基于GIS技术和无人机的边坡可视化与稳定性研究

IF 1.6 Q3 ENGINEERING, GEOLOGICAL
Xianghui Jian
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引用次数: 0

摘要

高精度可视化三维边坡建模与稳定性分析得益于大数据技术的快速发展。本研究旨在利用无人机测量数据获取斜坡地形的影响信息。建立高精度的三维地表模型,并与利用地理信息系统技术构建的三维地质模型和三维矿物模型进行叠加。这种方法使更有效和准确的三维可视化建模的斜坡。在三维模型的基础上,完成了降雨条件下最危险滑动面的搜索。表面建模效果验证实验中样本点的平均绝对误差小于0.5 m,平均相对误差小于2%。这些结果表明,三维边坡模型的整体建模效果能够满足后续稳定性分析的要求。随机模拟结果显示,绝大多数中性面的最小安全系数小于1,说明该场地部分位置的边坡存在滑坡的可能性。安全系数最小的中性面可以用来精确定位最危险滑动面的位置。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Slope visualization and stability study using GIS technology and UAV
High-precision visualized 3D slope modeling and stability analysis have benefited from the quick development of big data technology. The research aims to utilize unmanned aerial vehicle survey data to obtain influencing information on slope topography. A high-precision three-dimensional surface model is established, which is then overlaid with three-dimensional geological models and three-dimensional mineral models constructed using Geographic Information System technology. This approach enables more efficient and accurate three-dimensional visualization modeling of slopes. Based on the 3D model, the search for the most dangerous sliding surface under the rainfall conditions is completed. The average absolute error of sample points in the surface modeling effect verification experiment is less than 0.5 m and the average relative error is less than 2%. These results indicate that the overall modeling effect of 3D slope model can meet the requirements of subsequent stability analysis. According to the results of random simulation, the minimum safety factor on the most neutral surfaces is less than 1, which indicates that the slopes at some locations in this site do have the possibility of landslide. The neutral surface where the least safety factor appears can be used to pinpoint the position of the most hazardous sliding surface.
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来源期刊
Geotechnical Research
Geotechnical Research ENGINEERING, GEOLOGICAL-
CiteScore
4.50
自引率
26.30%
发文量
22
审稿时长
12 weeks
期刊介绍: Geotechnical Research covers the full scope of geotechnics and its related disciplines including: Soil, rock and fluid mechanics; geoenvironmental engineering; geothermal engineering; geotechnical design and construction issues; analytical and numerical methods; physical modelling; micromechanics; transportation geotechnics; engineering geology; environmental geotechnology; geochemistry; geohydrology and water management.
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