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首页> 外文期刊>Journal of Petrology >The Pressure–Temperature Path and the Origin of Phlogopite in Spinel–Garnet Peridotites from the Blanský Les Massif of the Moldanubian Zone, Czech Republic
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The Pressure–Temperature Path and the Origin of Phlogopite in Spinel–Garnet Peridotites from the Blanský Les Massif of the Moldanubian Zone, Czech Republic

机译:捷克摩尔达努比亚地区布兰斯基莱斯地块的尖晶石-石榴石橄榄岩中的压力-温度路径和金云母的成因

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摘要

A new lithotype of peridotite, phlogopite- and apatite-bearing spinel–garnet peridotite, associated with leucocratic granulite, has been recognized at the Plešovice quarry in the Gföhl Unit within the Moldanubian Zone of the Bohemian Massif, Czech Republic. There are three equilibrium stages in the Plešovice peridotite. The existence of Stage I, the precursor spinel ± garnet peridotite stage, is supported by the presence of an aluminous (Al2O3 ∼ 3·0 wt %) orthopyroxene megacryst in the matrix. The minimum temperature of Stage I was estimated to be 1020 ± 15°C. Stage II is defined by the cores of relatively large (3 mm long) grains of olivine, low-Al orthopyroxene (Al2O3 ∼ 1·3–1·7 wt %), clinopyroxene, and chromian spinel [Cr/(Cr + Al) = 0·50–0·57], along with relatively small (1 mm long) Ba-rich phlogopite (BaO = 1·0–4·0 wt %), Sr-rich apatite (SrO ∼1·7 wt %) and rare potassic (K2O ∼0·9–1·2 wt %) amphibole. Garnet generally occurs as large spheroidal grains (up to 20 mm in diameter). It contains inclusions of olivine, orthopyroxene, chromian spinel, and phlogopite, all of which have similar compositions to their matrix counterparts. Therefore, garnet appears to be in equilibrium with the matrix phases at Stage II. Application of appropriate geothermobarometers to the assemblage at Stage II yielded temperatures of 850–1030°C and pressures of 2·3–3·5 GPa. Stage III is defined by aluminous orthopyroxene (Al2O3 ∼ 2·1–4·0 wt %), aluminous clinopyroxene and aluminous spinel along with pargasitic amphibole and Ba-rich phlogopite in kelyphite; temperature conditions at this stage were estimated to be 730–770 (± 27)°C at 0·8–1·5 GPa. Multiphase solid inclusions, mainly composed of phlogopite, dolomite, apatite and calcite with minor amounts of chlorite and magnesiohornblende, are present only within large grains of chromian spinel, which are surrounded by kelyphites. The idiomorphic outline of the multiphase solid inclusions suggests that frozen remnants of carbonatite melts or supercritical fluids were trapped in the spinel. The mineral assemblage in the multiphase solid inclusions suggests relatively low-P and low-T conditions (T 750°C; P 1·6 GPa) for its crystallization. Furthermore, the timing of the crystallization of the multiphase solid inclusions appears to predate Stage II, as most multiphase solid inclusions are completely surrounded by the host chromian spinel. These data suggest that the Plešovice peridotite experienced cooling after Stage I and was then transformed to spinel–garnet peridotite by subsequent subduction processes.
机译:在捷克共和国波西米亚地块的摩尔达努比亚地区Gföhl单元的Plešovice采石场,人们认识到一种新的岩石类型的橄榄岩,金云母和磷灰石-含尖晶石-石榴石橄榄石,与白云石粒状花岗岩相关。 Plešovice橄榄岩中存在三个平衡阶段。铝(Al 2 O 3 〜3·0 wt%)邻位比邻苯大晶大晶体的存在支持了前期尖晶石±石榴石橄榄岩阶段I的存在。在矩阵中。第一阶段的最低温度估计为1020±15°C。第二阶段是由相对较大(<3 mm长)的橄榄石,低铝邻苯二茂铁(Al 2 O 3 〜1·3-1–· 7 wt%),斜晶石和铬尖晶石[Cr /(Cr + Al)= 0·50-0·57],以及相对较小(<1 mm长)的富含Ba的金云母(BaO = 1·0-4 ·0 wt%),富含Sr的磷灰石(SrO〜1·7 wt%)和稀有钾肥(K 2 O〜0·9-1·2 wt%)闪石。石榴石通常以大的球形颗粒(直径最大20毫米)出现。它包含橄榄石,邻苯二甲苯,铬尖晶石和金云母的内含物,所有这些都具有与基质对应物相似的成分。因此,石榴石在第二阶段似乎与基质相处于平衡状态。在第二阶段的组合中使用适当的地热气压计可产生850-1030°C的温度和2·3-3·5 GPa的压力。第三阶段定义为铝邻苯二甲酚(Al 2 O 3 〜2·1-4–0重量%),铝基斜ino和铝尖晶石以及随生的闪石和Ba-锂辉石中富含金云母;在0·8-1·5 GPa下,此阶段的温度条件估计为730–770(±27)°C。多相固体夹杂物主要由金云母,白云石,磷灰石和方解石组成,并含有少量的亚氯酸盐和菱镁矿,仅存在于被尖晶石包围的大铬尖晶石晶粒内。多相固体包裹体的特有轮廓表明,碳酸盐熔体或超临界流体的冷冻残余物被捕获在尖晶石中。多相固体夹杂物中的矿物组合表明其结晶具有较低的P和低T条件(T <750°C; P <1·6 GPa)。此外,多相固体夹杂物的结晶时间似乎早于阶段II,因为大多数多相固体夹杂物被主体铬尖晶石完全包围。这些数据表明,Plešovice橄榄岩在第一阶段之后经历了冷却,然后通过随后的俯冲过程转变为尖晶石-石榴石橄榄岩。

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  • 来源
    《Journal of Petrology 》 |2009年第10期| p.1795-1827| 共33页
  • 作者单位

    1Department of Geology and Mineralogy, Graduate School of Science, Kyoto University, Kyoto 606-8502, Japan 2Institute of Geology, Academy of Sciences of the Czech Republic, V.V.I., RozvojovÁ 269, 16502 Praha 6, Czech Republic;

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