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Improved reservoir characterisation using fuzzy logic platform: an integrated petrophysical, seismic structural and poststack inversion study

机译:使用模糊逻辑平台改进储层表征:岩石物理,地震构造和叠后反演的综合研究

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There is a tendency for applying different integrated geophysical approaches for better hydrocarbon reservoir characterisation and interpretation. In this study, petrophysical properties, seismic structural and poststack seismic inversion results are integrated using the fuzzy logic AND operator to characterise the Tensleep Sandstone Formation (TSF) at Powder River Basin (PRB), Wyoming, USA. TSF is deposited in a coastal plain setting during the Pennsylvanian era, and contains cross-bedded sandstone of Aeolian origin as a major lithology with alternative sabkha dolomite/carbonates. Wireline logging datasets from 17 wells are used for the detailed petrophysical evaluation. Three units of the TSF (A-sandstone, B-dolomite and B-sandstone) are targeted and their major rock properties estimated (i.e. shale/clay volume, V-sh; porosity, (Eff); permeability, K; fluid saturations, S-w and S-H; and bulk volume water, BVW). The B-sandstone zone, with its petrophysical properties of 5-20% effective porosity, 0.10-250 mD permeability and hydrocarbon potential up to 72%, is considered the best reservoir zone among the three studied units. Distributions of the most important petrophysical parameters of the B-sandstone reservoir (V-sh, (Eff), K, S-w) are generated as GIS thematic layers. The two-dimensional (2D) and three-dimensional (3D) seismic structural interpretations revealed that the hydrocarbons are entrapped in an anticlinal structure bounded with fault closures at the west of the study area. Poststack acoustic impedance (PSAI) inversion is performed on 3D seismic data to extract the inverted acoustic impedance (AI) cube. Two attribute slices (inverted AI and seismic amplitude) were extracted at the top of the B-sandstone unit as GIS thematic layers. The reservoir properties and inverted seismic attributes were then integrated using fuzzy AND operator. Finally, a fuzzy reservoir quality map was produced, and a prospective reservoir area with best reservoir characteristics is proposed for future exploration. The current study showed that integration of petrophysical, seismic structural and poststack inversion under a fuzzy logic platform can be used as an effective tool for interpreting multiple reservoir zones.
机译:有一种趋势是应用不同的综合地球物理方法来更好地表征和解释油气藏。在这项研究中,利用模糊逻辑AND算子对岩石物理性质,地震构造和叠后地震反演结果进行了综合,以描述美国怀俄明州粉河盆地(PRB)的Tensleep砂岩形成(TSF)。 TSF沉积在宾夕法尼亚时代的沿海平原地区,包含风成因的跨层砂岩作为主要岩性,并含有萨布白云岩/碳酸盐岩。来自17口井的电缆测井数据集用于详细的岩石物理评价。以TSF的三个单元(A砂岩,B白云石和B砂岩)为目标,并估算了它们的主要岩石性质(即页岩/粘土体积,V-sh;孔隙度(Eff);渗透率,K;流体饱和度, SW和SH;散装水,BVW)。 B砂岩带的岩石物理性能为5-20%有效孔隙度,0.10-250 mD渗透率和高达72%的烃潜力,被认为是三个研究单元中最佳的储层带。 B砂岩储层最重要的岩石物性参数(V-sh,(Eff),K,S-w)的分布作为GIS主题层生成。二维(2D)和三维(3D)地震构造解释表明,碳氢化合物被困在研究区西部以断层封闭为界的倾斜构造中。对3D地震数据执行叠后声阻抗(PSAI)反演,以提取反声阻抗(AI)立方体。在B砂岩单元的顶部提取了两个属性切片(反向AI和地震振幅)作为GIS主题层。然后使用模糊AND算子对储层属性和反演地震属性进行整合。最后,绘制了模糊的储层质量图,并提出了具有最佳储层特征的预期储层区,以供将来勘探。目前的研究表明,在模糊逻辑平台下整合岩石物理,地震构造和叠后反演可以作为解释多个储层的有效工具。

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