非常规烃源岩水平井多级压裂井簇距优化设计流程

Rabah Mesdour, Moemen Abdelrahman, Abdulbari Alhayaf
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摘要

在过去的十年中,水平井钻井和多级水力压裂在非常规油藏中得到了应用,以创造更大的裂缝面积,提高油井产能。储层质量与射孔簇间距和裂缝分级的结合是水平井水力压裂成功的关键。这项工作的目的是通过整合地质、水力压裂和储层建模,建立和校准一个动态模型,利用模拟和分析模型来优化在烃源岩储层中钻井的水平井簇的数量和其他完井参数。本研究采用的方法包括地质、岩石物理和生产数据分析,以评估储层和完井质量,并量化压裂段内的非均质性和射孔簇数量。假设所有射孔簇均匀分布在一级内。利用假设的水力刨床裂缝属性和地面产量测量数据,结合生产剖面对储层模型进行了标定。在使用包括水力裂缝在内的储层模型进行最终校准后,定义了模拟储层体积(SRV)的性质。校正后的储层模型用于考虑地面和储层约束条件,对簇间距优化和其他完井参数进行敏感性分析。根据储层性质,根据该井的估计最终采收率EUR,得出了最佳簇间距。最终结果基于从PLT测井中观察到的射孔簇对产量的贡献的70%,并实施了本研究的结果。之后,又进行了另一项研究,以提高增产效果,最大限度地增加射孔簇的数量,从而提高产能,作为完井工程设计的改进领域。本研究采用的方法确定了影响特定非常规油藏产能的最重要完井参数。该研究将有助于完井设计,提高簇效率,降低成本,增加开发阶段的EUR。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Workflow to Optimize Cluster Spacing Design of Horizontal Multistage Fractured Well in Unconventional Source Rock
Horizontal drilling and multistage hydraulic fracturing applied in unconventional reservoirs over the past decade to create a large fracture surface area to improve the well productivity. The combination of reservoir quality with perforation cluster spacing and fracture staging are keys to successful hydraulic fracturing treatment for horizontal wells. The objective of this work is to build and calibrate a dynamic model by integrating geologic, hydraulic fracture, and reservoir modeling to optimize the number of clusters and other completion parameters for a horizontal well drilled in the source rock reservoir using simulation and analytical models. The methodology adopted in this study covers the integration of geological, petrophysical, and production data analysis to evaluate reservoir and completion qualities and quantify the heterogeneity and the perforation clusters number required within a frac stage. Assuming all perforation clusters are uniformly distributed within a stage. The hydraulic planer fracture attributes assumed and the surface production measurement together with the production profile were used to calibrate the reservoir model. The properties of the Stimulated Reservoir Volume "SRV" were defined after the final calibration using reservoir model including hydraulic fractures. The calibrated reservoir model was used to carry out sensitivity analyses for cluster spacing optimization and other completion parameters considering the surface and reservoir constraints. An optimum cluster spacing was observed based on the Estimated Ultimate Recovery "EUR" of the subject well by reservoir properties. The final results based on 70% of perforation clusters contribution to production observed from PLT log, and the results of this study were implemented. Afterwards, another study has been undertaken to increasing the stimulation effectiveness and maximizing the number of perforation clusters contributing to productivity as an area for improvement to engineering the completion design. The methodology adopted in this study identifies the most important parameters of completion affecting well productivity for specific unconventional reservoirs. This study will help to engineer completion design, improve cluster efficiency, reduce cost and increase well EUR for the development phase.
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