Granite, gabbro and mafic microgranular enclaves in the Gejiu area, Yunnan Province, China: a case of two-stage mixing of crust- and mantle-derived magmas

被引:67
作者
Cheng, Yanbo [1 ,2 ]
Spandler, Carl [2 ]
Mao, Jingwen [1 ,3 ]
Rusk, Brian G. [2 ]
机构
[1] China Univ Geosci, Fac Earth Sci & Mineral Resources, Beijing 100083, Peoples R China
[2] James Cook Univ, Sch Earth & Environm Sci, Townsville, Qld 4811, Australia
[3] Chinese Acad Geol Sci, MLR Lab Metallogeny & Mineral Assessment, Inst Mineral Resources, Beijing 100037, Peoples R China
基金
美国国家科学基金会;
关键词
Magma mixing; Magma mingling; Mafic microgranular enclaves; Gabbro; Gejiu; CENTRAL SIERRA-NEVADA; LACHLAN FOLD BELT; NATURAL REFERENCE MATERIAL; PLASMA-MASS SPECTROMETRY; A-TYPE GRANITE; U-PB; LASER-ABLATION; ISOTOPIC COMPOSITIONS; NORTHEAST CHINA; YANGTZE CRATON;
D O I
10.1007/s00410-012-0766-0
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
Geochronological, geochemical, whole-rock Sr-Nd, and zircon Hf isotopic analyses were carried out on the Jiasha Gabbro, mafic microgranular enclaves (MME) and host Longchahe Granite samples from the Gejiu area in the southeast Yunnan province, SW China, with the aim of characterizing their petrogenesis. Compositional zoning is evident in the gabbro body as the cumulate textures and mineral proportions in the gabbro interior are distinct from the gabbro margin. The Longchahe Granite largely comprises metaluminous quartz monzonite with distinctive K-feldspar megacrysts, but also contains a minor component of peraluminous leucogranite. The MME have spheroidal to elongated/lenticular shapes with sharp, crenulated and occasionally diffuse contacts with the host granite, which we attribute to the undercooling and disaggregation of mafic magma globules within the cooler host felsic magma. Field observations, geochronology, geochemistry, Sr-Nd and zircon Hf isotopic compositions point to a complex petrogenesis for this granite-MME-gabbro association. Zircon Pb-206/U-238 ages determined by LA-ICP-MS for a mafic enclave, its host granite and the gabbro body are 83.1 +/- A 0.9 Ma, 83.1 +/- A 0.4 Ma and 83.2 +/- A 0.4 Ma, respectively, indicating coeval crystallization of these igneous rock units. Crystal fractionation processes can explain much of the compositional diversity of the Jiasha Gabbro. The geochemical features of the gabbro, such as high Mg-# (up to 70) and Cr (up to 327 ppm), enrichment in LILEs (e.g., Rb, Ba, K2O) and LREEs, and depletion in HFSE (e.g., Nb, Ta, Ti), together with initial Sr-87/Sr-86 ratios of 0.708-0.709 and negative epsilon Nd(t) values (-5.23 to -6.45), indicate they were derived from a mantle source that had undergone previous enrichment, possibly by subduction components. The Longchahe Granite has a large range of SiO2 (59.87-74.94 wt%), is distinctly alkaline in composition, and has Sr-Nd-Hf isotopic compositions ((Sr-87/Sr-86)(i) > 0.712, epsilon Nd(t) = -6.93 to -7.62 and epsilon Hf(t) = -5.8 to -9.9) that are indicative of derivation from a crustal source. However, the most primitive rocks of Longchahe Granite are compositionally distinct from any feasible crustal melt. We interpret the spectrum of rock types of the Longchahe Granite to have formed via mixing between crustally derived peraluminous leucogranite magma and mantle-derived magma of similar heritage to the Jiasha Gabbro. We speculate that this mixing event occurred early in the magmatic history of these rocks at relatively high temperature and/or deep in the crust to allow efficient physical mixing of magmas. Saturation and accumulation of K-feldspar and zircon in the mixed magma is invoked to explain the megacrystic K-feldspar and elevated K2O and Zr content of some of the granitic rocks. A later episode of magma mixing/mingling is preserved as the MME that have geochemical and isotopic compositions that, for the most part, are intermediate between the granite and the gabbro. The MME are interpreted to be fractionated melts of mafic magma related to gabbro that were subsequently injected into the cooler, partly crystalline granitic magma. Mingling and mixing processes within the convectively dynamic upper crustal magma chamber resulting in a hybrid (MME) magma. During this second mixing episode, element interdiffusion, rather than bulk physical mixing, is interpreted to be the dominant mixing process.
