Major- and trace-elements in cratonic mantle eclogites and pyroxenites reveal heterogeneous sources and metamorphic processing of low-pressure protoliths

被引:71
作者
Aulbach, Sonja [1 ]
Jacob, Dorrit E. [2 ]
机构
[1] Goethe Univ Frankfurt, Inst Geosci, Altenhoferallee 1, D-60438 Frankfurt, Germany
[2] Macquarie Univ, Dept Earth & Planetary Sci, N Ryde, NSW, Australia
关键词
Kimberlite-borne xenoliths; Archaean oceanic crust; Convecting mantle sources; ROBERTS-VICTOR-KIMBERLITE; WHOLE-ROCK GEOCHEMISTRY; EARLY CONTINENTAL-CRUST; PALEOPROTEROZOIC SUBDUCTION; SLAVE CRATON; EXPERIMENTAL CONSTRAINTS; DIAMONDIFEROUS ECLOGITE; XENOLITHIC ECLOGITES; LITHOSPHERIC MANTLE; OCEANIC-CRUST;
D O I
10.1016/j.lithos.2016.07.026
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
There is a growing body of evidence for the origin of cratonic mantle edogite xenoliths by low-pressure formation in now-recycled ocean floors. Because they have protoliths ultimately derived from the convecting mantle, their study can potentially yield unprecedented insights into as yet little-understood palaeo-geodynamic regimes, once primary (fractional crystallisation, accumulation, mixing) and secondary processes (kimberlite infiltration, metasomatism) affecting their compositions are understood. This is achieved using diagnostic concentrations or ratios of the analytically and geologically most robust elements (major and minor elements, transition metals, REE), and aided by comparison to natural and modelled analogues. Here, mineral compositions taken from the literature were used to reconstruct bulk rocks and assign the samples to eclogites (further divided into high-Mg, low-Mg and high-Ca types), pyroxenites and their gabbroic (Eu* >1.05) counterparts. Various protolith types formed predominantly by <1 GPa crystallisation from broadly picritic magmas leaving garnet-poor mantle sources are identified: (1) Many high-Mg eclogites lie on modelled crystallisation trends between 0.5 and <1 GPa. Some have elevated FeO contents with lower SiO2 and CaO possibly requiring Fe-rich pyroxenite heterogeneities in their mantle source. (2) Many high-Ca eclogites may be the differentiated (higher Na2O, TiO2 and FeO at lower MgO) equivalents of high-Mg eclogites, following modelled crystallisation trends at somewhat lower pressure (0.05 to 0.5 GPa). Other high-Ca eclogites with low FeO were produced during interaction with fluids and melts in melange-type settings. (3) Low-Mg eclogites, with intermediate MgO content, are too FeO-rich to be intermediary crystallisation products of the same parental melt and are ascribed to melting out of Fe-rich lithologies possibly related to recycling of eclogite and/or contamination with ferromanganese sediments. (4) The positive Eu anomalies in gabbroic eclogites require accumulation of substantial amounts of plagioclase, consistent with their low FeO and TiO2 contents, but their simultaneously low MgO contents suggest that they interacted with residual melts. (5) The elevated CaO and low Al2O3 in pyroxenite may indicate clinopyroxene-rich high- or low-pressure cumulate protoliths, but high Cr2O3 and MgO, combined with low HREE and high LREE in many of these samples, suggests formation by hybridisation of eclogite-derived melt with peridotite. (C) 2016 Elsevier B.V. All rights reserved.
引用
收藏
页码:586 / 605
页数:20
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