Mineralogical characteristics and significance of beryl from the rare-element pegmatites in the Lushi County, East Qinling, China

被引:26
|
作者
Zhou QiFeng [1 ,2 ]
Qin KeZhang [1 ,3 ,4 ]
Tang DongMei [1 ,3 ]
Wang ChunLong [1 ,5 ]
Ma LiuSuo [6 ]
机构
[1] Chinese Acad Sci, Inst Geol & Geophys, Key Lab Mineral Resources, Beijing 100029, Peoples R China
[2] China Met Geol Bur, Inst Mineral Resources Res, Beijing 101300, Peoples R China
[3] Chinese Acad Sci, Inst Earth Sci, Beijing 100029, Peoples R China
[4] Univ Chinese Acad Sci, Coll Earth & Planetary Sci, Beijing 100049, Peoples R China
[5] China Univ Geosci, Fac Earth Resources, Wuhan 430074, Hubei, Peoples R China
[6] Bur Nat Resources Lushi Cty, Sanmenxia 472200, Peoples R China
关键词
Beryl; Element substitution; Indicators of the degree of evolution of granitic pegmatite; Rare-element mineralization; Lushi County; East Qinling; GRANITIC PEGMATITES; CHEMICAL EVOLUTION; COLUMBITE-TANTALITE; TECTONIC EVOLUTION; CRYSTAL-CHEMISTRY; BLUE AQUAMARINE; MELT INCLUSIONS; OROGENIC BELT; S-TYPE; U-PB;
D O I
10.18654/1000-0569/2019.07.04
中图分类号
P5 [地质学];
学科分类号
0709 ; 081803 ;
摘要
Beryl which is one of the most important beryllium minerals records the rock-forming process and rare-element (REL) mineralization of granitic pegmatites. East Qinling Lushi pegmatite district is a famous rare-element producing area in China. This study investigated the internal zonation patterns of the pegmatite dykes from the East Qinling, including No. 703 Li-mineralized pegmatite and No. 302 Be-mineralized pegmatites in Nanyangshan, Qiantai Li-mineralized pegmatite in Qiligou-Qiantai, Daxigou and Jiucaigou Li-mineralized pegmatites in Caijiagou, Xishan'gou and Wayaogou Be-mineralized pegmatites in Wayaogou. These pegmatites belong to peraluminous LCT-family and REL-Li subtype. The Nanyangshan No. 703, Jiucaigou and Daxigou pegmatites belong to complex type and spodumene subtype, while the Qiantai pegmatite belong to albite-spodumene type. The Nanyangshan No. 302, Wayaogou and Xishan'gou pegmatites belong to beryl type and beryl-columbite subtype. The EMPA results show that beryls are enriched in alkali and poor in iron and magnesium. The substitution mechanisms of beryl from the REL pegmatites in the East Qinling are channel-octahedral, channel-tetrahedral and alkali cations in channel. The substitutions of beryl from the Xishan'gou and Wayaogou are Na(Fe2+, Mg) square(-1) Al-1 and NaLi square(-1) Be-1, respectively. The beryls from the No. 302, Qiantai, Daxigou and Jiucaigou pegmatites mainly display substitution of (Na, Cs) Li square(-1) Be-1, while the substitutions: (1) NaFe2+ square(-1) Al-1, (2) NaCs-1 and (3) (Na, Cs) Li square(-1) Be-1 were revealed for the No. 703 pegmatite. The Cs2O contents and Na/Cs values indicate a sequence of the decreasing degree of fractionation and evolution of pegmatites, which is No. 703 -> Qiantai -> (Daxigou and Caijiagou) -> No. 302 -> (Xishan'gou and Wayaogou). Li-mineralized pegmatitic magma is more highly fractionated than those of beryllium mineralization. The internal zonation patterns of beryls are homogeneous grain, layered zoning, alteration borders, patches and complex irregular zoning in BSE images. Compared with the Be-mineralized pegmatites, the beryls from the Li-mineralized pegmatites show more complex internal zonation patterns, reflecting strong liquid immiscibility and replacement. With the increase of degree of fractionation and evolution of pegmatitic magma, the FeO contents of beryl decrease and the internal structures of beryl become more complex, such as alteration border and irregular zoning. The FeO content and internal structure of beryl could be potential indicators of the degree of fractionation and evolution of pegmatites. The chemical compositions and internal structure features of beryl suggest that Li-mineralized pegmatitic magma is highly fractionated REL pegmatitic magma when it is emplaced. The Daxigou, Jiucaigou and Qiantai Li-mineralized pegmatites did not undergo obvious fractionation, while the No. 703 pegmatites experienced fractionation and evolution after emplacement to finish further REL-enrichment. The lithium mineralization mechanisms are fractional crystallization and liquid immiscibility.
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页码:1999 / 2012
页数:14
相关论文
共 86 条
  • [1] AINES RD, 1984, AM MINERAL, V69, P319
  • [2] Geochemistry of feldspars and muscovite in granitic pegmatite from the Cap de Creus field, Catalonia, Spain
    Alfonso, P
    Melgarejo, JC
    Yusta, I
    Velasco, F
    [J]. CANADIAN MINERALOGIST, 2003, 41 : 103 - 116
  • [3] Armstrong J.T., 1989, CITZAF: Combined ZAF and Phi-rho (Z) Electron Beam Correction Programs
  • [4] AURISICCHIO C, 1988, AM MINERAL, V73, P826
  • [5] 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
    Badanina, Elena V.
    Trumbull, Robert B.
    Dulski, Peter
    Wiedenbeck, Michael
    Veksler, Ilya V.
    Syritso, Ludmila F.
    [J]. CANADIAN MINERALOGIST, 2006, 44 : 667 - 692
  • [6] [白峰 Bai Feng], 2011, [岩石矿物学杂志, Acta Petrologica et Mineralogica], V30, P281
  • [7] BAKAKIN VV, 1969, DOKL AKAD NAUK SSSR+, V188, P659
  • [8] DIFFERENTIATION OF STRONGLY PERALUMINOUS, PERPHOSPHORUS GRANITES - THE PEDROBERNARDO PLUTON, CENTRAL SPAIN
    BEA, F
    PEREIRA, MD
    CORRETGE, LG
    FERSHTATER, GB
    [J]. GEOCHIMICA ET COSMOCHIMICA ACTA, 1994, 58 (12) : 2609 - 2627
  • [9] Petrogenetic significance of LA-ICP-MS trace-element data on quartz from the Borborema Pegmatite Province, northeast Brazil
    Beurlen, H.
    Muller, A.
    Silva, D.
    Da Silva, M. R. R.
    [J]. MINERALOGICAL MAGAZINE, 2011, 75 (05) : 2703 - 2719
  • [10] Bidny AS, 2011, MOSC UNIV GEOL BULL, V66, P108, DOI 10.3103/S0145875211020037