Exploring methane-hydrate formation and dissociation in geologic materials through laboratory experiments: Kinetic behavior and morphology

被引:42
作者
Ruffine, Livio [1 ]
机构
[1] IFREMER, Dept REM, Unite Geosci Marines, F-29280 Plouzane, France
关键词
Geologic matrices; Hydrate morphology; Kinetics; Methane hydrates; Novel apparatus; GAS-HYDRATE; CO2; SEQUESTRATION; ACCUMULATION; SIMULATION; SEDIMENTS; GROWTH; ENERGY; CARBON;
D O I
10.1016/j.fuel.2014.10.041
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
To gain in-depth understanding of natural gas hydrate behavior it is necessary to identify key parameters that affect their formation, distribution and destabilization within sediments. Hydrate formation kinetics in porous media is amongst the aspects which deserve important considerations as it may provide useful information on the formation history and the formation mechanisms of natural gas hydrate accumulations. Yet, it is at its early stage. In this paper, experiments on methane hydrate formation and dissociation in porous media are reported and discussed. The first part of this work is devoted to the investigation of the kinetics of methane hydrate formation within silica sand using a custom-design apparatus. The latter is suitable for investigating small hydrate-bearing cores. The influence of the methane injection flow-rate is examined, and then a straightforward method is proposed to quantify the amount of hydrate-bound gas. In the second part, three mixtures of clays and sand are used as geologic matrix to study the influence of clay content on the hydrate morphology for a predetermined amount of injected water. Visual observations showed that the morphology shifts from disseminated through massive to moussy hydrates with increasing proportion of clays. (C) 2014 Elsevier Ltd. All rights reserved.
引用
收藏
页码:173 / 184
页数:12
相关论文
共 61 条
[31]   Experimental formation of massive hydrate deposits from accumulation of CH4 gas bubbles within synthetic and natural sediments [J].
Madden, Megan Elwood ;
Ulrich, Shannon ;
Szymcek, Phillip ;
McCallum, Scott ;
Phelps, Tommy .
MARINE AND PETROLEUM GEOLOGY, 2009, 26 (03) :369-378
[32]   Natural gas-hydrates - A potential energy source for the 21st Century [J].
Makogon, Y. F. ;
Holditch, S. A. ;
Makogon, T. Y. .
JOURNAL OF PETROLEUM SCIENCE AND ENGINEERING, 2007, 56 (1-3) :14-31
[33]   A multi-disciplinary approach to marine shallow geohazard assessment [J].
Marsset, B. ;
Thomas, Y. ;
Sultan, N. ;
Gaillot, A. ;
Stephan, Y. .
NEAR SURFACE GEOPHYSICS, 2012, 10 (04) :279-288
[34]   Gas hydrates: past and future geohazard? [J].
Maslin, Mark ;
Owen, Matthew ;
Betts, Richard ;
Day, Simon ;
Dunkley Jones, Tom ;
Ridgwell, Andrew .
PHILOSOPHICAL TRANSACTIONS OF THE ROYAL SOCIETY A-MATHEMATICAL PHYSICAL AND ENGINEERING SCIENCES, 2010, 368 (1919) :2369-2393
[35]  
Max M., 2006, EC GEOLOGY NATURAL G
[36]  
Max M.D., 2003, Natural Gas Hydrate in Oceanic and Permafrost Environments
[37]   Oceanic methane hydrates: A ''frontier'' gas resource [J].
Max, MD ;
Lowrie, A .
JOURNAL OF PETROLEUM GEOLOGY, 1996, 19 (01) :41-56
[38]   Review of progress in evaluating gas hydrate drilling hazards [J].
McConnell, Daniel R. ;
Zhang, Zijian ;
Boswell, Ray .
MARINE AND PETROLEUM GEOLOGY, 2012, 34 (01) :209-223
[39]   Global estimates of hydrate-bound gas in marine sediments: how much is really out there? [J].
Milkov, AV .
EARTH-SCIENCE REVIEWS, 2004, 66 (3-4) :183-197
[40]  
Paull C. K., 2001, NATURAL GAS HYDRATES