期刊论文详细信息
Minerals
Pore Structure and Fractal Characteristics of Niutitang Shale from China
Junjie Yi1  Yingying Guo2  Zhaodong Xi2  Jing Wang2  Kaifeng Wang2  Shuheng Tang2 
[1] China Metallurgical Geology Bureau, Institute of Mineral Resources Research Beijing, Beijing 100083, China;School of Energy Resource, China University of Geosciences (Beijing), Beijing 100083, China;
关键词: Hunan province;    shale gas;    fractal dimension;    nitrogen adsorption;    permeability;    adsorption capacity;   
DOI  :  10.3390/min8040163
来源: DOAJ
【 摘 要 】

A suite of shale samples from the Lower Cambrian Niutitang Formation in northwestern Hunan Province, China, were investigated to better understand the pore structure and fractal characteristics of marine shale. Organic geochemistry, mineralogy by X-ray diffraction, porosity, permeability, mercury intrusion and nitrogen adsorption and methane adsorption experiments were conducted for each sample. Fractal dimension D was obtained from the nitrogen adsorption data using the fractal Frenkel-Halsey-Hill (FHH) model. The relationships between total organic carbon (TOC) content, mineral compositions, pore structure parameters and fractal dimension are discussed, along with the contributions of fractal dimension to shale gas reservoir evaluation. Analysis of the results showed that Niutitang shale samples featured high TOC content (2.51% on average), high thermal maturity (3.0% on average), low permeability and complex pore structures, which are highly fractal. TOC content and mineral compositions are two major factors affecting pore structure but they have different impacts on the fractal dimension. Shale samples with higher TOC content had a larger specific surface area (SSA), pore volume (PV) and fractal dimension, which enhanced the heterogeneity of the pore structure. Quartz content had a relatively weak influence on shale pore structure, whereas SSA, PV and fractal dimension decreased with increasing clay mineral content. Shale with a higher clay content weakened pore structure heterogeneity. The permeability and Langmuir volume of methane adsorption were affected by fractal dimension. Shale samples with higher fractal dimension had higher adsorption capacity but lower permeability, which is favorable for shale gas adsorption but adverse to shale gas seepage and diffusion.

【 授权许可】

Unknown   

  文献评价指标  
  下载次数:0次 浏览次数:7次