Thermal diffusivity, thermal conductivity and heat capacity of serpentine (antigorite) under high pressure

被引:50
作者
Osako, M. [1 ]
Yoneda, A. [2 ]
Ito, E. [2 ]
机构
[1] Natl Museum Nat & Sci, Div Phys Sci, Shinjuku Ku, Tokyo 1690073, Japan
[2] Okayama Univ, Inst Study Earths Interior, Tottori 6820193, Japan
关键词
Thermal conductivity; Thermal diffusivity; Heat capacity; Serpentine; Subduction zone; MGO-SIO2-H2O MSH; SEISMIC ZONES; MANTLE; SUBDUCTION; DEHYDRATION; STABILITY; PHASE; WATER; TRANSPORTATION; DEFORMATION;
D O I
10.1016/j.pepi.2010.07.005
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
Thermal diffusivity and thermal conductivity of serpentine (antigorite) were measured up to 8.5 GPa and 800 K in the Kawai-type high-pressure apparatus. Antigorite has thermal diffusivity of 0.90 x 10(-6) m(2) s(-1) and thermal conductivity of 2.7 W m(-1) K-1 at 5 GPa and 300 K, which are much lower than those of olivine. Furthermore, the pressure derivatives of thermal diffusivity and thermal conductivity are significantly smaller than those of olivine. The thermal properties of antigorite obtained in the present study imply existence of a thermal insulating layer in subduction zones. From the simultaneous measurement of both thermal diffusivity and thermal conductivity the heat capacity of antigorite was determined to be approximate to 1 x 10(3) J kg(-1) K-1, and increased to approximate to 1.5 x 10(3) J kg(-1) K-1 at approximate to 800 K under high pressure. The heat capacity was nearly independent of pressure, which indicates nearly temperature-independent thermal expansivity of antigorite. Its characteristics also were hypothesized in terms of lattice dynamics of hydrous minerals involving hydrogen atoms and hydroxyl groups. (C) 2010 Elsevier B.V. All rights reserved.
引用
收藏
页码:229 / 233
页数:5
相关论文
共 27 条
[1]   Experimental and theoretical studies of the stabilities of talc, antigorite and phase A at high pressures with applications to subduction processes [J].
Bose, K ;
Ganguly, J .
EARTH AND PLANETARY SCIENCE LETTERS, 1995, 136 (3-4) :109-121
[2]  
Bromiley GD, 2003, AM MINERAL, V88, P99
[3]   Serpentinites, peridotites, and seismology [J].
Christensen, NI .
INTERNATIONAL GEOLOGY REVIEW, 2004, 46 (09) :795-816
[4]  
Dzhavadov L. N., 1975, MEASUREMENT THERMOPH, V7, P49
[5]   Equation of state of antigorite, stability field of serpentines, and seismicity in subduction zones [J].
Hilairet, N ;
Daniel, I ;
Reynard, B .
GEOPHYSICAL RESEARCH LETTERS, 2006, 33 (02)
[6]   P-V Equations of State and the relative stabilities of serpentine varieties [J].
Hilairet, N. ;
Daniel, I. ;
Reynard, B. .
PHYSICS AND CHEMISTRY OF MINERALS, 2006, 33 (8-9) :629-637
[7]   High-pressure creep of serpentine, interseismic deformation, and initiation of subduction [J].
Hilairet, Nadege ;
Reynard, Bruno ;
Wang, Yanbin ;
Daniel, Isabelle ;
Merkel, Sebastien ;
Nishiyama, Norimasa ;
Petitgirard, Sylvain .
SCIENCE, 2007, 318 (5858) :1910-1913
[8]   THERMAL CONDUCTIVITY OF ROCK-FORMING MINERALS [J].
HORAI, KI .
JOURNAL OF GEOPHYSICAL RESEARCH, 1971, 76 (05) :1278-&
[9]   Serpentinization of the forearc mantle [J].
Hyndman, RD ;
Peacock, SM .
EARTH AND PLANETARY SCIENCE LETTERS, 2003, 212 (3-4) :417-432
[10]   Phase transformations in serpentine and transportation of water into the lower mantle [J].
Irifune, T ;
Kubo, N ;
Isshiki, M ;
Yamasaki, Y .
GEOPHYSICAL RESEARCH LETTERS, 1998, 25 (02) :203-206