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Numerical Simulation of Foamy Oil Stability Using Natural Gas Huff and Puff for Ultra-deep Heavy Oil Reservoir

机译:用天然气箍泡沫稳定性的数值模拟,用于超深重油储层泡沫

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The nature of injected gas dispersion in oil distinguishes foamy oil behavior from conventional heavy oil behavior. Unlike normal two-phase flow, it involves flow of dispersed gas bubbles with pseudo single phase. This paper presents the results of a numerical simulation study of the stability of foamy oil created by liberation of dissolved gas during natural gas huff and puff process. Through the history matching of labs test conducted by three series of various core tubes in numerical simulation, foamy oil impactions on recovery were discussed based on vertical heterogeneous model. The effects on the stability of foamy oil flow behavior were investigated by mobility ratio, viscous to gravity ratio, layer permeability contrast, vertical to horizontal permeability ratio and the transverse dispersion number in the paper. The results show that foamy oil stability increases with higher oil viscosity, higher injection gas density. The oil recovery decrease with the mobility ratio and the layer permeability contrast, while the oil recovery increase with the vertical to horizontal permeability ratio. This work demonstrates that the transverse dispersion number should be used to assess vertical or microscopic sweep efficiency. The study indicates that foamy oil in porous media during production is unstable, but it will be huge potentials to apply natural gas huff and puff for ultra-deep heavy oil reservoirs.
机译:油内注射气体分散性的性质区分了传统重油行为的泡沫油行为。与正常的两相流不同,它涉及具有伪单相的分散气泡的流动。本文介绍了在天然气沟槽和泡芙过程中通过解放溶解气体产生的泡沫油稳定性的数值模拟研究的结果。通过在数值模拟中由三系列各种芯管进行的实验室测试的历史匹配,基于垂直异构模型讨论了恢复的泡沫油迁移。通过迁移率研究对泡沫状油流动行为稳定性的影响,粘性对重力比,层渗透率对比,垂直于纸张中的横向分散数和横向分散数。结果表明,泡沫状油稳定性随着较高的油粘度而增加,注射气体密度较高。利用迁移率和层渗透率对比度降低,液体回收率随着水平渗透率的垂直增加而降低。这项工作表明,横向分散数应用于评估垂直或微观扫描效率。该研究表明,在生产过程中多孔介质中的泡沫油是不稳定的,但是将天然气沟槽和泡芙用于超深厚石油储存器是巨大的潜力。

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