利用古地磁确定熔岩流对下伏基底的加热作用

IF 2.5 Q2 Earth and Planetary Sciences
Volcanica Pub Date : 2022-03-29 DOI:10.30909/vol.05.01.95103
G. Lerner, S. Tsang, G. Turner
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引用次数: 0

摘要

熔岩流的热量进入下层和邻近物质的程度对火山灾害研究具有重要意义。在这里,我们展示了古地磁如何被用作一种工具,以确定熔岩流在其流动的预先存在的基底中的加热效应。从Rangitoto和Puketutu喷发中心(新西兰奥特亚奥克兰火山场)的熔岩流下以及6月27日熔岩流下的人造护堤(2014-2015;美国夏威夷基劳厄火山)采集的土壤样本进行了渐进式热消磁,以评估其剩余磁化的强度和稳定性。这些土壤表现出强相干磁化的温度和深度代表了它们被上覆流重新磁化(从而被加热)的程度。结果表明,在基板流动接触下方21厘米的深度处,加热至至少570℃。这些信息对于约束和验证传热模型很有价值,该模型可用于评估熔岩流的地下热危害。在许多用途中,这对于穿越可能暴露于火山活动的地区的埋地基础设施网络的应急管理规划至关重要。在更远的地方,在天体生物学中,它可能会应用于确定被熔岩流加热到足以杀死活生物体的基底层的厚度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Using paleomagnetism to determine the heating effect of lava flows on underlying substrates
The extent to which heat from lava flows passes into underlying and adjacent materials has significant implications for volcanic hazard studies. Here we demonstrate how paleomagnetism can be used as a tool to determine the heating effects of lava flows in the pre-existing substrates over which they flow. Samples from soils taken beneath lava flows from Rangitoto and Puketutu eruptive centres (Auckland Volcanic Field, Aotearoa New Zealand) and a human-made berm beneath the June 27th Lava Flow (2014–2015; Kīlauea Volcano, Hawaii, USA) were subjected to progressive thermal demagnetization to assess the strength and stability of their remanent magnetizations. The temperature and depth to which these soils display a strong coherent magnetization represents the extent to which they were remagnetized (and therefore heated) by the overlying flow. Results suggest heating to at least 570 ℃ at depths of up to 21 cm below the substrate-flow contact. This information is valuable for constraining and validating heat transfer models, which can be used to assess the lava flows’ subterranean thermal hazard. Among many uses, this is vital for emergency management planning for buried infrastructure networks traversing regions that could be exposed to effusive volcanic activity. Further afield, in astrobiology, it might find application in determining the thickness of a substrate layer heated sufficiently by a lava flow to kill living organisms.
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来源期刊
Volcanica
Volcanica Earth and Planetary Sciences-Geology
CiteScore
4.40
自引率
0.00%
发文量
21
审稿时长
21 weeks
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