Quantitative micro-porosity characterization using synchrotron micro-CT and xenon K-edge subtraction in sandstones, carbonates, shales and coal

被引:79
作者
Mayo, Sheridan [1 ]
Josh, Matthew [2 ]
Nesterets, Yakov [1 ]
Esteban, Lionel [2 ]
Pervukhina, Marina [2 ]
Ben Clennell, Michael [2 ]
Maksimenko, Anton [3 ]
Hall, Chris [3 ]
机构
[1] CSIRO Mfg Flagship, Clayton, Vic 3169, Australia
[2] CSIRO Energy Flagship, ARRC, Kensington, NSW 6151, Australia
[3] Australian Synchrotron, Clayton, Vic, Australia
关键词
Micro-CT; Contrast-agent; Synchrotron; Porosity; Carbonate; K-edge subtraction; RAY COMPUTERIZED-TOMOGRAPHY; MERCURY POROSIMETRY; GAS; MICROSTRUCTURE; TRANSPORT; ROCKS;
D O I
10.1016/j.fuel.2015.03.046
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Understanding porosity in rock specimens on a range of length scales is critical for assessment of geophysical properties relevant to petroleum and geothermal resources. Modern micro-CT techniques can show detail down to around a micron scale but cannot unambiguously detect porosity below the resolution limit. Here we describe the use of synchrotron K-edge subtraction using a xenon gas contrast agent to probe porosity on the micron scale in a range of rock types. Xenon, which has also been used in larger-scale studies, is an attractive contrast agent for investigating very small-scale porosity in non-sorbing specimens, and gas uptake in sorbing specimens. The K-edge subtraction method enables accurate separation of the rock and xenon signal so that xenon penetration and hence porosity can be quantitatively determined even where the individual pores themselves cannot be directly resolved. Crown Copyright (C) 2015 Published by Elsevier Ltd. All rights reserved.
引用
收藏
页码:167 / 173
页数:7
相关论文
共 26 条
[11]   Adsorption and gas transport in coal microstructure: investigation and evaluation by quantitative X-ray CT imaging [J].
Karacan, CO ;
Okandan, E .
FUEL, 2001, 80 (04) :509-520
[12]   Rock porosity determination by combination of X-ray computerized tomography with mercury porosimetry [J].
Klobes, P ;
Riesemeier, H ;
Meyer, K ;
Goebbels, J ;
Hellmuth, KH .
FRESENIUS JOURNAL OF ANALYTICAL CHEMISTRY, 1997, 357 (05) :543-547
[13]   X-RAY COMPUTED-TOMOGRAPHY STUDIES OF GAS-STORAGE AND TRANSPORT IN DEVONIAN SHALES [J].
LU, X ;
MIAO, P ;
WATSON, AT ;
PEPIN, GP ;
MOSS, RM ;
SEMMELBECK, M .
AICHE JOURNAL, 1994, 40 (07) :1246-1253
[14]  
NESTERETS YI, 2014, J PHYS D, V47
[15]  
Pepin G, 1995, US Patent, Patent No. [5,430,291, 5430291]
[16]   IODINE K-EDGE DUAL-ENERGY IMAGING FOR SUBTRACTION ANGIOGRAPHY USING SYNCHROTRON RADIATION AND A 2-DIMENSIONAL DETECTOR [J].
UMETANI, K ;
UEDA, K ;
TAKEDA, T ;
AKISADA, M ;
NAKAJIMA, T ;
ANNO, I .
NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION A-ACCELERATORS SPECTROMETERS DETECTORS AND ASSOCIATED EQUIPMENT, 1991, 301 (03) :579-588
[17]   Quantitative analysis of reservoir rocks by microfocus X-ray computerised tomography [J].
Van Geet, M ;
Swennen, R ;
Wevers, M .
SEDIMENTARY GEOLOGY, 2000, 132 (1-2) :25-36
[18]  
Vega B., 2013, Nanoscale visualization of gas shale pore and textural features, DOI [10.1190/urtec2013-163, DOI 10.1190/URTEC2013-163]
[19]  
Vega B, 2014, SPE AAPG SEG UNC RES
[20]   CT Imaging of Low-Permeability, Dual-Porosity Systems Using High X-ray Contrast Gas [J].
Vega, Bolivia ;
Dutta, Abhishek ;
Kovscek, Anthony R. .
TRANSPORT IN POROUS MEDIA, 2014, 101 (01) :81-97