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首页> 外文期刊>Marine and Petroleum Geology >Qualitative and quantitative characterization of multiple factors that influence movable fluid saturation in lacustrine deep-water gravity-flow tight sandstones from the Yanchang Formation, southern Ordos Basin, China
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Qualitative and quantitative characterization of multiple factors that influence movable fluid saturation in lacustrine deep-water gravity-flow tight sandstones from the Yanchang Formation, southern Ordos Basin, China

机译:鄂伦多斯盆地南部鄂尔多斯盆地湖泊深水重力 - 流动紧密砂岩中可移动流体饱和度的多种因素的定性和定量表征

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摘要

Fluid mobility is one of the most important factors in evaluating the potential for recovering tight oil. However, quantitative effects of multiple factors that influence movable fluid saturation in different pore-throat combinations and their relationships with lithofacies in tight sandstones, especially for lacustrine deep-water gravity-flow deposits, remain controversial due to the strong heterogeneity and complex pore structure of tight reservoirs. Core samples obtained from the Upper Triassic Yanchang Formation in southern Ordos Basin were evaluated by using a variety of techniques, including nuclear magnetic resonance (NMR), scanning electron microscopy (SEM), X-ray diffraction (XRD), pressure-controlled porosimetry (PCP), rate-controlled porosimetry (RCP), impregnated thin sections, and helium porosity and nitrogen permeability measurements. Based on NMR T-2 distributions under water-saturated and centrifugal conditions, four types of pore-throat combinations are identified by using the relaxation time thresholds T-s1 and T-s2 from NMR: large intergranular pore-dominated pore-throat combinations (LIP), small intergranular pore-dominated pore-throat combinations (SIP), intragranular pore-dominated pore-throat combinations (IAP), and micropore-dominated pore-throat combinations (MP). Among them, SIP is the dominant pore space favorable for fluid flow. Movable fluid saturation in SIP pore space varies among different lithofacies. The best fluid mobility commonly occurs in fine-grained, cross-bedded sandstones (Sc), whereas the worst fluid mobility usually appears in siltstones to very fine-grained sandstones (Ss). The quantitative effects of a total of 41 factors that influence movable fluid saturation of different porethroat combinations were investigated through the analysis of the Pearson correlation matrix. The results demonstrate that porosity and permeability mainly affect the movable fluid saturation in the pore space of SIP and MP. In addition, maximum mercury intrusion saturation from PCP (S-max) and tortuosity (lambda) are the critical pore structure parameters affecting the movable fluid saturation in the pore space of SIP and MP, whereas the average pore throat radius ratio (eta) is the critical factor affecting the movable fluid saturation in LIP pore space. Overall, movable fluid saturation in different pore-throat combinations is characterized mainly by different microscopic pore structure parameters. A general pore network model for different lithofacies with different fluid mobility is established to facilitate assessment of the heterogeneity of tight sandstones and to further guide hydrocarbon exploration and development in similar lacustrine deep-water depositional settings.
机译:流体迁移率是评估恢复稀土潜力的最重要因素之一。然而,多种因素影响不同孔隙喉部组合中可移动的流体饱和的因素及其与岩散岩中的岩石酸岩的关系,特别是对于湖泊深水重力沉积物,由于强的异质性和复杂的孔结构,仍然存在争议紧水箱。通过使用各种技术,包括核磁共振(NMR),扫描电子显微镜(SEM),X射线衍射(XRD),压力控制的孔隙测定法(X射线衍射) PCP),速率控制的孔隙率测定法(RCP),浸渍的薄片和氦孔隙率和氮渗透率测量。基于水饱和和离心条件下的NMR T-2分布,通过使用来自NMR的弛豫时间阈值T-S1和T-S2来鉴定四种类型的孔喉组合:大型骨髓孔主导的孔喉喉部组合(唇缘),小晶体孔隙主导的孔咽喉组合(SIP),鞘内孔隙主导的孔喉喉组合(IAP)和微孔主导的孔喉喉核组合(MP)。其中,SIP是有利于流体流动的主要孔隙空间。 SIP孔隙空间中可移动的液体饱和度在不同的岩石缩水周期之间变化。通常发生在细粒度,横床砂岩(SC)中的最佳流体迁移率,而最严重的流体迁移率通常出现在硅灰石中以非常细粒砂岩(SS)。通过分析Pearson相关基质,研究了总共41个影响不同孔隙族组合的可移动流体饱和的因素的定量效应。结果表明,孔隙率和渗透性主要影响SIP和MP的孔隙空间中的可移动流体饱和度。此外,来自PCP(S-MAX)和曲折度(Lambda)的最大汞入侵饱和度是影响SIP和MP的孔隙空间中可移动流体饱和度的关键孔结构参数,而平均孔喉半径比(ETA)是影响唇孔空间中可移动流体饱和度的关键因素。总体而言,不同孔隙组合中的可移动流体饱和度主要是通过不同的微观孔结构参数的特征。建立了不同流体迁移率不同锂缺失的通用孔隙网络模型,以便于评估紧密砂岩的异质性,并在类似的曲线深水沉积环境中进一步指导烃勘探和发育。

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