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Crustal inheritance and a top-down control on arc magmatism at Mount St Helens

机译:St Mount St Helens arc Magmatism的地壳继承与自上而下控制

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In a subduction zone, the volcanic arc marks the location where magma, generated via flux melting in the mantle wedge, migrates through the crust and erupts. While the location of deep magma broadly defines the arc position, here we argue that crustal structures, identified in geophysical data from the Washington Cascades magmatic arc, are equally important in controlling magma ascent and defining the spatial distribution and compositional variability of erupted material. As imaged by a three-dimensional resistivity model, a broad lower-crustal mush zone containing 3-10% interconnected melt underlies this segment of the arc, interpreted to episodically feed upper-crustal magmatic systems and drive eruptions. Mount St Helens is fed by melt channelled around a mid-Tertiary batholith also imaged in the resistivity model and supported by potential-field data. Regionally, volcanism and seismicity are almost exclusive of the batholith, while at Mount St Helens, along its margin, the ascent of viscous felsic melt is enabled by deep-seated metasedimentary rocks. Both the anomalous forearc location and composition of St Helens magmas are products of this zone of localized extension along the batholith margin. This work is a compelling example of inherited structural control on local stress state and magmatism.
机译:在一个俯冲区中,火山电弧标记在岩石楔中熔化的岩浆产生的位置,通过地壳迁移并爆发。虽然深岩浆的位置广泛地定义了电弧位置,但在这里,我们认为在来自华盛顿级联岩石弧的地球物理数据中识别的地壳结构在控制岩浆上升和定义喷发物质的空间分布和组成变异性方面具有同样重要的。由于三维电阻率模型成像,含有3-10%互连熔体的宽下地壳糊区下潜区域底段下潜,解释为揭开外壳岩浆系统并驱动喷发。由Mount ST Helens通过熔体围绕在电阻率模型中成像的中三级浴池围绕的熔体进给并由潜在场数据支持。从地区,火山和地震性几乎包含浴袍,而在ST Helens沿着其边缘,粘性铰链熔体的上升由深座位的元岩体使能。 ST Helens Magmas的异常前臂位置和组成是沿着浴盆余量的本地延伸区域的产品。这项工作是局部应力状态和岩浆遗传结构控制的令人尖锐的例子。

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