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首页> 外文期刊>Earth and Planetary Science Letters: A Letter Journal Devoted to the Development in Time of the Earth and Planetary System >Nd-isotope systematics of ~2.7 Ga adakites, magnesian andesites, and arc basalts, Superior Province: evidence for shallow crustal recycling at Archean subduction zones
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Nd-isotope systematics of ~2.7 Ga adakites, magnesian andesites, and arc basalts, Superior Province: evidence for shallow crustal recycling at Archean subduction zones

机译:上级省〜2.7 Ga达克石,镁质安山岩和弧形玄武岩的Nd同位素系统:太古代俯冲带浅地壳回收的证据

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An association of adakite, magnesian andesite (MA), and Nb-enriched basalt (NEB) volcanic flows, which erupted within 'normal' intra-oceanic arc tholeiitic to calc-alkaline basalts, has recently been documented in ~2.7 Ga Wawa greenstone belts. Large, positive initial ε_(Nd) values (+1.95 to +2.45) of the adakites signify that their basaltic precursors, with a short crustal residence, were derived from a long-term depleted mantle source. It is likely that the adakites represent the melts of subducted late Archean oceanic crust. Initial ε_(Nd) values in the MA (+0.14 to +1.68), Nb-enriched basalts and andesites (NEBA) (+1.11 to +2.05), and 'normal' intra-oceanic arc tholeiitic to calc-alkaline basalts and andesites (+1.44 to +2.44) overlap with, but extend to lower values than, the adakites. Large, tightly clustered ε_(Nd) values of the adakites, together with Th/Ce and Ce/Yb systematics of the arc basalts that rule out sediment melting, place the enriched source in the sub-arc mantle. Accordingly, isotopic data for the MA, NEBA, and 'normal' arc basalts can be explained by melting of an isotopically heterogeneous sub-arc mantle that had been variably enriched by recycling of continental material into the shallow mantle in late Archean subduction zones up to 200 Ma prior to the 2.7 Ga arc. If the late Archean Wawa adakites, MA, and basalts were generated by similar geodynamic processes as their counterparts in Cenozoic arcs, involving subduction of young and/or hot ocean lithosphere, then it is likely that late Archean oceanic crust, and arc crust, were also created and destroyed by modern plate tectonic-like geodynamic processes. This study suggests that crustal recycling through subduction zone processes played an important role for the generation of heterogeneity in the Archean upper mantle. In addition, the results of this study indicate that the Nd-isotope compositions of Archean arc- and plume-derived volcanic rocks are not very distinct, whereas Phanerozoic plumes and intra-oceanic arcs tend to have different Nd-isotopic compositions.
机译:最近在〜2.7 Ga Wawa绿岩带中记录了由Adakite,镁质安山岩(MA)和Nb富玄武岩(NEB)火山流组成的火山流,这些火山流在“正常”的海洋弧内喷发,向钙碱性玄武岩喷发。 。达达石的大正初始ε_(Nd)初始值(+1.95至+2.45)表明其玄武岩前体(地壳停留时间短)来自长期耗尽的地幔源。达卡石很可能代表了俯冲的太古宙晚期洋壳的熔体。 MA的初始ε_(Nd)值(+0.14至+1.68),富Nb的玄武岩和安山岩(NEBA)(+1.11至+2.05)以及与钙碱性玄武岩和安山岩呈'正常'的洋弧(+1.44至+2.44)与adakites重叠,但延伸到比adakites低的值。大型,紧密聚集的玄武岩的ε_(Nd)值,以及排除沉积物融化的弧形玄武岩的Th / Ce和Ce / Yb系统,将富集源置于弧下地幔中。因此,MA,NEBA和“正常”弧形玄武岩的同位素数据可以通过将同位素物质异质亚弧地幔融化来解释,该同位素已通过将陆相物质再循环到太古宙俯冲带晚期至浅地幔中而得到了丰富的变化。在2.7 Ga弧之前200 Ma。如果晚古宙瓦瓦阿达克特,马萨诸塞州和玄武岩是通过与新生代弧中类似的地球动力学过程生成的,涉及到俯冲年轻和/或炎热的岩石圈,那么很可能是晚古宙海洋壳和弧壳。也被现代板块构造的地球动力学过程所破坏。这项研究表明,通过俯冲带过程进行的地壳再循环对于太古代上地幔非均质性的产生起着重要作用。此外,这项研究的结果表明,太古代弧和羽状火山岩的Nd同位素组成不是很明显,而生代羽和海洋内弧往往具有不同的Nd同位素组成。

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