Composite landslide in the dynamic alpine conditions: a case study of Urbas landslide

Q3 Earth and Planetary Sciences
Ela Segina, Mateja Jemec Auflič, M. Zupan, J. Jež, Tina Peternel
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引用次数: 0

Abstract

The alpine environment is characterized by complex geology, high-energy terrain, deeply incised river valleys with high erosional potential, extreme weather conditions and dynamic geomorphic processes. Such settings provide favourable conditions for the formation of composite landslides rather than individual slope mass movement phenomena. As an example, we present the kinematics of the composite landslide Urbas in the North of Slovenia which developed in the complex geological and morphological settings characteristic of the alpine environment. The research combines several monitoring techniques and involves the integration of both surface and subsurface displacements measured in the landslide area. The results indicate that the composite sliding process consists of several simultaneous and interrelated types of movements occurring in different segments of the unstable mass that are governed by different mechanisms of displacements, such as rockfall, sliding and debris flow. The kinematic characteristics of a deep-seated landslide that formed in such conditions vary spatially, but is rather homogenuous vertically, indicating translational type of movement. Spatial kinematic heterogeneity is primarily related to the diverse terrain topography, reflecting in different displacement trends. Based on the revealed kinematic proprieties of the sliding material, the sediment discharge illustrates the sliding material balance which estimates the volume of the retaining material that represents the potential for slope mass movement events of larger scales.
高山动态条件下的复合滑坡——以Urbas滑坡为例
高山环境具有地质复杂、高能量地形、侵蚀潜力大的深切河谷、极端天气条件和动态地貌过程等特点。这种环境为复合滑坡的形成提供了有利条件,而不是单个滑坡体的运动现象。作为一个例子,我们介绍了斯洛文尼亚北部乌尔巴斯复合滑坡的运动学,该滑坡是在高山环境的复杂地质和形态背景下发展起来的。这项研究结合了几种监测技术,涉及滑坡区地表和地下位移的综合。结果表明,复合滑动过程由发生在不稳定岩体不同段的几种同时且相互关联的运动组成,这些运动受不同的位移机制控制,如落石、滑动和泥石流。在这种条件下形成的深层滑坡的运动学特征在空间上不同,但在垂直方向上相当均匀,表明其运动类型为平移。空间运动学非均质性主要与地形地貌的多样性有关,反映在不同的位移趋势上。根据揭示的滑动物质的运动特性,泥沙流量说明了滑动物质平衡,该平衡估计了挡土物质的体积,代表了更大规模斜坡体运动事件的可能性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Geologija
Geologija Earth and Planetary Sciences-Geophysics
CiteScore
1.00
自引率
0.00%
发文量
10
审稿时长
10 weeks
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