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Numerical simulation on multi-stage fractured horizontal wells in shale gas reservoirs based on the finite volume method

机译:基于有限体积法的页岩气藏多段压裂水平井数值模拟

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In order to simulate the flowing of shale gas in multi-scale media, we established a mathematical model for the unsteady seepage of multi-stage fractured horizontal wells in shale gas reservoirs in consideration of the flowing characteristics of shale gas in matrix, natural fractures and large-scale artificial fractures. Grid division in the simulation region was carried out by means of nonstructural tetrahedral grid. Then, a 3D numerical model for the seepage of shale gas was established discretely using finite volume method and solved using sequence solution method. Finally, the production performance of multi-stage fractured horizontal wells in shale gas reservoirs and the reservoir pressure distribution were simulated, and the simulation results were analyzed. And the following research results were obtained. First, the gas production rates of multi-stage fractured horizontal wells calculated by this newly established numerical simulation method are basically consistent with the calculation results by the commercial numerical simulation software Eclipse, which proves that this new model is accurate and feasible. Second, the gas production rates of horizontal wells calculated by the sequential solution method are different from those calculated by the fully implicit solution method in the early production stages, but as the calculation progresses, both of them tend to be consistent, which further verifies the accuracy of this new model. Third, desorbed gas plays a supplementary role to reservoir pressure, but its function is limited, and its effect on gas production is little. As the production goes on, the percentage of desorbed gas increases gradually. Fourth, the key to the stimulation of shale-gas horizontal wells is to determine the number of fractured sections rationally and create longer artificial fractures. In conclusion, the research results are conducive to the design of stimulated reservoir volumes (SRVs) of shale gas reservoirs and the prediction of production performance of multi-stage fractured horizontal wells.
机译:为了模拟页岩气在多尺度介质中的流动,考虑到页岩气在基体中的流动特性,天然裂缝和裂缝,我们建立了页岩气储层多级压裂水平井非稳态渗流的数学模型。大规模的人工裂缝。模拟区域中的网格划分是通过非结构性四面体网格进行的。然后,利用有限体积法离散建立了页岩气渗透的3D数值模型,并采用顺序求解法进行了求解。最后,对页岩气藏多段压裂水平井的生产性能和储层压力分布进行了模拟,并对模拟结果进行了分析。并获得了以下研究结果。首先,用这种新建立的数值模拟方法计算出的多段压裂水平井的产气量与商业数值模拟软件Eclipse的计算结果基本吻合,证明了该模型的准确性和可行性。其次,在生产初期,通过顺序求解法计算出的水平井产气率与通过完全隐式求解法计算出的产气率有所不同,但是随着计算的进行,两者趋于一致,这进一步验证了新模型的准确性。第三,解吸的气体对储层压力起到补充作用,但作用有限,对产气的影响很小。随着生产的进行,解吸气体的百分比逐渐增加。第四,页岩气水平井增产的关键是合理确定压裂断面个数,形成更长的人工裂缝。综上所述,研究结果有助于页岩气藏增产油藏设计和多级裂缝水平井生产性能预测。

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