An in situ experimental study of Zr4+ transport capacity of water-rich fluids in the temperature and pressure range of the deep crust and upper mantle

被引:10
作者
Mysen, Bjorn [1 ]
机构
[1] Carnegie Inst Sci, Geophys Lab, Washington, DC 20005 USA
基金
美国国家科学基金会;
关键词
Mass transfer; Aqueous fluid; High pressure; Structure; Solubility; Spectroscopy; AQUEOUS FLUIDS; ZIRCON SOLUBILITY; RAMAN-SCATTERING; SILICATE MELTS; BILLION YEARS; SPECIATION; RUTILE; FRACTIONATION; COMPLEXATION; DEPENDENCE;
D O I
10.1186/s40645-015-0070-5
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
Throughout the Earth's history, mass transport involved fluids. In order to address the circumstances under which Zr4+ may have been transported in this manner, its solubility behavior in aqueous fluid with and without NaOH and SiO2 in equilibrium with crystalline ZrO2 was determined from 550 to 950 degrees C and 60 to 1200 MPa. The measurements were carried out in situ while the samples were at the temperatures and pressures of interest. In ZrO2-H2O and ZrO2-SiO2-H2O fluids, the Zr4+ concentration ranges from <= 10 to similar to 70 ppm with increasing temperature and pressure. Addition of SiO2 to the ZrO2-H2O system does not affect these values appreciably. In these two environments, Zr4+ forms simple oxide complexes in the H2O fluid with Delta H similar to 40 kJ/mol for the solution equilibrium, ZrO2(solid) = ZrO2(fluid). The Zr4+ concentration in aqueous fluid increases about an order of magnitude upon addition of 1 M NaOH, which reflects the formation of zirconate complexes. The principal solution mechanism is ZrO2 + 4NaOH = Na4ZrO4 + 2H(2)O with Delta H similar to 200 kJ/mol. Addition of both SiO2 and NaOH to ZrO2-H2O enhances the Zr4+ by an additional factor of about 5 with the formation of partially protonated alkali zircon silicate complexes in the fluid. The principal solution mechanism is 2ZrO(2) + 2NaOH + 2SiO(2) = Na2Zr2Si2O9+ H2O with Delta H similar to 40 kJ/mol. These results, in combination with other published experimental data, imply that fluid released during high-temperature/high-pressure dehydration of hydrous mineral assemblages in the Earth's interior under some circumstances may carry significant concentrations of Zr and probably other high field strength elements (HFSEs). This suggestion is consistent with the occurrence of Zr-rich veins in high-grade metamorphic eclogite and granulite terranes. Moreover, aqueous fluids transported from dehydrating oceanic crust into overlying mantle source rocks of partial melting also may carry high-abundance HFSE of fluids released from dehydrating slabs and transported to the source rock of partial melting in the overlying mantle wedge. These processes may have been operational in the Earth's history within which subduction resembling that observed today was operational.
引用
收藏
页数:13
相关论文
共 51 条
[31]   Oxygen-isotope evidence from ancient zircons for liquid water at the Earth's surface 4,300 Myr ago [J].
Mojzsis, SJ ;
Harrison, TM ;
Pidgeon, RT .
NATURE, 2001, 409 (6817) :178-181
[32]   Polyphase zircon in ultrahigh-temperature granulites (Rogaland, SW Norway):: constraints for Pb diffusion in zircon [J].
Möller, A ;
O'Brien, PJ ;
Kennedy, A ;
Kröner, A .
JOURNAL OF METAMORPHIC GEOLOGY, 2002, 20 (08) :727-740
[33]   Carbon speciation in silicate-C-O-H melt and fluid as a function of redox conditions: An experimental study, in situ to 1.7 GPa and 900 °C [J].
Mysen, Bjorn .
AMERICAN MINERALOGIST, 2015, 100 (04) :872-882
[34]   High-pressure and high-temperature titanium solution mechanisms in silicate-saturated aqueous fluids and hydrous silicate melts [J].
Mysen, Bjorn .
AMERICAN MINERALOGIST, 2012, 97 (07) :1241-1251
[35]   Speciation of reduced C-O-H volatiles in coexisting fluids and silicate melts determined in-situ to ∼1.4 GPa and 800 °C [J].
Mysen, Bjorn O. ;
Yamashita, Shigeru .
GEOCHIMICA ET COSMOCHIMICA ACTA, 2010, 74 (15) :4577-4588
[36]   VOLATILES IN SILICATE MELTS AT HIGH-PRESSURE AND TEMPERATURE .1. INTERACTION BETWEEN OH GROUPS AND SI-4+, AL-3+, CA-2+, NA+ AND H+ [J].
MYSEN, BO ;
VIRGO, D .
CHEMICAL GEOLOGY, 1986, 57 (3-4) :303-331
[37]   Free energy of formation of zircon based on solubility measurements at high temperature and pressure [J].
Newton, Robert C. ;
Manning, Craig E. ;
Hanchar, John M. ;
Colasanti, Clinton V. .
AMERICAN MINERALOGIST, 2010, 95 (01) :52-58
[38]   SPECIATION OF AL, SI, AND K IN SUPERCRITICAL SOLUTIONS - EXPERIMENTAL-STUDY AND INTERPRETATION [J].
PASCAL, ML ;
ANDERSON, GM .
GEOCHIMICA ET COSMOCHIMICA ACTA, 1989, 53 (08) :1843-1855
[39]   TRACE-ELEMENT-RICH BRINES IN ECLOGITIC VEINS - IMPLICATIONS FOR FLUID COMPOSITION AND TRANSPORT DURING SUBDUCTION [J].
PHILIPPOT, P ;
SELVERSTONE, J .
CONTRIBUTIONS TO MINERALOGY AND PETROLOGY, 1991, 106 (04) :417-430
[40]   The diamond C-13/C-12 isotope Raman pressure sensor system for high-temperature/pressure diamond-anvil cells with reactive samples [J].
Schiferl, D ;
Nicol, M ;
Zaug, JM ;
Sharma, SK ;
Cooney, TF ;
Wang, SY ;
Anthony, TR ;
Fleischer, JF .
JOURNAL OF APPLIED PHYSICS, 1997, 82 (07) :3256-3265