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Propagation style controls lava-snow interactions

机译:传播方式控制熔岩与雪的相互作用

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摘要

Understanding interactions between volcanic eruptions and the cryosphere (a.k.a. glaciovolcanism) is important for climate reconstructions as well as for hazard mitigation at ice-clad volcanoes. Here we present unique field observations of interactions between snowpack and advancing basaltic lava flows during the 2012-13 eruption at Tolbachik volcano, Kamchatka, Russia. Our observations show that lava-snow heat transfer is slow, and that styles of lava propagation control snowpack responses. 'A'a and sheet lava flows advance in a rolling caterpillar-track motion on top of the rigid, snowpack substrate with minor lava-snow interaction. In contrast, pahoehoe lava propagates by inflation of lobes beneath/ inside the snowpack, producing rigorous lava-snow interaction via meltwater percolation down into the incandescent lava causing production of voluminous steam, rapid surface cooling and thermal shock fragmentation. The textures produced by pahoehoe-snowpack interactions are distinctive and, where observed at other sites, can be used to infer syn-eruption seasonality and climatic conditions.
机译:理解火山喷发与冰冻圈之间的相互作用(又称冰川火山作用)对于气候重建以及冰山火山的减灾至关重要。在这里,我们展示了俄罗斯堪察加半岛Tolbachik火山在2012-13年喷发期间积雪与前进的玄武岩熔岩流之间相互作用的独特野外观察。我们的观察表明,熔岩与雪之间的热传递很慢,而熔岩的传播方式控制了积雪的响应。 'A'a和片状熔岩流在坚硬的积雪基底上以毛毛虫-履带的滚动运动前进,而熔岩与雪之间的相互作用较小。相比之下,pa火熔岩通过雪堆下方/内部的裂片膨胀而传播,通过熔融水渗入白炽熔岩而产生严格的熔岩与雪的相互作用,从而产生大量蒸汽,快速的表面冷却和热冲击破碎。由pahoehoe-snowpack相互作用产生的纹理是独特的,并且在其他站点观察到的纹理可用于推断协同爆发的季节和气候条件。

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