影响意大利南亚平宁Calcari con Selce组背景特征和正断层的构造研究

R. Novellino, F. Bucci, E. Tavarnelli
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引用次数: 1

摘要

Calcari con Selce地层(CSf)是一种低孔隙度多层碳酸盐,部分白云化,广泛生长在卢卡尼亚亚平宁链中。该岩性地层序列在深度上代表了油气勘探的关键地层和潜在的承压含水层系统。在本文中,我们描述了与埋藏和构造变形有关的影响CSf的构造特征,重点描述了与造山后伸展变形有关的正断层。通过现场调查,识别出以下背景结构:1)与静岩载荷有关的层界亚垂直裂缝集(OBj)和层理平行溶蚀缝(BPss);ii)同造山带弯曲滑移诱发的斜层状溶液层。此外,不同组的白云质脉广泛地影响着脑脊液的白云化部分,显示出与层理界面的结构关系。局部低角度正断层(LANFs)在之前的构造之后形成了进一步的各向异性,局部与亚垂直断裂集(SVfs)相关。这些构造提高了碳酸盐岩地层的渗透率,促进了流体的区域化。方解石脉结构表明,高角度正断层及其伴生裂缝组主要分布在成熟断裂带上,具有连通良好的特征,进一步增强了CSf的渗透性,有利于平行于断裂带的优先流体流动通道的发育。这项工作提供了影响CSf的裂缝网络的增强特征,并代表了一个有用的工具,旨在改进裂缝性储层内流体循环的水文模型。
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Structural investigation of background features and normal faults affecting the Calcari con Selce formation, Southern Apennines, Italy
The Calcari con Selce formation (CSf) is a low-porosity multilayer carbonate, partially dolomitized, formation that extensively crops out in the Lucania Apennine chain. This lithostratigraphic succession represents to depth a key formation concerning hydrocarbon exploration and a potential confined acquifer system. In this work we describe the structural features affecting the CSf related to burial and tectonic deformation with emphasis on normal faults related to post-orogenic extensional deformation. A field investigation led to recognition of background structures such as: i) strata-bounded sub-vertical fracture sets (OBj) and bedding-parallel solution seams (BPss), related to lithostatic load; and: ii) oblique-to-bedding solution seams (BOss) induced by syn-orogenic flexural slip. Furthermore, different sets of dolomitic veins extensively affect dolomitized parts of the CSf showing structural relationships with bedding interfaces. Localized low-angle normal faults (LANFs) post-dating the previous structures formed further anisotropies locally associated with sub- vertical fracture sets (SVfs). These structures, enhancing permeability within carbonate beds, promoted fluid compartmentalization. High- angle normal faults and associate fracture sets, characterized by well-connected features, mainly localized along the mature fault zones, further enhanced the permeability of the CSf allowing the development of preferential fluid-flow pathways moving parallel to the fault-zones, as inferred from the structure of calcite veins. This work provides an enhanced characterization of the fracture network affecting the CSf and represents a useful tool aimed at improving hydrological models for fluid circulation within fractured reservoirs.
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