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Micro-Nanopore Structure and Fractal Characteristics of Tight Sandstone Gas Reservoirs in the Eastern Ordos Basin, China

机译:中国东部鄂尔多斯盆地紧密砂岩煤气藏的微纳孔结构和分形特征

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摘要

The complex pore system in tight sandstone reservoirs controls the storage and transport of natural gas. Thus, quantitatively characterizing the micro-nanopore structure of tight sandstone reservoirs is of great significance to determining the accumulation and distribution of tightgas. The pore structure of reservoirs was determined through polarizing microscopy, scanning electron microscopy (SEM), and the combination of mercury injection capillary pressure (MICP) and nuclear magnetic resonance (NMR) experiments on Late Paleozoic conventional and tight sandstone samplesfrom the Linxing Block, Ordos Basin. The results show that in contrast to conventional sandstone, dissolution pores, with diameters less than 8 μm, are the main contributors to the gas storage space of tight sandstone reservoirs. The pore size distribution derived from the MICP experimentdemonstrates that the main peak of tight sandstones corresponds to a pore radius in the range of 247 nm to 371 nm, while the secondary peak usually corresponds to 18 nm. The results of the NMR test illustrate that the T2 spectra of tight sandstones are unimodal, bimodal andmultimodal, and the main NMR peak is highly related to the MICP peak. Fractal theory was proposed to quantitatively characterize the complex pore structure and rough porous surface. The sandstones show fractal characteristics including nanopore fractal dimension DN obtainedfrom the MICP and large pore fractal dimension DL obtained from the NMR experiment. Both DN and DL are positively correlated with porosity and negatively correlated with permeability, demonstrating that complex and heterogeneous pore structurecould increase the gas storage space and reduce the connectivity.
机译:致密砂岩储层中复杂的孔隙系统控制着天然气的储存和输送。因此,定量表征致密砂岩储层的微纳孔结构对确定致密气的聚集和分布具有重要意义。通过偏光显微镜、扫描电子显微镜(SEM)以及压汞毛细管压力(MICP)和核磁共振(NMR)实验,对鄂尔多斯盆地临兴区块晚古生代常规砂岩和致密砂岩样品的孔隙结构进行了测定。结果表明,与常规砂岩相比,直径小于8μm的溶蚀孔隙是致密砂岩储集空间的主要贡献者。MICP实验得出的孔径分布表明,致密砂岩的主峰对应于247 nm至371 nm范围内的孔隙半径,而次峰通常对应于18 nm。核磁共振测试结果表明,致密砂岩的T2谱为单峰、双峰和多峰,主核磁共振峰与MICP峰高度相关。分形理论被用来定量表征复杂的孔隙结构和粗糙的多孔表面。砂岩表现出分形特征,包括MICP获得的纳米孔分形维数DN和NMR实验获得的大孔分形维数DL。DN和DL与孔隙度呈正相关,与渗透率呈负相关,表明复杂的非均质孔隙结构会增加储气空间,降低连通性。

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  • 作者单位

    Key Laboratory of Computational Geodynamics College of Earth and Planetary Sciences University of Chinese Academy of Sciences;

    Key Laboratory of Computational Geodynamics College of Earth and Planetary Sciences University of Chinese Academy of Sciences;

    Key Laboratory of Computational Geodynamics College of Earth and Planetary Sciences University of Chinese Academy of Sciences;

    China United Coalbed Methane Co. Ltd;

    Key Laboratory of Computational Geodynamics College of Earth and Planetary Sciences University of Chinese Academy of Sciences;

    Key Laboratory of Computational Geodynamics College of Earth and Planetary Sciences University of Chinese Academy of Sciences;

    Key Laboratory of Computational Geodynamics College of Earth and Planetary Sciences University of Chinese Academy of Sciences;

    China United Coalbed Methane Co. Ltd;

    Key Laboratory of Computational Geodynamics College of Earth and Planetary Sciences University of Chinese Academy of Sciences;

    Key Laboratory of Computational Geodynamics College of Earth and Planetary Sciences University of Chinese Academy of Sciences;

    Key Laboratory of Computational Geodynamics College of Earth and Planetary Sciences University of Chinese Academy of Sciences;

    Key Laboratory of Computational Geodynamics College of Earth and Planetary Sciences University of Chinese Academy of Sciences;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 特种结构材料;
  • 关键词

    Fractal Dimension; Tight Sandstone Gas Reservoirs; Micro-Nano Pore; Nuclear Magnetic Resonance; Mercury Injection Capillary Pressure;

    机译:分形尺寸;紧密砂岩气体储层;微纳米孔;核磁共振;汞注射毛细管压力;

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