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首页> 外文期刊>Earth and Planetary Science Letters: A Letter Journal Devoted to the Development in Time of the Earth and Planetary System >Ash sedimentation by fingering and sediment thermals from wind-affected volcanic plumes
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Ash sedimentation by fingering and sediment thermals from wind-affected volcanic plumes

机译:来自受风影响的火山羽毛法测定和沉积物的灰分

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摘要

Ash fallout and volcanic plume dispersion represent critical hazards for local and global human populations for minutes to years after the onset of an eruption. Understanding the key processes governing the sedimentation of ash particles is a major challenge in modern volcanology from modeling and risk management perspectives. Recent experiments predict that sedimentation from eruption clouds rich in fine-grained ash can be driven by convective phenomena in the form of similar to 100 m to km-scale ash fingers related to the intermittent formation and detaching of ash-rich particle boundary layer. Remote sensing observations of mammatus and cloud veils from numerous eruptions over recent years as well as field observations of spatially discontinuous ash deposits are consistent with this prediction. Indeed, this mode of ash sedimentation is predicted to be the predominant mechanism of fine ash removal for a significant fraction of eruptions in the geological records. Here, we use a novel combination of 3 millimeter-wavelength Doppler radar observations and time series of optical disdrometer data to characterize for the first time in real-time the time-varying structure and sedimentation properties of volcanic ash plumes under steady wind conditions. As a case study, we apply this new method to weak short-lived plumes from Stromboli Volcano. 96% of the disdrometer proximal sedimentation data highlight pulsatory phases of increased sedimentation rate that are 20-60 s apart and characterized by particle size distribution variation with bulk concentrations up to 681 mg/m(3). Radar data also record intermittent periods of higher reflectivity (i.e. a factor of 3 in mass concentration) inside the ash sedimentation interspersed by 30 to 50 s and interpreted as ash fingers crossing the radar beam. From time series of radar signals and ground-based disdrometer measurements, together with simple analog experiments, we develop a conceptual model for intermittent sedimentation from wind-affected ash plumes. In particular, we show that when wind speeds are comparable to or greater than ash settling velocities, the dynamics of wind-driven rolls in ash clouds can govern the production of gravitational instabilities and the occurrence and timing of ash fingers that form descending sediment thermals in turn. This study suggests that ambient wind should affect the maximum size and minimum concentration of ash particles needed to form fingers but also control where and when fingers form at the base of wind-drifted ash plumes. These novel predictions highlight the need for future work aimed at refining our understanding of ash finger formation under windy conditions from the perspectives of in-situ characterization, numerical modeling and risk assessment of fine ash dispersal from the most frequent style of eruptions on Earth. (C) 2020 Elsevier B.V. All rights reserved.
机译:Ash Fallout和火山羽流量分散代表了当地和全球人口的关键危害,几分钟才能在爆发开始后几分钟次数。了解治疗灰分粒子沉降的关键过程是现代火山学中的主要挑战,从建模和风险管理的角度来看。最近的实验预测,富粒细粒灰烬中的喷发云的沉降可以通过与100米到100米到富有的灰分形成和灰分粒边界层的拆卸相关的100μm至km鳞片灰手指的形式驱动。近年来近年来爆发的Mammatus和云面纱的遥感观察以及空间不连续灰沉积物的场景观察与这种预测一致。实际上,这种灰度沉降模式预计是对地质记录中大部分爆发的细灰去除的主要机理。在这里,我们使用3毫米波长多普勒雷达观测和时间序列的新颖组合进行了光学抑制器数据的第一次在稳态风条件下实时地实时结构和沉降特性。作为案例研究,我们将这种新方法应用于来自Stromboli火山的弱短缘羽毛。 96%的抑菌近沉降数据突出显示增加的沉降速率的脉动相,沉降率为20-60秒,其特征在于粒度分布变化,体积浓度高达681mg / m(3)。雷达数据还记录在灰沉淀物内部的更高反射率的间歇性时期(即质量浓度为3质量浓度),并将其解释为穿过雷达梁的灰手指。从雷达信号的时间序列和基于地面的消除仪测量,以及简单的模拟实验,我们开发了一种从受压灰羽毛中间歇性沉淀的概念模型。特别地,我们表明,当风速与灰度稳定速度相当或大于灰度稳定速度时,灰云中风辊的动态可以控制重力造型的产生以及形成沉积物热量的灰手指的发生和时序转动。本研究表明,环境风应影响形成手指所需的灰分颗粒的最大尺寸和最小浓度,而且还可以控制在风漂移的灰羽柱底部的手指中和当手指中形成。这些小说预测突出了对未来工作的需求,旨在在风味条件下炼热的理解,从原位表征,数值建模和地球中最常见的爆发风格的细灰分散的数值建模和风险评估。 (c)2020 Elsevier B.v.保留所有权利。

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