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Integrating Embedded Discrete Fracture and Dual-Porosity, Dual-Permeability Methods to Simulate Fluid Flow in Shale Oil Reservoirs

机译:整合嵌入的离散断裂和双孔隙度,双渗透方法模拟页岩油藏流体流动

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摘要

The oil recovery factor from shale oil remains low, about 5 to 7% of the oil in place. How to increase oil recovery from shale oil reservoirs is attracting more and more attention. CO2 huff-and-puff was historically considered one of the best approaches to improve the oil rate. Most previous simulation studies have been based on dual porosity, but simulation results from dual-porosity models have not been as accurate as discrete fracture models in composition modeling. This study proposes a new model that integrates the embedded discrete fracture model and the dual-porosity, dual-permeability model (DPDP). The newly developed method could explicitly describe large-scale fractures as flow conduits by embedded discrete fracture modeling and could model the flow in small- and medium-length fractures by DPDP modeling. In this paper, we first introduce four different non-neighboring connections and the way to calculate the transmissibility among different media in the new model. Then, the paper compares the performance of the new method, discrete fracture modeling, DPDP modeling, and embedded discrete fracture modeling for production from oil reservoirs. Following, the paper carries out a series of simulations to analyze the effects of hydraulic fracture stages, hydraulic fracture permeabilities, and natural fracture permeabilities on the CO2 huff-and-puff process based on the new method. In addition, the injection cycle and soaking time are investigated to optimize CO2 huff-and-puff performance. This study is the first to integrate embedded discrete fracture modeling with DPDP modeling to simulate the CO2 huff-and-puff process in a shale oil reservoir with natural fractures. This paper also provides detailed discussions and comparisons on the integrated strategy, embedded discrete fracture modeling, discrete fracture modeling, and dual-porosity, dual-permeability modeling in the context of fracture simulation with a compositional model. Most importantly, this study answers the question regarding how fractures affect CO2 huff-and-puff and how to optimize the CO2 huff-and-puff process in a reservoir with natural fractures.
机译:从页岩油中的油采收因子仍然很低,约代替油的5%至7%。如何增加从页岩油藏采收率正吸引着越来越多的关注。 CO2一怒之下和粉扑历史上被认为是最好的一个办法,提高出油率。基于双孔隙以往大多数模拟研究已经,但是从双孔隙度模型的模拟结果并不准确,如组成建模离散骨折模型。本研究提出,集成嵌入式离散裂缝模型和双孔隙度,双渗透率模型(DPDP)的新模型。新开发的方法,可以显式地描述的大型骨折如通过嵌入离散的裂缝建模流导管,并可能通过建模DPDP建模中小长度裂缝的流动。在本文中,我们首先介绍了四种不同的不相邻的连接和计算的新模式不同媒体间的传递方式。然后,将纸张的新方法,离散裂缝建模,DPDP建模,并嵌入离散的裂缝建模用于从油藏的生产的性能进行比较。以下,本文进行一系列模拟来分析基于所述新方法的CO2吞吐和 - 抽吸过程水力压裂阶段,水力裂缝渗透率,和天然裂缝渗透率的影响。此外,喷射周期和均热时间进行了研究,以优化CO 2吞吐和 - 粉扑性能。这项研究是第一嵌入离散的裂缝建模与DPDP建模模拟CO2吞吐和 - 抽吸过程中的页岩油贮存器与天然裂缝集成。本文还提供了集成的策略与组分模型详细的讨论和比较,嵌入离散的裂缝建模,离散裂缝建模,和双孔隙度,双渗透性建模断裂仿真的上下文中。最重要的是,这项研究回答关于骨折如何影响二氧化碳吞吐和卖自夸和如何优化CO2一怒之下和粉扑工艺与天然裂缝储层中的问题。

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