粒状流的基底力波动和地震信号的演变及其替代物:实验室水槽实验的启示

IF 3.5 2区 地球科学 Q1 GEOSCIENCES, MULTIDISCIPLINARY
Wei Li, Dongpo Wang, Issei Doi, Gonghui Wang, Zhen Zhang, Shuaixing Yan, Siming He
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引用次数: 0

摘要

地球物理粒状流对地表的作用力及其产生的地震信号可用于监测自然地质灾害,了解其动态演变和特征。大量的研究集中在将基底力波动和地震信号与颗粒流动动力学联系起来。然而,地震信号产生和演变背后的机制仍然不完全清楚。本研究通过室内水槽实验,深入了解基底力波动和地震信号的演化与特征,探讨其与颗粒流宏观特性的关系。研究结果表明,基底力波动的剪切分量和法向分量在流动演化过程中表现出不同的行为,这与流速波动的变化有关。随着颗粒流向下游移动,剪切基底力波动由于速度波动减弱而减小,而法向力波动则增大。与基础力波动类似,地震信号遵循广义帕累托分布。基底力波动和地震信号与体流特性呈强烈的非线性关系,表明越厚、越密、越快的流体,基底力波动越强,地震信号越强烈。然而,颗粒大小显著影响这一关系。我们证明了表征颗粒流宏观流变特性的惯性数可以统一不同粒径的基础力波动和地震信号,在时间尺度上表现为负相关。这意味着颗粒流的宏观流变行为可能为地震信号的产生和演化机制提供重要的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Evolution of Basal Force Fluctuations and Seismic Signals of Granular Flows and Their Proxy: Insights From Laboratory Flume Experiments

The forces exerted by geophysical granular flows on Earth's surface, and the resulting seismic signals, can be used to monitor natural geohazards and understand their dynamic evolution and characteristics. Substantial research has focused on linking basal force fluctuations and seismic signals to granular flow dynamics. However, the mechanisms behind the generation and evolution of seismic signals remain incompletely understood. In this study, we conducted laboratory flume experiments to gain insights into the evolution and characteristics of basal force fluctuations and seismic signals and explored their relationship with the macroscopic properties of granular flows. Our results show that the shear and normal components of basal force fluctuations exhibit different behavior during flow evolution, which are related to variations in flow velocity fluctuations. As the granular flow moves downstream, shear basal force fluctuations decrease due to weakening velocity fluctuations, whereas normal force fluctuations increase. Similar to basal force fluctuations, seismic signals follow a generalized Pareto distribution. Basal force fluctuations and seismic signals are strongly nonlinearly related to the bulk flow properties, indicating that thicker, denser and faster flows generate stronger basal force fluctuations and more intense seismic signals. However, particle size significantly influences this relationship. We demonstrate that the inertial number, characterizing the macroscopic rheological properties of granular flows, can unify basal force fluctuations and seismic signals across different particle sizes, exhibiting a negative correlation on the temporal scale. This implies that the macroscopic rheological behavior of granular flows may provide critical insights into the mechanisms of generation and evolution of seismic signals.

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来源期刊
Journal of Geophysical Research: Earth Surface
Journal of Geophysical Research: Earth Surface Earth and Planetary Sciences-Earth-Surface Processes
CiteScore
6.30
自引率
10.30%
发文量
162
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