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首页> 外文期刊>Environmental Geology >Assessment of multi-scenario rockfall hazard based on mechanical parameters using high-resolution airborne laser scanning data and GIS in a tropical area
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Assessment of multi-scenario rockfall hazard based on mechanical parameters using high-resolution airborne laser scanning data and GIS in a tropical area

机译:使用高分辨率机载激光扫描数据和GIS在热带地区基于机械参数评估多情景落石灾害

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摘要

Rockfall hazard is a main threat for mountainous and hilly areas that can cause loss of life, damage to infrastructures, and traffic interruption. Rockfall frequency and magnitude vary both spatially and temporally; therefore, multi-scenarios related to rockfall characteristics (trajectories, frequency and kinetic energy) can provide early warnings by identifying the areas at risk for mitigation purposes. The aim of this study is to predict the areas at risk from future rockfall incidents and suggest suitable mitigation measures to prevent them. The most significant elements in rockfall analysis are slope topography interpretation or the digital elevation model (DEM) and the rockfall modeling approach. Light detection and ranging (LiDAR) techniques have been widely used in rockfall studies because of their capability to provide high-resolution information regarding slope surfaces. In the current study, airborne laser scanning (ALS) is used to obtain a high-density point cloud (4 pts./m(2)) of the study area for the construction of an accurate DEM via a geographic information system. Rockfall source areas were identified based on multi-criteria method including DEM derivatives (e.g., slope, aspect, curvature and topographic contrast) in addition to terrain type and aerial photos. A 3D rockfall model has been established to determine rockfall multi-scenarios based on their characteristics according to a range of restitution coefficient (normal and tangential) and friction angle values; these parameters are particularly crucial in rockfall simulation to delineate the spatial prediction of rockfall hazard areas along the Jelapang corridor of the North-South Expressway in Malaysia. In addition, a barrier location was suggested based on limited rockfall height and kinetic energy to mitigate rockfall hazards. Results show that rockfall trajectories (stopping distance) and, subsequently, their frequency and energy are increased; moreover, barrier efficiency is reduced when the values of the mechanical parameters (Rn, Rt, and friction angle) are increased. Nonetheless, the suggested barrier location is an efficient and mitigative measure to eliminate the rockfall effect.
机译:落石危险是山区和丘陵地区的主要威胁,可能导致人员伤亡,基础设施损坏和交通中断。落石的频率和大小在空间和时间上都变化。因此,与落石特征(轨迹,频率和动能)有关的多种情景可以通过识别有风险的缓解区域来提供预警。这项研究的目的是预测未来可能发生的崩塌事故的危险区域,并提出适当的缓解措施来预防这些事故。落石分析中最重要的元素是坡度地形解释或数字高程模型(DEM)和落石建模方法。光探测和测距(LiDAR)技术由于能够提供有关坡面的高分辨率信息而被广泛用于落石研究中。在当前的研究中,机载激光扫描(ALS)用于获取研究区域的高密度点云(4 pts / m(2)),以通过地理信息系统构建准确的DEM。根据多准则方法,除了地形类型和航拍照片以外,还包括DEM衍生物(例如,坡度,坡向,曲率和地形对比度),确定了落石源区。已经建立了一个3D落石模型,根据恢复系数(法向和切向)和摩擦角值的范围,根据其特征确定落石多场景。这些参数对于模拟落石危险至关重要,以描绘出马来西亚南北高速公路Jelapang走廊沿线的落石危险区域的空间预测。此外,根据有限的落石高度和动能建议设置障碍物位置,以减轻落石的危害。结果表明,落石轨迹(停止距离)以及随后的频率和能量都增加了。此外,当机械参数(Rn,Rt和摩擦角)的值增加时,势垒效率也会降低。尽管如此,建议的障碍物位置是消除落石效应的有效和缓解措施。

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