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Igneous and metamorphic geology

机译:火成岩和变质地质

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The plume-slab interaction facilitates the partial melting of the subducted oceanic crust in subduction zones and explains the pulse-like adakite eruptions in the Abukuma region, northeastern Japan from approximately 16 to 14. Ma, as well as the southwest-to-northeast migration of the adakite eruptions from southeastern China to southwestern Japan during the Cretaceous. Despite the potential implication of the plume-slab interaction to arc magmatism, the effects of the plume parameters on the partial melting of the subducted oceanic crust have not been quantitatively evaluated. Thus, we ran two-dimensional kinematic-dynamic numerical subduction experiments to evaluate the effect of the duration and thickness of the injected plume blob into the mantle wedge on the slab surface temperature. Along with the consideration of the injection of the plume blob, we consider diverse convergence rates and ages of the subducting slab with slab dips of 30° and 45°. Our model calculations show that the plume-slab interaction is a promising process that increases the slab surface temperature up to around 60. ℃, resulting in the partial melting of the subducted oceanic crust even though the plate age is 100. My (million years). Increases in the duration and thickness of the plume blob positively increase the peak temperatures of the slab surface. Increases in the convergence rate and age of the subducting slab almost systematically increase and decrease the slab surface temperature, respectively, which indicates that the net temperature contribution of the plume-slab interaction is similar regardless of the subduction parameters. We found that the contribution of time-evolving subduction parameters on the plume-slab interaction can be approximated using the subduction parameters of approximately 5. My before the time of the partial melting of the subducted oceanic crust. Our model calculations facilitate the first-order analysis of the plume-slab interaction in the subduction zones of which subduction parameters are not consistent with the observed adakite.
机译:羽流-平板相互作用促进了俯冲带俯冲洋壳的部分融化,并解释了日本东北部Abukuma地区大约16至14 Ma的脉动状白云石喷发,以及西南向东北的迁徙。白垩纪从中国东南部到日本西南部的白云石爆发。尽管羽流-板块相互作用可能对弧岩浆作用有潜在影响,但尚未定量评估羽流参数对俯冲洋壳部分熔融的影响。因此,我们进行了二维运动动力学数值俯冲实验,以评估注入到地幔楔中的羽状团的持续时间和厚度对板坯表面温度的影响。除了考虑注入羽状斑点外,我们还考虑俯冲板的俯冲角分别为30°和45°的不同收敛速度和年龄。我们的模型计算表明,羽流与板块的相互作用是一个有前途的过程,可以使板块的表面温度升高至60.℃左右,即使板龄为100,也会导致俯冲洋壳的部分熔融。My(百万年) 。羽状团的持续时间和厚度的增加会积极地增加平板表面的峰值温度。俯冲板的收敛速度和年龄的增加分别几乎系统地增大和减小了板的表面温度,这表明与俯冲参数无关,羽流板相互作用的净温度贡献是相似的。我们发现,随着时间的推移,俯冲参数对羽流-平板相互作用的贡献可以用大约5. My的俯冲参数来近似。在俯冲洋壳部分融化之前。我们的模型计算有助于对俯冲带中俯冲参数与所观察到的adakite不一致的俯冲带中的羽流-平板相互作用进行一阶分析。

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    《Oceanographic Literature Review》 |2016年第2期|309-312|共4页
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