On the evaluation of Representative Elementary Area for porosity in shale rocks by Field Emission Scanning Electron Microscopy

被引:27
作者
Javier Medina, Federico [1 ]
Jausoro, Ignacio [1 ]
Floridia Addato, Maria Alejandra [1 ]
Jimena Rodriguez, Maria [2 ]
Gonzalez Tomassini, Federico [2 ]
Caneiro, Alberto [1 ]
机构
[1] YPF Tecnol SA, Av Petr S-N,Av Petr S-N,Entre 129 & 143, RA-1925 Buenos Aires, DF, Argentina
[2] YPF, Macacha Guemes 515,C1107, Caba, Argentina
关键词
Representative Elementary Area; Porosity; Shale; FESEM; PORE STRUCTURE; GAS SHALES; YANCHANG FORMATION; ORGANIC-MATTER; CARBON-DIOXIDE; SCALE; BASIN; ADSORPTION; SEM; SIZE;
D O I
10.1016/j.energy.2022.124141
中图分类号
O414.1 [热力学];
学科分类号
摘要
Field Emission Scanning Electron Microscopy (FESEM) is commonly used to characterize shales at the nanoscale, but nevertheless, its use in quantitative analysis is still limited. High-resolution images over large areas can be acquired by FESEM and dedicated software, identifying pores with diameters around 20 nm. Although from image analysis is possible to account for a large number of pores, a crucial question is whether these images are representative of larger areas of the rock. The evaluation of Representative Elementary Area (REA) in shale is essential to perform a reliable analysis of the pore space and porosity. The intrinsic heterogeneity of the system sets the requirement for the definition of the minimum area where the property can be determined and the largest area that it represents. This paper shows that porosity data computed in different randomly selected areas of the same sample exhibit a large spread. A novel method to identify REA based on the selection of areas with similar mineralogy, named Zcontrast criterion, is proposed. This method leads to a noticeable lower spread on the porosity values. Porosity distribution between Organic Matter (OM) and minerals by a trainable machine learning software is also determined and compared with independent measurements. (c) 2022 Published by Elsevier Ltd.
引用
收藏
页数:12
相关论文
共 57 条
[1]  
Ambrose R.J., 2010, Society of Petroleum Engineers
[2]   Pore-scale imaging of trapped supercritical carbon dioxide in sandstones and carbonates [J].
Andrew, Matthew ;
Bijeljic, Branko ;
Blunt, Martin J. .
INTERNATIONAL JOURNAL OF GREENHOUSE GAS CONTROL, 2014, 22 :1-14
[3]  
[Anonymous], 2017, SPEAAPGSEG UNCONV RE, DOI DOI 10.15530/URTEC-2017-2647048
[4]   X-ray tomography imaging of shale microstructures: A review in the context of multiscale correlative imaging [J].
Arif, Muhammad ;
Mahmoud, Mohamed ;
Zhang, Yihuai ;
Iglauer, Stefan .
INTERNATIONAL JOURNAL OF COAL GEOLOGY, 2021, 233
[5]   Rock characterization of Fayetteville shale gas plays [J].
Bai, Baojun ;
Elgmati, Malek ;
Zhang, Hao ;
Wei, Mingzhen .
FUEL, 2013, 105 :645-652
[6]   Fracture stimulation fundamentals [J].
Britt, Larry .
JOURNAL OF NATURAL GAS SCIENCE AND ENGINEERING, 2012, 8 :34-51
[7]   Nanopore-Structure Analysis and Permeability Predictions for a Tight Gas Siltstone Reservoir by Use of Low-Pressure Adsorption and Mercury-Intrusion Techniques [J].
Clarkson, C. R. ;
Wood, J. M. ;
Burgis, S. E. ;
Aquino, S. D. ;
Freeman, M. .
SPE RESERVOIR EVALUATION & ENGINEERING, 2012, 15 (06) :648-661
[8]   Pore structure characterization of North American shale gas reservoirs using USANS/SANS, gas adsorption, and mercury intrusion [J].
Clarkson, C. R. ;
Solano, N. ;
Bustin, R. M. ;
Bustin, A. M. M. ;
Chalmers, G. R. L. ;
He, L. ;
Melnichenko, Y. B. ;
Radlinski, A. P. ;
Blach, T. P. .
FUEL, 2013, 103 :606-616
[9]  
Comisky J.T., 2011, CAN UNC RES C ONEPET
[10]   Representative elementary area of shale at the mesoscopic scale [J].
Cosenza, Philippe ;
Pret, Dimitri ;
Fauchille, Anne-Laure ;
Hedan, Stephen .
INTERNATIONAL JOURNAL OF COAL GEOLOGY, 2019, 216