温度,热结构,并在基拉韦厄火山和埃尔塔阿尔火山喷发行为使用消费数码摄像机

GeoResJ Pub Date : 2015-03-01 DOI:10.1016/j.grj.2015.01.001
Gregory T. Carling , Jani Radebaugh , Takeshi Saito , Ralph D. Lorenz , Anne Dangerfield , David G. Tingey , Jeffrey D. Keith , John V. South , Rosaly M. Lopes , Serina Diniega
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引用次数: 13

摘要

活火山的远程热监测在陆地和行星火山系统中有许多重要的应用。在这项研究中,我们使用短波长,高分辨率,消费者数字摄像机和其他非成像热探测器描述了基拉韦厄火山和埃尔塔埃火山活跃喷发的观测结果。这些系统揭示了接近喷发温度的亮度温度和温度分布、流动特征、管道系统和熔岩喷泉的形态和热结构。摄像机通过基拉韦厄火山的天窗观测到的熔岩流在1230°C时达到最大亮度温度峰值,其亮度温度分布与中心最快速的熔岩流一致。基拉韦厄火山冷却熔岩流的表面亮度温度接近850°C。厘米尺度的热特征在pahohoe绳索、膨胀流和熔岩管中的钟乳石周围很明显。2011年2月对Erta Ale熔岩湖的观测扩展了对2010年末开始的喷发事件的观测基线。我们用摄像机观察了一个喷泉,发现最大亮度温度的峰值在1164°C,与之前的研究一致。在高度暴露的喷泉和裂缝与较冷的熔岩湖表面和火山口壁之间的厘米尺度距离上观察到陡峭的温度梯度。本文所描述的仪器和方法可以提供这些火山温度和温度分布的可靠图像,并揭示了研究像木卫一这样的火山活跃体所需的行星遥感平台的特征。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Temperatures, thermal structure, and behavior of eruptions at Kilauea and Erta Ale volcanoes using a consumer digital camcorder

Remote thermal monitoring of active volcanoes has many important applications for terrestrial and planetary volcanic systems. In this study, we describe observations of active eruptions on Kilauea and Erta Ale volcanoes using a short-wavelength, high-resolution, consumer digital camcorder and other non-imaging thermal detectors. These systems revealed brightness temperatures close to the eruption temperatures and temperature distributions, morphologies and thermal structures of flow features, tube systems and lava fountains. Lava flows observed by the camcorder through a skylight on Kilauea had a peak in maximum brightness temperatures at 1230 °C and showed brightness temperature distributions consistent with most rapid flow at the center. Surface brightness temperatures of cooling lava flows on Kilauea were close to 850 °C. Centimeter-scale thermal features are evident around pahoehoe ropes and inflated flows and stalactites in lava tubes. Observations of the fountaining Erta Ale lava lake in February 2011 extend the baseline of observations of the eruptive episode begun in late 2010. We observed a fountain using the camcorder and found a peak in maximum brightness temperatures at 1164 °C, consistent with previous studies. Steep temperature gradients were observed across centimeter-scale distances between the highly exposed fountain and cracks and the much cooler lava lake surface and crater walls. The instrument and methods described here lead to robust pictures of the temperatures and temperature distributions at these volcanoes and reveal desired characteristics of planetary remote sensing platforms for the study of volcanically active bodies such as Io.

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