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Kinematic behaviour and velocity characteristics of a complex deep-seated crystalline rockslide system in relation to its interaction with a dam reservoir

机译:复杂的深层晶体岩质滑坡系统的运动学特征和速度特征及其与大坝储层的相互作用

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摘要

This paper presents the geometry, kinematics and temporal deformation characteristics of a deep-seated rockslide system, the "Hochmais-Atemkopf", situated above the Gepatsch dam reservoir in Northern Tyrol, Austria. Results from surface and subsurface geological investigations and deformation monitoring indicate that the Hochmais-Atemkopf rockslide system involves several sliding masses, one on top of the other, characterized by different velocity characteristics with displacements being greater for the shallower slide bodies. During the initial impounding phases of the Gepatsch reservoir, uplift forces beneath the foot of the slope led to the activation of one of these shallower slide bodies, moving it more than 10 m downslope in 2 years. After continuous deceleration of the sliding mass, the deformation rates reduced to about 2 to 4 cm per year. These were found to show seasonal fluctuations that correlated with reservoir levels and drawdown conditions, with induced slope accelerations peaking when reservoir levels were at their lowest. This suggests, in part, a controlling mechanism based on seepage forces where reservoir drawdown drives the episodic rockslide deformation behaviour. Together, the data and analyses presented demonstrate the importance of integrating detailed geology and monitoring data to derive a basic understanding of the kinematics and controlling mechanisms of a deep-seated rockslide system in advance of undertaking comprehensive numerical modelling.
机译:本文介绍了位于奥地利北蒂罗尔Gepatsch大坝水库上方的深层岩石滑坡系统“ Hochmais-Atemkopf”的几何形状,运动学和时间变形特征。地表和地下地质调查以及变形监测的结果表明,Hochmais-Atemkopf滑坡系统涉及数个滑动块,一个在另一个之上,其特征在于速度特征不同,对于较浅的滑动体,位移更大。在Gepatsch水库的初始蓄水阶段,斜坡脚下的上升力导致这些较浅的滑动体之一被激活,在2年内将其向下倾斜超过10 m。滑动块连续减速后,变形率降低到每年约2至4厘米。发现它们显示出与水库水位和水位下降条件相关的季节性波动,当水库水位最低时,诱发的坡度加速度达到峰值。这在某种程度上暗示了一种基于渗流力的控制机制,在该机制下,储层降落驱动了偶发性岩质滑坡变形行为。总之,所提供的数据和分析表明,在进行全面的数值建模之前,整合详细的地质和监测数据对于深层岩质滑坡系统的运动学和控制机理有基本的了解非常重要。

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