Onset of convection in the icy Galilean satellites: Influence of rheology

被引:59
作者
Barr, AC [1 ]
Pappalardo, RT [1 ]
机构
[1] Univ Colorado, Atmospher & Space Phys Lab, Boulder, CO 80309 USA
关键词
D O I
10.1029/2004JE002371
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
[1] Ice I exhibits a complex rheology at temperature and pressure conditions appropriate for the interiors of the ice I shells of Europa, Ganymede, and Callisto. We use numerical methods and existing parameterizations of the critical Rayleigh number to determine the conditions required to trigger convection in an ice I shell with each of the stress-, temperature- and grain size - dependent rheologies measured in laboratory experiments by Goldsby and Kohlstedt ( 2001). The critical Rayleigh number depends on the ice grain size and the amplitude and wavelength of temperature perturbation issued to an initially conductive ice I shell. If the shells have an assumed uniform grain size < 0.4 mm, deformation during initial plume growth is accommodated by Newtonian volume diffusion. If the ice grain size is between 0.4 mm and 3 cm, deformation during plume growth is accommodated by weakly non-Newtonian grain boundary sliding, where the critical ice shell thickness for convection depends on the amplitude of temperature perturbation to the - 0.5 power. If the ice grain size exceeds 2 cm, convection can not occur in the ice I shells of the Galilean satellites regardless of the amplitude or wavelength of temperature perturbation. If the grain size in a convecting ice I shell evolves to effective values greater than 2 cm, convection will cease. If the ice shell has a grain size large enough to permit flow by dislocation creep, the ice is too stiff to permit convection, even in the thickest possible ice I shell. Consideration of the complex ice rheology implies that estimates of the grain size in the satellites and knowledge of their initial thermal states are required when judging the convective instability of their ice I shells.
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页码:1 / 14
页数:14
相关论文
共 43 条
[1]   Gravitational constraints on the internal structure of Ganymede [J].
Anderson, JD ;
Lau, EL ;
Sjogren, WL ;
Schubert, G ;
Moore, WB .
NATURE, 1996, 384 (6609) :541-543
[2]   Europa's differentiated internal structure: Inferences from four Galileo encounters [J].
Anderson, JD ;
Schubert, G ;
Jacobson, RA ;
Lau, EL ;
Moore, WB ;
Sjogren, WL .
SCIENCE, 1998, 281 (5385) :2019-2022
[3]   Shape, mean radius, gravity field, and interior structure of Callisto [J].
Anderson, JD ;
Jacobson, RA ;
McElrath, TP ;
Moore, WB ;
Schubert, G ;
Thomas, PC .
ICARUS, 2001, 153 (01) :157-161
[4]  
[Anonymous], INT SER MONOGR PHYS
[5]   Convective instability in ice I with non-Newtonian rheology: Application to the icy Galilean satellites [J].
Barr, AC ;
Pappalardo, RT ;
Zhong, SJ .
JOURNAL OF GEOPHYSICAL RESEARCH-PLANETS, 2004, 109 (E12) :1-14
[6]   Sulfuric acid on Europa and the radiolytic sulfur cycle [J].
Carlson, RW ;
Johnson, RE ;
Anderson, MS .
SCIENCE, 1999, 286 (5437) :97-99
[7]   On dynamic recrystallization during solid state flow: Effects of stress and temperature [J].
De Bresser, JHP ;
Peach, CJ ;
Reijs, JPJ ;
Spiers, CJ .
GEOPHYSICAL RESEARCH LETTERS, 1998, 25 (18) :3457-3460
[8]   Dynamic recrystallization and texture development in ice as revealed by the study of deep ice cores in Antarctica and Greenland [J].
De La Chapelle, S ;
Castelnau, O ;
Lipenkov, V ;
Duval, P .
JOURNAL OF GEOPHYSICAL RESEARCH-SOLID EARTH, 1998, 103 (B3) :5091-5105
[9]   Rheological properties of water ice - Applications to satellites of the outer planets [J].
Durham, WB ;
Stern, LA .
ANNUAL REVIEW OF EARTH AND PLANETARY SCIENCES, 2001, 29 :295-330
[10]   Superplastic deformation of ice: Experimental observations [J].
Goldsby, DL ;
Kohlstedt, DL .
JOURNAL OF GEOPHYSICAL RESEARCH-SOLID EARTH, 2001, 106 (B6) :11017-11030