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首页> 外文期刊>Earth and Planetary Science Letters: A Letter Journal Devoted to the Development in Time of the Earth and Planetary System >The size and shape of Kilauea Volcano's summit magma storage reservoir: a geochemical probe
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The size and shape of Kilauea Volcano's summit magma storage reservoir: a geochemical probe

机译:基拉韦厄火山山顶岩浆储层的大小和形状:地球化学探针

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摘要

One of the most important components of the magnetic plumbing system of Kilauea Volcano is the shallow (2-4 km deep) magma storage reservoir that underlies the volcano's summit region. Nevertheless, the geometry (shape and size) of Kilauea's summit reservoir is controversial. Two fundamentally different models for the reservoir's shape have been proposed based on geophysical observations: a plexus of dikes and sills versus a single, 'spherical' magma body. Furthermore, the size of the reservoir is poorly constrained with estimates ranging widely from 0.08 to 40 km~3. In this study, we use the temporal variations of Pb, Sr, and Nd isotope and incompatible trace element (e.g., La/Yb and Nb/Y) ratios of Kilauea's historical summit lavas (1790-1982) to probe the geometry of the volcano's summit reservoir. These lavas preserve a nearly continuous, 200-year record of the changes in the composition of the parental magma supplied to the volcano. The systematic temporal variations in lava chemistry at Kilauea since the early 19th century suggest that the shape of the volcano's summit reservoir is relatively simple. Residence time analysis of these rapid geochemical fluctuations indicates that the volume of magma in Kilauea's summit reservoir is only approx 2-3 km~3, which is smaller than most geophysical estimates (2-40 km~3). This discrepancy can be explained if the volume calculated from lava chemistry represents the hotter, molten core of the reservoir in which magma mixing occurs, whereas the volumes estimated from geophysical data also include portions of the reservoir's outer crystal-mush zone and a hot, ductile region that surrounds the reservoir. Although our volume estimate is small, the amount of magma stored within Kilauea's summit reservoir since the early 19th century is an order of magnitude larger than the magma body supplying Piton de la Fournaise Volcano, another frequently active
机译:基拉韦厄火山磁性管道系统的最重要组成部分之一是位于火山顶峰区域下方的浅层(深2-4公里)岩浆储层。尽管如此,基拉韦厄山顶水库的几何形状(形状和大小)还是有争议的。根据地球物理观测结果,提出了两种根本不同的储层形状模型:堤坝和基石丛与单个“球形”岩浆体。此外,水库的规模受约束较弱,估计范围从0.08至40 km〜3。在这项研究中,我们使用Pb,Sr和Nd同位素的时间变化以及基拉韦厄历史上的顶峰熔岩(1790-1982)的不相容痕量元素(例如,La / Yb和Nb / Y)之比来探测火山的几何形状。山顶水库。这些熔岩保存了近200年连续记录,记录了提供给火山的父母岩浆的成分变化。自19世纪初以来,基拉韦厄火山岩化学的系统性时空变化表明,火山顶峰储层的形状相对简单。对这些快速地球化学波动的停留时间分析表明,基拉韦厄山顶储层的岩浆体积仅为2-3 km〜3,比大多数地球物理估计值(2-40 km〜3)要小。如果通过熔岩化学方法计算出的体积代表了发生岩浆混合的储层中较热,熔融的岩心,而根据地球物理数据估算出的体积还包括储层外部的结晶糊状区和热的,韧性的,则可以解释这种差异。围绕水库的区域。尽管我们的估计量很小,但自19世纪初以来,基拉韦厄山顶水库中存储的岩浆数量比为另一个经常活跃的Piton de la Fournaise火山提供的岩浆体大一个数量级。

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