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来自深度俯冲洋壳的原生碳酸岩熔体。

Primary carbonatite melt from deeply subducted oceanic crust.

作者信息

Walter M J, Bulanova G P, Armstrong L S, Keshav S, Blundy J D, Gudfinnsson G, Lord O T, Lennie A R, Clark S M, Smith C B, Gobbo L

机构信息

Department of Earth Sciences, University of Bristol, Queen's Road, Bristol BS8 1RJ, UK.

出版信息

Nature. 2008 Jul 31;454(7204):622-5. doi: 10.1038/nature07132.

Abstract

Partial melting in the Earth's mantle plays an important part in generating the geochemical and isotopic diversity observed in volcanic rocks at the surface. Identifying the composition of these primary melts in the mantle is crucial for establishing links between mantle geochemical 'reservoirs' and fundamental geodynamic processes. Mineral inclusions in natural diamonds have provided a unique window into such deep mantle processes. Here we provide experimental and geochemical evidence that silicate mineral inclusions in diamonds from Juina, Brazil, crystallized from primary and evolved carbonatite melts in the mantle transition zone and deep upper mantle. The incompatible trace element abundances calculated for a melt coexisting with a calcium-titanium-silicate perovskite inclusion indicate deep melting of carbonated oceanic crust, probably at transition-zone depths. Further to perovskite, calcic-majorite garnet inclusions record crystallization in the deep upper mantle from an evolved melt that closely resembles estimates of primitive carbonatite on the basis of volcanic rocks. Small-degree melts of subducted crust can be viewed as agents of chemical mass-transfer in the upper mantle and transition zone, leaving a chemical imprint of ocean crust that can possibly endure for billions of years.

摘要

地幔中的部分熔融在产生地表火山岩中观察到的地球化学和同位素多样性方面起着重要作用。确定地幔中这些原始熔体的成分对于建立地幔地球化学“储库”与基本地球动力学过程之间的联系至关重要。天然钻石中的矿物包裹体为洞察此类深部地幔过程提供了一个独特的窗口。在此,我们提供实验和地球化学证据表明,来自巴西茹阿纳的钻石中的硅酸盐矿物包裹体是在地幔过渡带和深部上地幔中由原始和演化的碳酸岩熔体结晶而成的。与钙钛矿-钛硅酸盐包裹体共存的熔体的不相容微量元素丰度表明,碳酸化洋壳可能在过渡带深度发生了深部熔融。除了钙钛矿,含钙镁铝榴石包裹体记录了深部上地幔中一种演化熔体的结晶过程,这种熔体与基于火山岩的原始碳酸岩估计值非常相似。俯冲地壳的小程度熔体可被视为上地幔和过渡带中化学物质转移的介质,留下了可能持续数十亿年之久的洋壳化学印记。

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