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Soil strain-field and stability analysis of cut slope based on optical fiber measurement

机译:基于光纤测量的土坡应变场及边坡稳定性分析

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摘要

A relatively small laboratory model of soil slope was constructed, and a special strain-sensing cable was embedded in the slope soil mass. The strain at different positions of the model slope was measured using pulse-prepump Brillouin optical time-domain analysis (PPP-BOTDA) technology during slope surface loading and slope cutting. The data measurements under loading were analyzed, and the co-deformation between the sensing cable and the artificial compacted soil mass is discussed. The results show that the specially designed strain sensing cable is co-deformed well with the soil after a loading of 225 kPa. The measurement data of the cut slope were analyzed in detail to elaborate the relationship between soil strain-field and slope stability. When the slope failed, the position of the sliding surface was coordinated with the strain anomaly area of the soil strain-field. A limit equilibrium analysis was then conducted to determine safety factors during slope cutting. This analysis allowed determination of the characteristic strains, reflecting the stability of the slope, which permitted the establishment of an empirical relationship between horizontal characteristic maximum strains and safety factors. The results were most effective in validating the use of the distributed optical fiber sensing technology for soil strain-field monitoring, for the purposes of evaluating slope stability and creating a warning system for landslides.
机译:建立了相对较小的土质边坡实验室模型,并在土质边坡中埋入了特殊的应变传感电缆。使用脉冲预泵布里渊光学时域分析(PPP-BOTDA)技术在斜坡表面加载和斜坡切割过程中测量模型斜坡不同位置的应变。分析了载荷下的数据测量,并讨论了传感电缆与人工压实土体之间的共同变形。结果表明,经过特殊设计的应变传感电缆在225 kPa的荷载作用下能很好地与土壤共同变形。详细分析了开挖边坡的实测数据,阐明了土体应变场与边坡稳定之间的关系。当边坡破坏时,滑动面的位置与土壤应变场的应变异常面积协调。然后进行极限平衡分析,以确定边坡切割过程中的安全系数。这种分析可以确定特征应变,反映出斜坡的稳定性,从而可以在水平特征最大应变与安全系数之间建立经验关系。结果最有效地验证了分布式光纤传感技术在土壤应变场监测中的应用,以评估边坡稳定性并创建滑坡预警系统。

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