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Atmospheric Chemistry Special Feature: Atmospheric chemistry in volcanic plumes

机译:大气化学特征:火山羽中的大气化学

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摘要

Recent field observations have shown that the atmospheric plumes of quiescently degassing volcanoes are chemically very active, pointing to the role of chemical cycles involving halogen species and heterogeneous reactions on aerosol particles that have previously been unexplored for this type of volcanic plumes. Key features of these measurements can be reproduced by numerical models such as the one employed in this study. The model shows sustained high levels of reactive bromine in the plume, leading to extensive ozone destruction, that, depending on plume dispersal, can be maintained for several days. The very high concentrations of sulfur dioxide in the volcanic plume reduces the lifetime of the OH radical drastically, so that it is virtually absent in the volcanic plume. This would imply an increased lifetime of methane in volcanic plumes, unless reactive chlorine chemistry in the plume is strong enough to offset the lack of OH chemistry. A further effect of bromine chemistry in addition to ozone destruction shown by the model studies presented here, is the oxidation of mercury. This relates to mercury that has been coemitted with bromine from the volcano but also to background atmospheric mercury. The rapid oxidation of mercury implies a drastically reduced atmospheric lifetime of mercury so that the contribution of volcanic mercury to the atmospheric background might be less than previously thought. However, the implications, especially health and environmental effects due to deposition, might be substantial and warrant further studies, especially field measurements to test this hypothesis.
机译:最近的现场观察表明,处于静止状态的脱气火山的大气羽流在化学上非常活跃,这表明化学循环的作用涉及卤素种类和气溶胶颗粒上的异质反应,而此前对于这种类型的火山羽尚未进行过探索。这些测量的关键特征可以通过数值模型来重现,例如本研究中使用的模型。该模型显示出羽流中的反应性溴持续高水平,导致广泛的臭氧破坏,这取决于羽流的分散情况,可以维持数天。火山羽中非常高的二氧化硫浓度会大大缩短OH自由基的寿命,因此,在火山羽中实际上不存在。除非烟羽中的反应性氯化学强度足以抵消OH化学的不足,否则这将暗示甲烷在火山烟流中的寿命增加。此处提出的模型研究显示,除破坏臭氧外,溴化学的进一步影响是汞的氧化。这与火山中的溴共同释放出的汞,也与大气中的背景汞有关。汞的快速氧化意味着汞在大气中的寿命大大缩短,因此火山汞对大气本底的贡献可能小于以前的想象。但是,其影响,尤其是由于沉积造成的健康和环境影响,可能是实质性的,需要进一步研究,尤其是实地测量以检验该假设。

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