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Magma fragmentation in highly explosive basaltic eruptions induced by rapid crystallization

机译:快速结晶诱导的高爆炸性玄武岩爆发的岩浆碎片

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Basaltic eruptions are the most common form of volcanism on Earth and planetary bodies. The low viscosity of basaltic magmas inhibits fragmentation, which favours effusive and lava-fountaining activity, yet highly explosive, hazardous basaltic eruptions occur. The processes that promote fragmentation of basaltic magma remain unclear and are subject to debate. Here we used a numerical conduit model to show that a rapid magma ascent during explosive eruptions produces a large undercooling. In situ experiments revealed that undercooling drives exceptionally rapid (in minutes) crystallization, which induces a step change in viscosity that triggers magma fragmentation. The experimentally produced textures are consistent with basaltic Plinian eruption products. We applied a numerical model to investigate basaltic magma fragmentation over a wide parameter space and found that all basaltic volcanoes have the potential to produce highly explosive eruptions. The critical requirements are initial magma temperatures lower than 1,100 degrees C to reach a syn-eruptive crystal content of over 30 vol%, and thus a magma viscosity around 10(5) Pa s, which our results suggest is the minimum viscosity required for the fragmentation of fast ascending basaltic magmas. These temperature, crystal content and viscosity requirements reveal how typically effusive basaltic volcanoes can produce unexpected highly explosive and hazardous eruptions.
机译:玄武岩爆发是地球和行星体上最常见的火山中的形式。玄武岩岩浆的低粘度抑制了碎片化,这些碎片化有利于波动和熔岩喷射活性,但很高的爆炸性,发生了危险的玄武岩爆发。促进玄武岩岩浆碎片的过程仍然尚不清楚,并受辩论。在这里,我们使用了数值导管模型来表明爆炸性喷发过程中的快速岩浆上升产生了大量的过冷。在原位实验表明,过冷却冷却驱动的结晶(以分钟为单位)结晶,这诱导粘度触发岩浆碎片的粘度的步骤变化。实验生产的纹理与玄武岩隆起产物一致。我们应用了一个数字模型来调查宽大参数空间的玄武岩岩浆碎片,发现所有玄武岩火山都有可能产生高爆发的爆发。关键要求是初始岩浆温度低于1,100℃,达到超过30体积%的同步爆发晶体含量,因此岩浆粘度约为10(5)PA S,我们的结果表明是所需的最低粘度快速升起玄武岩岩浆的碎片化。这些温度,晶体含量和粘度要求揭示了玄武岩火山通常如何产生意想不到的高度爆炸性和危险性爆发。

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