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首页> 外文期刊>International Geology Review >Geochemical constraints on the contribution of Louisville seamount materials to magmagenesis in the Lau back-arc basin, SW Pacific
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Geochemical constraints on the contribution of Louisville seamount materials to magmagenesis in the Lau back-arc basin, SW Pacific

机译:地球化学限制路易斯维尔海山物质对西南太平洋劳后弧盆地成岩作用的贡献

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摘要

Seamounts are an integral part of element recycling in global subduction zones. The published trace element and Pb-Sr-Nd isotope data for basaltic lavas from three key segments (Central Lau Spreading Ridge (CLSR), Eastern Lau Spreading Ridge (ELSR), and Valu Fa Ridge (VFR)) of the Lau back-arc basin were compiled to evaluate the contribution of Louisville seamount materials to their magma genesis. Two geochemical transitions, separating three provinces with distinct geochemical characteristics independent of ridge segmentation, were identified based on abrupt geochemical shifts. The origin of the geochemical transitions was determined to be the result of drastic compositional changes of subduction components added into the mantle source, rather than the transition from Indian to Pacific mid-ocean ridge basalt (MORB) mantle, or due to variable mantle fertilities. The most likely explanation for the drastic shifts in subduction input is the superimposition of Louisville materials on 'normal' subduction components consisting predominantly of aqueous fluids liberated from the down-going altered oceanic crust and minor pelagic sediment melts. Quantitative estimation reveals that Louisville materials contributed 0-74% and 21-83% of the Th budget, respectively, to CLSR and VFR lavas, but had no definite contribution to the lavas from the ELSR, which lies farthest away from the subducted Louisville seamount chain (LSC). The spatial association of the subducted LSC with the Louisville-affected segments suggests that the Louisville signature is regionally but not locally available in the Tonga subduction zone. Besides, the preferential melting of subducted old Cretaceous LSC crust instead of the old normal Pacific oceanic crust at similar depths implies that elevated temperature across the subduction interface or seamount erosion and rupture were required to trigger melting. A wider implication of this study, thus, is that seamount subduction may promote efficiency of element recycling in subduction zones.
机译:海山是全球俯冲带中元素回收不可或缺的一部分。已发布的劳氏后弧的三个主要断面(中央劳氏展布岭(CLSR),东部劳氏展布岭(ELSR)和瓦卢法岭(VFR))的玄武岩熔岩的痕量元素和Pb-Sr-Nd同位素数据对该盆地进行了评估,以评估路易斯维尔海山物质对其岩浆成因的贡献。根据突然的地球化学变化,确定了两个地球化学过渡,将三个具有不同地球化学特征的省份(不依赖于脊段分割)分开。地球化学转变的起源被确定为地幔源中俯冲成分急剧成分变化的结果,而不是从印度洋向太平洋中洋脊玄武岩(MORB)地幔的转变或地幔肥力的变化。俯冲输入急剧变化的最可能解释是路易斯维尔材料叠加在“正常”俯冲组件上,这些组件主要由不断变化的大洋地壳和少量的上层沉积物熔体释放出的含水流体组成。定量估计显示,路易斯维尔的物质分别为CLSR和VFR熔岩贡献了Th预算的0-74%和21-83%,但ELSR对熔岩没有确定的贡献,ELSR距俯冲的路易斯维尔海山最远。链(LSC)。俯冲的LSC与受路易斯维尔影响的地段的空间联系表明,路易斯维尔的特征在区域上是存在的,但在汤加俯冲带中并不存在。此外,俯冲的老白垩纪LSC壳的优先熔化,而不是相似深度的正常太平洋老壳的优先熔化,意味着俯冲界面的温度升高或海山的侵蚀和破裂都需要触发熔化。因此,这项研究的更广泛的含义是海山俯冲可以提高俯冲带中元素的循环利用效率。

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