引用
收藏
页码:659 / 676
页数:18
相关论文
共 93 条
  • [61] A TALE OF 2 PLUTONS - GEOCHEMICAL EVIDENCE BEARING ON THE ORIGIN AND DIFFERENTIATION OF THE RED LAKE AND EAGLE PEAK PLUTONS, CENTRAL SIERRA-NEVADA, CALIFORNIA
    NOYES, HJ
    FREY, FA
    WONES, DR
    [J]. JOURNAL OF GEOLOGY, 1983, 91 (05) : 487 - 509
  • [62] Orsini J.B., 1991, ENCLAVES GRANITE PET, P445
  • [63] Contrasting Sr and Nd isotopic behaviour during magma mingling; new insights from the Mannum A-type granite
    Pankhurst, M. J.
    Vernon, R. H.
    Turner, S. P.
    Schaefer, B. F.
    Foden, J. D.
    [J]. LITHOS, 2011, 126 (3-4) : 135 - 146
  • [64] Magma mixing in the Sithonia Plutonic Complex, Greece: evidence from mafic microgranular enclaves
    Perugini, D
    Poli, G
    Christofides, G
    Eleftheriadis, G
    [J]. MINERALOGY AND PETROLOGY, 2003, 78 (3-4) : 173 - 200
  • [65] PESQUERA A, 1989, NEU JB MINERAL MH H, V10, P441
  • [66] The Longwood Igneous Complex, Southland, New Zealand: A Permo-Jurassic, intra-oceanic, subduction-related, I-type batholithic complex
    Price, Richard
    Spandler, Carl
    Arculus, Richard
    Reay, Anthony
    [J]. LITHOS, 2011, 126 (1-2) : 1 - 21
  • [67] Qin DX, 2008, STUDIES GEOLOGY GEJI
  • [68] MAGMA MIXING IN GRANITIC-ROCKS OF THE CENTRAL SIERRA-NEVADA, CALIFORNIA
    REID, JB
    EVANS, OC
    FATES, DG
    [J]. EARTH AND PLANETARY SCIENCE LETTERS, 1983, 66 (1-3) : 243 - 261
  • [69] Plesovice zircon -: A new natural reference material for U-Pb and Hf isotopic microanalysis
    Slama, Jiri
    Kosler, Jan
    Condon, Daniel J.
    Crowley, James L.
    Gerdes, Axel
    Hanchar, John M.
    Horstwood, Matthew S. A.
    Morris, George A.
    Nasdala, Lutz
    Norberg, Nicholas
    Schaltegger, Urs
    Schoene, Blair
    Tubrett, Michael N.
    Whitehouse, Martin J.
    [J]. CHEMICAL GEOLOGY, 2008, 249 (1-2) : 1 - 35
  • [70] Petrogenesis of the Greenhills Complex, Southland, New Zealand: magmatic differentiation and cumulate formation at the roots of a Permian island-arc volcano
    Spandler, CJ
    Arculus, RJ
    Eggins, SM
    Mavrogenes, JA
    Price, RC
    Reay, AJ
    [J]. CONTRIBUTIONS TO MINERALOGY AND PETROLOGY, 2003, 144 (06) : 703 - 721