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Laser-induced plasma cloud interaction and ice multiplication under cirrus cloud conditions

机译:卷云条件下激光诱导的等离子体云相互作用和冰的繁殖

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摘要

Potential impacts of lightning-induced plasma on cloud ice formation and precipitation have been a subject of debate for decades. Here, we report on the interaction of laser-generated plasma channels with water and ice clouds observed in a large cloud simulation chamber. Under the conditions of a typical storm cloud, in which ice and supercooled water coexist, no direct influence of the plasma channels on ice formation or precipitation processes could be detected. Under conditions typical for thin cirrus ice clouds, however, the plasma channels induced a surprisingly strong effect of ice multiplication. Within a few minutes, the laser action led to a strong enhancement of the total ice particle number density in the chamber by up to a factor of 100, even though only a 10−9 fraction of the chamber volume was exposed to the plasma channels. The newly formed ice particles quickly reduced the water vapor pressure to ice saturation, thereby increasing the cloud optical thickness by up to three orders of magnitude. A model relying on the complete vaporization of ice particles in the laser filament and the condensation of the resulting water vapor on plasma ions reproduces our experimental findings. This surprising effect might open new perspectives for remote sensing of water vapor and ice in the upper troposphere.
机译:数十年来,雷电等离子体对云冰形成和降水的潜在影响一直是争论的主题。在这里,我们报告在大型云模拟室中观察到的激光生成等离子体通道与水和冰云的相互作用。在典型的暴风云下,冰和过冷水共存,无法检测到等离子体通道对冰的形成或降水过程的直接影响。但是,在薄卷云典型的条件下,等离子通道会产生惊人的强冰繁殖效果。在几分钟之内,即使只有10-9的腔室容积暴露在等离子通道中,激光作用也导致腔室内的总冰粒数密度大大提高了100倍。新形成的冰粒迅速将水蒸气压力降低至冰饱和,从而使云的光学厚度增加多达三个数量级。一个模型依赖于激光灯丝中冰粒的完全汽化以及生成的水蒸气在等离子体离子上的凝结,再现了我们的实验结果。这种令人惊讶的效果可能为遥感对流层高层的水汽和冰开辟新的前景。

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