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HE Kai. Application of Unmanned Aerial Loaded Radar in Slope Displacement Monitoring of Open-pit Mine[J]. Safety in Coal Mines, 2018, 49(3): 118-120,124.
Citation: HE Kai. Application of Unmanned Aerial Loaded Radar in Slope Displacement Monitoring of Open-pit Mine[J]. Safety in Coal Mines, 2018, 49(3): 118-120,124.

Application of Unmanned Aerial Loaded Radar in Slope Displacement Monitoring of Open-pit Mine

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  • Published Date: March 19, 2018
  • This paper applied the unmanned aerial loaded radar technology in slope displacement monitoring of open-pit coal mine to obtain the digital elevation model (DEM) of the open-pit slope through the research on the components of airborne laser radar system and distance measurement principles, as well as the research on data generation and data processing flow. The analysis of the point cloud data show that the DEM and the shape of the slope can be obtained from such technical approach. And this can provide effective early warning for mine slope deformation monitoring and disaster forecasting.
  • [1]
    王启明.我国非煤露天矿山大中型边坡安全现状及对策[J].金属矿山,2007(10):1-5.
    [2]
    刘建坡,李军杰,黄继永.三维激光扫描技术在露天矿测量中的应用[J].科技信息:科学教研,2008(22):649-650.
    [3]
    刘红旗,项鑫,李军杰.三维激光扫描原理及其在露天矿测量中的应用[J].科技资讯,2009(3):7-8.
    [4]
    Ardizzone F, Cardinali M, Galli M, et al. Identification and mapping of recent rainfall-induced landslides using elevation data collected by airborne Lidar[J]. Natural Hazards and Earth System Science, 2007, 7(6):637.
    [5]
    刘圣伟,郭大海,陈伟涛,等.机载激光雷达技术在长江三峡工程库区滑坡灾害调查和监测中的应用研究[J].中国地质,2012(2):507-517.
    [6]
    吴华意,宋爱红,李新科.机载激光雷达系统的应用与数据后处理技术[J].测绘与空间地理信息,2006,29(3):58-63.
    [7]
    王师,周晓翠,陆小艺.浅析机载激光雷达测量误差及数据质量控制[J].红水河,2011,30(5):156-159.
    [8]
    孙黎明,邓清军,凌学才.机载激光雷达检校场布置方案研究[J].电力勘测设计,2015(2):15-19.
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