爆炸性火山灰喷发的地基雷达遥感:数值模型和定量应用

F. Marzano, S. Marchiotto, S. Barbieri, D. Schneider, C. Textor, G. Giuliani
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引用次数: 1

摘要

利用地基微波气象雷达可以定量监测普林尼火山喷发引起的火山云的微物理和动力学特征。为了说明微波主动遥感技术的潜力,以2006年1月阿拉斯加奥古斯丁火山喷发为例进行了描述和分析。由NEXRAD WSR-88D s波段地面气象雷达获取的体积数据经过处理,可自动分类和估计喷发云颗粒浓度。在这项研究中,我们使用羽流模型ATHAM来研究导致喷发柱中颗粒聚集的过程。首次在上升的喷发柱内模拟了水成物和火山灰在喷发柱内导致聚集形成的相互作用。通过灵敏度分析,评价了聚集体粒子对微波雷达反射率的影响。火山灰检索物理算法基于火山云颗粒的后向散射微物理模型,在贝叶斯分类和最优回归算法中使用。从雷达测量和产品的角度讨论了奥古斯丁火山喷发的演变,指出了火山羽流雷达遥感的特点、当前的局限性和未来的改进。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Ground-based radar remote sensing of explosive volcanic ash eruptions: Numerical models and quantitative applications
Microphysical and dynamical features of volcanic clouds, due to Plinian eruptions, can be quantitatively monitored by using ground-based microwave weather radars. In order to illustrate the potential of this microwave active remote sensing technique, the case study of the eruption of Augustine volcano in Alaska in January 2006 is described and analyzed. Volume data, acquired by a NEXRAD WSR-88D S-band ground-based weather radar, are processed to automatically classify and estimate eruptive cloud particles concentration. In this study we use the plume model ATHAM to investigate processes leading to particle aggregation in the eruption column. The interactions of hydrometeors and volcanic ash within the eruption column that lead to aggregate formation are simulated for the first time within a rising eruption column. A sensitivity analysis is carried out to evaluate the impact of aggregate particles on microwave radar reflectivity. The ash retrieval physical algorithm is based on the backscattering microphysical model of volcanic cloud particles, used within a Bayesian classification and optimal regression algorithm. The evolution of the Augustine eruption is discussed in terms of radar measurements and products, pointing out the unique features, the current limitations and future improvements of radar remote sensing of volcanic plumes.
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