Their combination can greatly increase the production performance of the oil and gas resources in the reservoir. Staged multi-cluster fracturing in horizontal wells is the key technology to achieve the profitable shale gas production. The results of on-site downhole perforation imaging and distributed optical fiber temperature and acoustic monitoring show that there are obvious non-uniform liquid inflow and expansion phenomena in each cluster of fractures during the fracturing process. Relevant research results also show that factors such as the heterogeneity of the reservoir and the stress interference caused by the propagation of multiple fractures are the main causes of the non-uniform propagation of hydraulic fractures. Therefore, it is accessible to simulate the complex balanced expansion of each cluster of fractures in the fracturing section to improve the coverage of hydraulic fractures in the horizontal well section with numerical simulation methods based on the basic theory of elasticity and fracture mechanics, to reveal how the above engineering geological factors influence and control the fracture propagation. The results of the simulation of the fracturing treatment section of the deep shale gas horizontal well by the fracture propagation model are consistent with the micro-seismic monitoring results,which has obvious significance for accelerating the exploitation of difficult-to-exploit resources and guaranteeing the supply of gas resources.
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