地质学
分馏
镁铁质
地球化学
火成岩分异
磁铁矿
分步结晶(地质学)
锰
大陆弧
硅酸盐
安山岩
电子探针
矿物学
岩浆
矽卡岩
大陆地壳
火成岩
硫黄
岛弧
矿物氧化还原缓冲液
作者
Zhongxing Sun,Ting Li,Mengfei Ruan,Mingdi Gao,Chunxia Wei,Li Li,Xingcheng Liu,Xiaolin Xiong
标识
DOI:10.1093/petrology/egag081
摘要
Abstract Garnet fractionation is proposed to play a crucial role in driving calc-alkaline differentiation of continental arc magmas and the genesis of andesitic continental crust, yet identifying clear geochemical signatures of garnet fractionation remains challenging. Because of its high compatibility in garnet, manganese (Mn) offers a promising proxy for tracing garnet fractionation. Here, we experimentally determine Mn partition coefficients (DMn) between mafic minerals (olivine, orthopyroxene, clinopyroxene, garnet, and amphibole), magnetite and silicate melts at 0.5–3.5 GPa and 850–1400 °C with fO2 varying from FMQ−2.0 to FMQ+8.2 (FMQ: fayalite-magnetite-quartz fO2 buffer). Our results confirm that Mn is more compatible in garnet (DMn=2.8–19.5) than in other mafic minerals (0.6–7.7) and magnetite (1.7–5.6), and reveal that melt composition, particularly MgO content, exerts the dominant control on mineral-melt Mn partitioning. Using these data, we model MnO-MgO trends produced by fractionation of various mineral assemblages. The modeling demonstrates that only substantial fractionation (> 20–30 wt.%) of garnet and/or magnetite can produce a pronounced decrease in magma MnO with decreasing MgO. Given that magnetite rarely exceeds 10 wt.% of the fractionating assemblage due to its high Fe content, and assuming that fractional crystallization dominates the compositional variation of evolved arc magmas, we propose that a rapid decline in MnO content with decreasing MgO provides a robust geochemical indicator of significant garnet fractionation. Application of this Mn-based index to continental arc magmas reveals that significant garnet fractionation occurs only during the late stage of magma differentiation (MgO ≤ 5 ± 1.5 wt.%) in the Northern Andean, Central Andean, Cascades, and Mexican arcs. These findings provide new constraints on the role of garnet in the evolution of continental arc magmas and the formation of andesitic continental crust.
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