The behavior of rare-earth and lithophile trace elements in rare-metal granites: A study of fluorite, melt inclusions and host rocks from the Khangilay complex, Transbaikalia, Russia

被引:61
作者
Badanina, Elena V.
Trumbull, Robert B.
Dulski, Peter
Wiedenbeck, Michael
Veksler, Ilya V.
Syritso, Ludmila F.
机构
[1] St Petersburg State Univ, Dept Geochem, St Petersburg 199034, Russia
[2] Geoforschungszentrum Potsdam, Sekt 4 2, D-14473 Potsdam, Germany
[3] Geoforschungszentrum Potsdam, Sekt 3 3, D-14473 Potsdam, Germany
[4] St Petersburg State Univ, Sci Res Inst Earth Crust, St Petersburg 199034, Russia
关键词
melt inclusions; tetrad effect; rare-earth elements; fluorite; rare-metal granites; hydrosaline melt; immiscibility; secondary-ion mass spectrometry; Orlovka; Spokojnoje; Transbaikalia; Russia;
D O I
10.2113/gscanmin.44.3.667
中图分类号
P57 [矿物学];
学科分类号
070901 ;
摘要
We have determined trace-element concentrations in fluorite mineral separates, host granites and residual melts trapped in quartz from a well-documented sequence of differentiated Li-F-rich granites in the Khangilay complex. Transbaikalia, Russia, which are associated with Ta (Orlovka) and W (Spokojnoje) mineralization. Fluorite is a common accessory mineral in most units of the granite sequence and in greisen veins from their hydrothermal aureoles. This allows us to monitor the behavior of REE and other fluorite-compatible trace elements during the magma evolution, and to compare magmatic and hydrothermal REE signatures directly. With increasing differentiation of the granites, REE abundances decrease, chondrite-normalized patterns become flat, and negative Eu anomalies more pronounced. Fluorite separates from the respective granites show similar REE patterns and 5-10 times higher concentrations (up to 4000 ppm total REE). First-order features of the whole-rock, fluorite and melt-inclusion REE characteristics are the presence of extreme negative Eu anomalies and the strong lanthanide tetrad effects in the more evolved units. Samples with the tetrad effect also show strong separation of geochemical twin elements (Y-Ho, Zr-Hf). Although melt-inclusion data prove that the lanthanide tetrad effect developed during the magmatic stage, the process cannot be explained by simple fractional crystallization. Partitioning of REE to a F-bearing hydrothermal solution also is unlikely because hydrothermal fluorite from associated veins and greisen does not show complementary W-tetrads. We suggest that the tetrad effect and deviations of element ratios observed in this and other highly evolved F-rich granites are caused by separation of a F-rich hydrosaline melt. This is consistent with results of experimental partitioning studies of immiscible silicate and hydrosaline melts.
引用
收藏
页码:667 / 692
页数:26
相关论文
共 71 条
[1]  
Audétat A, 2000, GEOCHIM COSMOCHIM AC, V64, P3373
[2]   Magmatic evolution of Li-F, rare-metal granites: a case study of melt inclusions in the Khangilay complex, Eastern Transbaikalia (Russia) [J].
Badanina, EV ;
Veksler, IV ;
Thomas, R ;
Syritso, LF ;
Trumbull, RB .
CHEMICAL GEOLOGY, 2004, 210 (1-4) :113-133
[3]   FLUORINE IN GRANITIC ROCKS AND MELTS - REVIEW [J].
BAILEY, JC .
CHEMICAL GEOLOGY, 1977, 19 (01) :1-42
[4]   The lanthanide tetrad effect in highly evolved felsic igneous rocks - Reply [J].
Bau, M .
CONTRIBUTIONS TO MINERALOGY AND PETROLOGY, 1997, 128 (04) :409-412
[5]   Tracing element sources of hydrothermal mineral deposits:: REE and Y distribution and Sr-Nd-Pb isotopes in fluorite from MVT deposits in the Pennine Orefield, England [J].
Bau, M ;
Romer, RL ;
Lüders, V ;
Dulski, P .
MINERALIUM DEPOSITA, 2003, 38 (08) :992-1008
[6]   Controls on the fractionation of isovalent trace elements in magmatic and aqueous systems: Evidence from Y/Ho, Zr/Hf, and lanthanide tetrad effect [J].
Bau, M .
CONTRIBUTIONS TO MINERALOGY AND PETROLOGY, 1996, 123 (03) :323-333
[7]  
BAU M, 1995, CONTRIB MINERAL PETR, V119, P213, DOI 10.1007/s004100050037
[8]  
Beskin S. M., 1994, PETROLOGY+, V2, P68
[9]  
BEUS AA, 1982, REV BRASILEIRA GEOCI, V12, P410
[10]   Fluid-rock interaction during progressive migration of carbonatitic fluids, derived from small-scale trace element and Sr, Pb isotope distribution in hydrothermal fluorite [J].
Bühn, B ;
Schneider, J ;
Dulski, P ;
Rankin, AH .
GEOCHIMICA ET COSMOCHIMICA ACTA, 2003, 67 (23) :4577-4595