首页> 外文期刊>Journal of Geophysical Research, D. Atmospheres: JGR >Velocity profiles inside volcanic clouds from three-dimensional scanning microwave dual-polarization Doppler radars
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Velocity profiles inside volcanic clouds from three-dimensional scanning microwave dual-polarization Doppler radars

机译:三维扫描微波双极化多普勒雷达在火山云内部的速度分布

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In this work, velocity profiles within a volcanic tephra cloud obtained by dual-polarization Doppler radar acquisitions with three-dimensional (3-D) mechanical scanning capability are analyzed. A method for segmenting the radar volumes into three velocity regimes: vertical updraft, vertical fallout, and horizontal wind advection within a volcanic tephra cloud using dual-polarization Doppler radar moments is proposed. The horizontal and vertical velocity components within the regimes are retrieved using a novel procedure that makes assumptions concerning the characteristics of the winds inside these regimes. The vertical velocities retrieved are combined with 1-D simulations to derive additional parameters including particle fallout, mass flux, and particle sizes. The explosive event occurred on 23 November 2013 at the Mount Etna volcano (Sicily, Italy), is considered a demonstrative case in which to analyze the radar Doppler signal inside the tephra column. The X-band radar (3 cm wavelength) in the Catania, Italy, airport observed the 3-D scenes of the Etna tephra cloud ~32 km from the volcano vent every 10 min. From the radar-derived vertical velocity profiles of updraft, particle fallout, and horizontal transportation, an exit velocity of 150 m/s, mass flux rate of 1.37 ? 10~7 kg/s, particle fallout velocity of 18 m/s, and diameters of precipitating tephra particles equal to 0.8 cmare estimated on average. These numbers are shown to be consistent with theoretical 1-D simulations of plume dynamics and local reports at the ground, respectively. A thickness of 3 ± 0.36 km for the downwind ash cloud is also inferred by differentiating the radar-derived cloud top and the height of transition between the convective and buoyancy regions, the latter being inferred by the estimated vertical updraft velocity profile. The unique nature of the case study as well as the novelty of the segmentation and retrieval methods presented potentially give new insights into the analysis of volcanic cloud dynamics.
机译:在这项工作中,分析了通过具有三维(3-D)机械扫描能力的双极化多普勒雷达采集获得的火山特非拉云中的速度剖面。提出了一种使用双极化多普勒雷达矩将火山体积分成三个速度状态的方法:垂直上升气流,垂直沉降和水平风平流。使用一种新颖的过程可以检索这些模式中的水平和垂直速度分量,该过程对这些模式中的风的特性进行了假设。取回的垂直速度与一维模拟相结合,可以得出包括颗粒沉降,质量通量和颗粒尺寸在内的其他参数。爆炸事件发生在2013年11月23日的埃特纳火山(意大利西西里岛),被认为是分析特非拉柱内雷达多普勒信号的典型案例。意大利卡塔尼亚机场的X波段雷达(3厘米波长)每10分钟观察一次距离火山口约32公里的埃特纳火山云的3D场景。从雷达得出的上升气流,颗粒沉降和水平输送的垂直速度剖面,出射速度为150 m / s,质量通量率为1.37?平均估计出10〜7 kg / s,颗粒沉降速度为18 m / s,沉淀的特佛拉颗粒直径等于0.8 cm。这些数字分别与理论上的羽流动力学一维模拟和地面上的局部报告是一致的。通过区分源自雷达的云顶和对流区与浮力区之间的过渡高度,可以推断出顺风灰云的厚度为3±0.36 km,而对流区和浮力区之间的过渡高度则可以通过估算的垂直上升气流速度来推断。案例研究的独特性以及所提出的分段和检索方法的新颖性可能为火山岩动力学分析提供新的见解。

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