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Petrology and Geochemistry of Adakitic Dacites and High-MgO Andesites, and Related Calc-alkaline Dacites from the Miocene Okoppe Volcanic Field, N Hokkaido, Japan

机译:日本北海道中新世Okoppe火山田中的Adakitic针长岩和高MgO安山岩以及相关的Calc-碱性针长岩的岩石学和地球化学

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摘要

In the Okoppe area of North Hokkaido, Japan, the eruption of adakitic and calc-alkaline dacites was followed by high-Mg andesite (HMA) and calc-alkaline dacite during the Middle Miocene (12–10 Ma). Adakitic dacite is characterized by high Sr/Y and low Y, with Sr and Nd isotopic compositions identical to those of mid-ocean ridge basalt. It has higher MgO contents than adakites generated by experimental melting of metabasalt and amphibolite, and higher Ni and Cr contents than either Archean trondhjemite–tonalite–granodiorite or Early Cretaceous adakitic granites, which are considered to represent partial melts of subducted oceanic crust. This provides compelling evidence that adakitic dacite magma from Okoppe resulted from interaction of a melt derived from subducted oceanic basaltic crust and the overlying mantle wedge peridotite, with little modification to the adakitic melt signature and Sr and Nd isotopic values. The compositional variations in the Toyono adakitic dacite and associated calc-alkaline dacite probably resulted from mixing of the reacted magma and an evolved silicic dacite magma formed by fractional crystallization of the reacted magma. A disequilibrium phenocryst assemblage in the HMA may result from mixing of boninite and silicic andesite that resulted from crustal melting. Calc-alkaline dacites associated with the HMA were derived by fractional crystallization of silicic andesite and assimilation of crust with an enriched Sr isotopic signature. The most likely tectono-magmatic model for the production of adakitic dacite and HMA involves upwelling of hot asthenosphere into the subcontinental lithosphere beneath North Hokkaido and the back-arc side of the NE Japan arc, coincident with the spreading of the Kurile back-arc basin and Japan Sea back-arc basin. This resulted in a high geothermal gradient in the mantle wedge beneath North Hokkaido. The subsequent melting of a limited part of the cool oceanic crust subducting beneath Hokkaido produced adakitic magmas, which interacted with the overlying mantle wedge peridotite. These magmas subsequently reacted with an evolved calc-alkaline melt en route to the surface. Boninitic magma derived from the ascending hot asthenosphere in part reacted with crust-derived silicic andesitic magma, undergoing simultaneous fractional crystallization.
机译:在日本北海道北部的Okoppe地区,中新世中期(12-10 Ma)喷发了adakitic和钙碱性dacites,然后是高镁安山岩(HMA)和钙碱性dacite。 Adactic闪锌矿的特征是高Sr / Y和低Y,Sr和Nd同位素组成与中海脊玄武岩相同。它的MgO含量高于玄武岩和角闪石经实验熔融生成的akakite,Ni和Cr的含量高于太古宙的辉绿铁矿-辉绿岩-granodiorite或早白垩世的阿塔基花岗岩,它们被认为是俯冲洋壳的部分熔融。这提供了令人信服的证据,表明来自Okoppe的埃达克钠铁矿岩浆是由俯冲的海洋玄武岩地壳和上覆地幔楔形橄榄岩形成的熔体相互作用而产生的,而对埃达克熔体特征和Sr和Nd同位素值几乎没有改变。丰野重金属镁矾石和相关的钙碱性镁矾石的成分变化可能是由于反应后的岩浆和通过反应后的岩浆的分步结晶形成的演化的硅质钠铁矿岩浆的混合造成的。 HMA中不平衡的phenocryst组合可能是由于地壳融化导致的邦尼石和硅质安山岩混合所致。与HMA相关的calc-碱性数据是通过硅质安山岩的分步结晶和同化具有丰富Sr同位素特征的地壳而获得的。产生达克质达克铁矿和HMA的最可能的构造岩浆模型涉及热软流圈上升到北海道北部和日本东北弧后弧侧的次大陆岩石圈中,这与千岛后弧盆地的扩张相吻合。和日本海弧后盆地。这导致北海道北部的地幔楔中地热梯度较高。北海道下方俯冲的冷洋壳俯冲的有限部分随后融化,产生了adakitic岩浆,并与上覆的地幔楔形橄榄岩相互作用。这些岩浆随后在到达表面的过程中与逐渐形成的钙碱性熔体反应。从上升的软流圈上升而来的波尼尼特岩浆部分与壳源硅质安山岩浆反应,同时发生了部分结晶。

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  • 来源
    《Journal of Petrology》 |2012年第3期|p.547-588|共42页
  • 作者单位

    1Sezax Co., Ltd., 3-19-1 Shibuya, Shibuya-Ku, Tokyo 150-0002, Japan 2Graduate School of Science and Technology, Niigata University, 2-8050 Ikarashi, Nishi-Ku, Niigata 950-2181, Japan 3Institute of Science and Technology, Niigata University, 2-8050 Ikarashi, Nishi-Ku, Niigata 950-2181, Japan 4Exploration Section, Technical Department Itochu Oil Exploration Co., Ltd., 2-5-1 Kita-Aoyama, Minato-Ku, Tokyo 107-0061, Japan 5Institute for Frontier Research on Earth Evolution (Ifree), Japan Agency for Marine–Earth Science and Technology (Jamstec), Yokosuka 237-0061, Japan;

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