阿联酋陆上致密碳酸盐岩储层改进水力裂缝设计的非均质性和孔隙弹性变化的实验室测量

S. Syofyan, T. Fauzi, T. Al-Shabibi, B. Banihammad, Emil Nursalim, Nabiel Oemar Martak, Asma Hassan Ali Bal Baheeth, Joel Martin, J. Guerra, E. Muniz, A. J. Mascarenhas
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引用次数: 0

摘要

X储层是一个薄而致密的碳酸盐岩储层,其薄盖层将其与邻近的大型储层隔离开来。为了设计最佳水力裂缝,防止与邻近储层连通,需要高精度的地质力学模型。储层表现出相当大的岩石性质变化,这将影响裂缝的高度、复杂性、宽度以及岩石与处理流体的相互作用。精确计算有效应力所需的Biot孔隙弹性系数α的变化使致密剖面的非均质性进一步复杂化。在建立地质力学模型的过程中,需要进行实验室测试,以表征广泛的垂直非均质性。为本研究提供了来自陆上油田约120英尺的连续岩心。岩心物质代表了潜在的致密碳酸盐岩储层段和边界段。通过ct成像和划痕测试的连续岩心测量进行异质性映射。ct成像提供了体积密度变化和成分变化的指示。划痕测试提供了无侧限抗压强度(UCS)的连续测量。将两者结合起来,提供了一种精确定义致密、中等致密和低密度材料的岩石厚度以及相应抗压强度的方法。然后根据这些连续属性对岩石单元进行细分,以进行进一步的地质力学测试。利用测井分析和从头开始的连续UCS测量,确定了覆盖目标储层段和边界段的8种岩石类型。这些信息用于优化样品选择过程,以表征每个已识别的岩石单元。常规岩心分析测量结果显示,孔隙度在0.1% ~ 18.1%之间,具有明显的纵向非均质性。从八种岩石类型的弹性特性中确定了类似的可变性。在地应力条件下测定的杨氏模量和泊松比的准静态值分别为2.6 ~ 9.6 × 106 psi和0.16 ~ 0.34。Biot的孔隙弹性系数对计算的有效应力剖面具有一级影响,直接影响压裂增产模型的结果。本研究的测试结合了之前的测量结果(Noufal et al. 2020, SPE-202866-MS),提供了孔隙度和体积压缩性之间的独特相关性。此外,还通过支撑剂嵌入/裂缝导流性测试评估了岩石-流体相容性。结果取决于给定的岩石类型,裂缝导电性随闭合应力的变化范围从10到1000 md-ft不等。所有病例的嵌入程度均为低至中等。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Laboratory Measurements Mapping Heterogeneity and Variation of Poroelasticity for Improved Hydraulic Fracture Design in a Tight Carbonate Reservoir Onshore UAE
Reservoir X is a thin and tight carbonate reservoir with thin caprock that isolates it from an adjacent giant reservoir. An accurate geomechanical model with high precision is required for designing the optimum hydraulic fracture and preventing communication with adjacent reservoirs. The reservoir exhibits considerable variability in rock properties that will affect fracture height growth, complexity, and width and rock interaction with treatment fluids. The heterogeneity observed from the tight sections is further complicated by the variation of Biot's poroelastic coefficient, α, which is required for accurate assessment of the effective stresses. Laboratory testing was required to characterize the extensive vertical heterogeneity for key inputs in developing a geomechanics model. Approximately 120 ft of continuous core from an onshore field was provided for this study. The core material represented a potential tight carbonate reservoir interval and bounding sections. Heterogeneity mapping was performed from continuous core measurements from CT-imaging and scratch testing. CT-imaging provides an indication of the bulk density variation and compositional changes. Scratch testing provides a continuous measure of the unconfined compressive strength (UCS). Combining the two provides a means for accurate definition of rock thickness for dense, moderately dense, and lower density material coupled with corresponding compressive strength. Rock units were then subdivided based on these continuous properties for further geomechanics tests. Using log analysis combined with continuous UCS measurements from scratch testing, eight rock type classes were defined covering the target reservoir interval and bounding sections. This information was used for optimizing the sample selection process to characterize each identified rock unit. Routine core analysis measurements reveal significant vertical heterogeneity with porosity ranging from 0.1% to 18.1%. Similar variability was determined from elastic properties for each of the eight rock types. Quasi-static values for Young's modulus and Poisson's ratio determined at in-situ stress conditions ranged from 2.6 to 9.6 × 106 psi, and from 0.16 to 0.34, respectively. The Biot's poroelastic coefficient has a first-order impact on the calculated effective stress profile, which directly affects fracture stimulation model results. Testing from this study combined with previous measurements (Noufal et al. 2020, SPE-202866-MS) provides a unique correlation with porosity and bulk compressibility. In addition, rock-fluid compatibility was evaluated with proppant embedment/fracture conductivity tests. Results are dependent on a given rock type, exhibiting a wide range of fracture conductivity as a function of closure stress from 10 to 1000 md-ft. Embedment for all cases was low to moderate.
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