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A novel apparatus for the simulation of eruptive gas-rock interactions

机译:一种模拟气喷作用的新型装置

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摘要

The chemical interactions between hot volcanic gases and co-erupted magmatic and lithic particles within eruption plumes and pyroclastic flows are increasingly investigated for their relevance to the impacts of ash emission on natural and human environments. Laboratory experiments are critical to our understanding of high-temperature gas-ash interactions, but previous studies are yet to replicate the chemical composition of the high-temperature volcanic gases involved. Here, we present a unique apparatus, the Advanced Gas-Ash Reactor, capable of generating an atmosphere of H2O, CO2, SO2 and HCl at temperatures ranging from 200 to 900 degrees C, under variable heating and cooling rates. Experiments utilising the reactor can inform investigations of a range of topics, from subsurface gas-rock interaction and in-plume gas adsorption processes, to the effect of ash surface chemistry on marine nutrient loadings and atmospheric chemistry. Our results demonstrate the differences in high-temperature gas uptake by volcanic glass powders under both hydrous and anhydrous atmospheres and, accordingly, demonstrate the utility of the new reactor.
机译:越来越多地研究热火山气体与喷发羽流和火山碎屑流中共喷出的岩浆和岩屑颗粒之间的化学相互作用,因为它们与粉尘排放对自然和人类环境的影响相关。实验室实验对于我们了解高温气-灰相互作用至关重要,但是以前的研究尚未复制所涉及的高温火山气的化学成分。在这里,我们介绍了一种独特的设备,即先进的灰烬反应器,它能够在200至900摄氏度的温度范围内以可变的加热和冷却速率产生H2O,CO2,SO2和HCl气氛。利用该反应堆进行的实验可以指导人们进行一系列主题的研究,从地下气体与岩石的相互作用以及在气体中的吸附过程,到灰分表面化学对海洋营养物负荷和大气化学的影响。我们的结果证明了在含水和无水气氛下火山玻璃粉末在高温气体吸收方面的差异,因此证明了该新反应器的实用性。

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