Post-nucleation conversion of an air bubble to clathrate air-hydrate crystal in ice

被引:53
作者
Salamatin, AN
Hondoh, T
Uchida, T
Lipenkov, VY
机构
[1] Hokkaido Univ, Inst Low Temp Sci, Sapporo, Hokkaido 060, Japan
[2] Kazan State Univ, Dept Math Appl, Kazan 420008, Russia
[3] Hokkaido Natl Ind Res Inst, Toyohira Ku, Sapporo, Hokkaido 062, Japan
[4] Arctic & Antarctic Res Inst, St Petersburg 199397, Russia
基金
俄罗斯基础研究基金会;
关键词
clathrate air-hydrate; polar ice; post-nucleation growth; mathematical model;
D O I
10.1016/S0022-0248(98)00488-6
中图分类号
O7 [晶体学];
学科分类号
0702 ; 070205 ; 0703 ; 080501 ;
摘要
We present an attempt to model the process of conversion of an air bubble, trapped in ice, to clathrate air-hydrate crystal after its nucleation on the air-ice interface. Both counterparts of the transformation are considered: diffusion of interstitial water and air molecules through the growing hydrate layer that coats the bubble surface, and compressive deformation of the three-phase lair-hydrate-ice) system at a given temperature and load pressure. The mathematical model is constrained by laboratory experiments covering a wide range of thermodynamic conditions. Computational tests show that either diffusion or bubble compression can be the rate-limiting step in the post-nucleation growth of air-hydrate crystal. As a plastic material, air-hydrate appears to be, at least, one order harder than ice. The mass transfer coefficient for the diffusion of air and water molecules in air-hydrate is estimated to be 0.6-1.3 mm(2)/yr at 263 K with the activation energy not higher, than 30-50 kJ/mol. The mass flux of air, although small in comparison with that of water, plays an important role in the conversion. Special attention is paid to the case of air-hydrate growth in air bubbles in polar ice sheets. (C) 1998 Elsevier Science B.V. All rights reserved.
引用
收藏
页码:197 / 218
页数:22
相关论文
共 35 条
[1]  
[Anonymous], MAT GLYATSIOL ISSLED
[2]   A REVIEW OF ICE RHEOLOGY FOR ICE-SHEET MODELING [J].
BUDD, WF ;
JACKA, TH .
COLD REGIONS SCIENCE AND TECHNOLOGY, 1989, 16 (02) :107-144
[3]  
DUVAL P, 1995, J PHYS IV, V5, P197, DOI 10.1051/jp4:1995317
[4]  
FUKAZAWA H, 1996, P 2 INT C NAT GAS HY, P237
[5]   DETERMINATION OF DIFFUSION-COEFFICIENTS OF SELF-INTERSTITIALS IN ICE WITH A NEW METHOD OF OBSERVING CLIMB OF DISLOCATIONS BY X-RAY TOPOGRAPHY [J].
GOTO, K ;
HONDOH, T ;
HIGASHI, A .
JAPANESE JOURNAL OF APPLIED PHYSICS PART 1-REGULAR PAPERS SHORT NOTES & REVIEW PAPERS, 1986, 25 (03) :351-357
[6]   GAS INCLUSIONS IN ANTARCTIC ICE SHEET AND THEIR GLACIOLOGICAL SIGNIFICANCE [J].
GOW, AJ ;
WILLIAMSON, T .
JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS AND ATMOSPHERES, 1975, 80 (36) :5101-5108
[7]   ANTARCTIC ICE SHEET - PRELIMINARY RESULTS OF FIRST CORE HOLE TO BEDROCK [J].
GOW, AJ ;
UEDA, HT ;
GARFIELD, DE .
SCIENCE, 1968, 161 (3845) :1011-&
[8]   THE CRYSTALLOGRAPHIC STRUCTURE OF THE NATURAL AIR-HYDRATE IN GREENLAND DYE-3 DEEP ICE CORE [J].
HONDOH, T ;
ANZAI, H ;
GOTO, A ;
MAE, S ;
HIGASHI, A ;
LANGWAY, CC .
JOURNAL OF INCLUSION PHENOMENA AND MOLECULAR RECOGNITION IN CHEMISTRY, 1990, 8 (1-2) :17-24
[9]  
HONDOH T, 1992, LOW TEMPERATURE SC A, V51, P197
[10]  
Hondoh T, 1989, J JAPANESE ASS CRYST, V16, P149