首页> 外文期刊>Geological Journal >Pore‐throat structure and fractal characteristics of tight gas sandstone reservoirs: A case study of the second member of the Upper Triassic Xujiahe Formation in Zhongba area, western Sichuan depression, China
【24h】

Pore‐throat structure and fractal characteristics of tight gas sandstone reservoirs: A case study of the second member of the Upper Triassic Xujiahe Formation in Zhongba area, western Sichuan depression, China

机译:致密气砂岩储层孔喉构造与分形特征——以川西坳陷中坝地区上三叠统徐家河组第二段为例

获取原文
获取原文并翻译 | 示例

摘要

Pore‐throat structure is a key factor that influences the storage and fluid flow capacity of tight sandstone reservoirs. Taking the tight sandstone reservoir of Xu2 Fm in Zhongba area as an example, the reservoir quality, pore‐throat type and pore size distribution of tight sandstone in the study area were described by casting thin section, scanning electron microscope and high‐pressure mercury injection test. In order to quantitatively characterize the complexity and heterogeneity of pore‐throat structure, fractal analysis was performed using mercury saturation and pore size data. This study mainly reveals the relationship between the geometric shape characteristics and fractal dimension of the binary pore structure of ultra‐low permeability tight sandstone and clarifies the influence of different scale pore throats on reservoir physical properties. The results indicate that the physical properties of the reservoir in the study area are poor, the pores are mainly intergranular pores and dissolution pores, the throat is flake and necked and the pore size distribution range is large. The fractal curve obtained by the mercury saturation method shows a significant turning point, and the pore‐throat system is divided into two types: small‐scale and large‐scale. The fractal dimension of large‐scale pore throat is greater than the three‐dimensional Euclidean space dimension, which does not conform to the fractal theory. The fractal dimension of small‐scale pore throat is closely related to the pore‐throat structure and has obvious fractal characteristics. The geometric shape of binary pore‐throat structure in tight sandstone is the main factor affecting the difference of fractal dimension. The development of small pores in sandstone is positively correlated with the total porosity, but its contribution to permeability is relatively low. The physical properties of tight sandstone are mainly controlled by the development degree of large‐scale pore throat.
机译:孔喉构造是影响致密砂岩储层储量和流体流动能力的关键因素。以中坝地区Xu2 Fm致密砂岩储层为例,采用铸造薄片、扫描电子显微镜和高压注汞试验等方法,对研究区致密砂岩储集层质量、孔喉类型和孔径分布进行了表征。为了定量表征孔喉结构的复杂性和异质性,使用汞饱和度和孔径数据进行了分形分析。本文主要揭示了超低渗透致密砂岩二元孔隙结构几何形状特征与分形维数的关系,阐明了不同尺度孔喉对储层物理性质的影响。结果表明:研究区储层物性较差,孔隙以粒间孔隙和溶蚀孔为主,喉部呈片状、颈状,孔径分布范围较大。汞饱和度法得到的分形曲线呈现出显著的转折点,孔喉系统分为小尺度和大尺度两种类型。大尺度孔喉的分形维数大于三维欧几里得空间维数,与分形理论不符。小尺度孔喉的分形维数与孔喉结构密切相关,具有明显的分形特征。致密砂岩中二元孔喉结构的几何形状是影响分形维数差异的主要因素。砂岩中小孔隙的发育与总孔隙度呈正相关,但其对渗透率的贡献相对较小。致密砂岩的物理性质主要受大尺度孔喉发育程度的控制。

著录项

相似文献

  • 外文文献
  • 中文文献
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号