首页> 外文期刊>Lithos: An International Journal of Mineralogy, Petrology, and Geochemistry >Discrimination of protolithic versus metamorphic zircon ages in eclogites: Constraints from the Erzgebirge metamorphic core complex (Germany)
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Discrimination of protolithic versus metamorphic zircon ages in eclogites: Constraints from the Erzgebirge metamorphic core complex (Germany)

机译:榴辉岩中原石质与变质锆石年龄的区别:Erzgebirge变质核复合物的限制(德国)

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Protolithic ages of meta-basites are crucial for tectonic reconstructions as they constrain the lifetime of oceans. However, in high-grade metamorphic regions most isotope systems record metamorphic ages due to the metamorphic overprint. The mineral zircon is the most suitable geochronometer for the determination of protolithic ages in such rocks due to its high closure temperature. Zircon from eclogites from the Eastern Erzgebirge meta-morphic complex yielded both protolithic (~540 Ma; 5 samples) and metamorphic (~340 Ma; 4 samples) ~(207)Pb/ ~(206)Pb ages. Detailed investigations of zircon grains within thin rock sections show that the metamorphic ages are related to new zircon growth caused by water infiltration that triggered decomposition of omphacite into an amphibole-plagioclase symplectite. Rutile and apatite frequently grew together with metamorphic zircons indicating local mobilization of Zr, Nb, LREE and P. Eclogites with omphacite breakdown are very dark in colour. In difference, lighter coloured eclogites contain K-feldspar and quartz indicating minor melt infiltration that caused breakdown of garnet and transformation of amphibole into biotite. This supports additional new growth of zircon . grains. In some samples idiomorphic zircon grains with a lot of micro-inclusions indicate a coupled dissolution-reprecipitation process. Additional rounded-resorbed and highly fractured zircon grains together with internal zircon textures imply multiple melt infiltration triggering multiple phases of zircon growth. Therefore, scattering zircon ages may reflect multiple growth stages or inheritance rather than prolonged periods of metamorphic growth. In contrast, protolithic zircon ages were found in eclogites where no water or melt infiltration occurred. This emphasizes the importance of water and/or melt infiltration for the new growth of zircon grains in eclogites. as was already shown for granulites in various studies. In the Eastern Erzgebirge, most eclogites and amphibolites' were derived from MORB-type or arc-related basalts while the plagioclase-rich amphibolites formed mainly from crustal sources. The protolith ages of meta-basites from the Eastern Erzgebirge (~540 Ma) document a bimodal. magmatic activity in a Cadomian back-arc basin.
机译:原始岩性时代对构造重建至关重要,因为它们限制了海洋的生命。但是,在高级变质区中,由于变质叠印,大多数同位素系统记录了变质年龄。锆石矿物因其较高的封闭温度而成为确定此类岩石中原石年龄的最合适的天文钟。东部埃尔兹gebirge变质复合体的榴辉岩中的锆石产生了(207)Pb /〜(206)Pb年龄的原石(〜540 Ma; 5个样品)和变质(〜340 Ma; 4个样品)。对薄岩段中锆石颗粒的详细研究表明,变质年龄与水渗透引起的新的锆石生长有关,水的渗透触发了辉绿岩分解为闪石-斜长石折闪石。金红石和磷灰石经常与变质锆石一起生长,表明Zr,Nb,LREE和P的局部动员。具有绿辉石分解的榴辉岩颜色非常深。与此不同,浅色的榴辉岩含有钾长石和石英,表明熔体渗入程度较小,导致石榴石分解和角闪石转变成黑云母。这支持了锆石的新增长。谷物。在一些样品中,具有大量微夹杂物的同质锆石晶粒表明了溶解-再沉淀过程的耦合。额外的圆形吸收和高度断裂的锆石晶粒以及内部的锆石织构意味着多重熔体渗透,触发了锆石的多个生长阶段。因此,分散的锆石年龄可能反映了多个生长阶段或遗传,而不是变质生长的延长时期。相反,在没有水或熔体渗透发生的榴辉岩中发现了原始石器时代的锆石。这强调了水和/或熔体渗透对于榴辉岩中锆石新生长的重要性。正如在各种研究中已经显示的粒料。在东部的厄尔士山脉,大部分的榴辉岩和角闪石均来自MORB型或与弧有关的玄武岩,而富含斜长石的角闪石主要来自地壳。东部埃尔兹gebirge(〜540 Ma)的准玄武岩的原生石年龄证明是双峰的。 Cadomian弧后盆地的岩浆活动。

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