Exploring the integration of InSAR data into climate-driven creep models to assess slow-moving landslide dynamics

Q4 Earth and Planetary Sciences
Univ.-Prof. Dipl.-Ing-Dr. techn. Roman Marte, MSc. Dr. Markus Keuschnig, Patrik Neureiter, Dipl.-Ing. Hannes Ramoser, Mag. Gerald Valentin
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引用次数: 0

Abstract

The deformation behavior of slow-moving large landslides is often governed by rainfall characteristics. Based on observational data such as precipitation, deformation measurement, and pore water pressure measurements in the slip zone, in many cases a strong correlation between strong rainfall events, a time-delayed increase of pore water pressures in the slip zone, and, simultaneously to this, an increase of the deformation rate of the landslide can be found. Based on such detailed data, calculation models, which couples the relation between rainfall characteristics and the development of pore water pressures in the slip zone on one hand and the deformation behavior of the slope on the other, can be developed and be used for a better understanding and a prediction of deformation behavior of such slow-moving landslides. Climate change issues will lead to a change in rainfall frequency and magnitude and annual temperature distribution characteristics in several regions worldwide, which will also lead to changes in the deformation behavior of such large landslides. In this contribution, satellite-based interferometric synthetic aperture radar (InSAR) data are discussed to be used as source for deformation measurements as bases for prediction models describing the rainfall-triggered deformation behavior of slow-moving landslides.

探索将 InSAR 数据纳入气候驱动的蠕变模型,以评估缓慢移动的滑坡动态
缓慢移动的大型滑坡的变形行为通常受降雨特征的影响。根据降雨量、变形测量和滑动带孔隙水压力测量等观测数据,可以发现在许多情况下,强降雨事件、滑动带孔隙水压力的延时增加与滑坡变形率的增加之间存在着很强的相关性。在这些详细数据的基础上,可以建立计算模型,将降雨特征和滑动区孔隙水压力的发展与斜坡的变形行为联系起来,用于更好地理解和预测这种缓慢移动的滑坡的变形行为。气候变化问题将导致全球多个地区的降雨频率和降雨量以及年温度分布特征发生变化,这也将导致此类大型滑坡的变形行为发生变化。本文讨论了基于卫星的干涉合成孔径雷达(InSAR)数据,这些数据可用作变形测量的来源,作为描述降雨触发的缓慢移动滑坡变形行为的预测模型的基础。
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
Geomechanik und Tunnelbau
Geomechanik und Tunnelbau Earth and Planetary Sciences-Geotechnical Engineering and Engineering Geology
CiteScore
1.20
自引率
0.00%
发文量
111
期刊介绍: The contributions published in Geomechanics and Tunnelling deal with practical aspects of applied engineering geology, rock mechanics and rock engineering, soil mechanics and foundation engineering, and primarily tunnelling. Each issue focuses on a current topic or specific project. Brief news, reports from construction sites and news on conferences round off the content. From the start of 2009 Geomechanics and Tunnelling has been published as a bilingual English/German journal.
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