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Towards rockfall forecasting through observing deformations and listening to microseismic emissions

机译:通过观察变形和听微震发射来落开岩石预测

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Reliable forecasting of rockfall is a challenging task, mainly because of the lack of clearly noticeable forerunners as well as due to the geological and geo-mechanical complexity of the rock movements involved. Conventional investigation devices still present some drawbacks, since most measurements are generally carried out at isolated locations as well as on the surface only. Novel remote-sensing monitoring instruments, such as Terrestrial Laser Scanning (TLS) and Ground-Based Interferometric Synthetic Aperture Radars (GB-InSAR), are capable of inspecting an unstable slope with a high spatial and temporal frequency. But they still rely on measurements of the failure surface, from which displacement or velocity are measured. On the contrary, acoustic emission/microseismic monitoring may provide a deeper insight of stress and strain conditions within the sub-surface rock mass. In fact, the capability to detect microseismic events originating within an unstable rock mass is a key element in locating growing cracks and, as a consequence, in understanding the slide kinematics and triggering mechanisms of future collapses. Thus, a monitoring approach based on the combination of classical methodologies, remote sensing techniques and microseismic investigations would be a promising research field. In the present paper we discuss the technologies and we illustrate some experiments conducted in the framework of a project whose final goal is the installation of an integrated monitoring and alerting system on a rockface nearby Lecco (Italy). In particular, we present a review of performances and applications of remote sensing devices and some results concerning a terrestrial laser scanner preliminary campaign. Then, we report findings regarding amplitude, frequency content and rate of signals recorded during an in situ test carried out to evaluate the performance of three different microseismic transducers.
机译:可靠的岩石预测是一个具有挑战性的任务,主要是因为缺乏明显明显的先行者以及由于所涉及的岩石运动的地质和地理机械复杂性。传统的调查装置仍然存在一些缺点,因为大多数测量通常在隔离的位置以及表面上进行。新颖的遥感监测仪器,例如地面激光扫描(TLS)和基于地基干涉性合成孔径雷达(GB-INSAR),能够检查具有高空间和时间频率的不稳定斜率。但它们仍然依赖于失效表面的测量,从而测量位移或速度。相反,声学发射/微震监测可以在子表面岩体内的应力和应变条件深入了解。事实上,检测源自不稳定的岩石质量内的微震事件的能力是定位生长裂缝的关键元件,并且因此在理解未来坍塌的载玻片运动学和触发机制方面。因此,基于经典方法,遥感技术和微震研究的组合的监测方法将是一个有前途的研究领域。在本文中,我们讨论了该技术,我们说明了在项目的框架内进行的一些实验,其最终目标是在Lecco(意大利)的Rockface上安装一个集成的监控和警报系统。特别是,我们介绍了遥感装置的表演和应用以及关于地面激光扫描仪初步运动的一些结果。然后,我们报告关于在进行原位测试期间记录的幅度,频率内容和信号速率的结果,以评估三种不同的微震换能器的性能。

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