局部循环地表载荷下土壤拱起的退化机理

Feng-Juan Tao, G. Ye, Zhen Zhang, Jie Han, Rongjun Zhang, Liu Liu
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摘要

土拱会导致许多土体结构(如桩基支撑的路堤和埋设结构)的应力重新分布。局部周期性地表荷载(如地基和交通荷载)会削弱土拱效应,给结构安全带来潜在风险。本文介绍了一系列使用透明土壤进行的活门试验,以研究在局部循环表面荷载作用下土壤拱起的退化机制。试验采用粒子图像测速(PIV)技术监测试验过程中土壤内部的变形。试验结果表明,在局部循环表面荷载作用下,土壤拱起首先在活门中心局部退化,然后从中心向整个活门发展。在较低的回填土、较宽的活板门和较高的局部表面荷载频率下,土壤拱起的速度更快。由于活门在移动过程中的体积膨胀,在局部表面荷载作用下,有土拱的平均垂直应力比没有土拱的平均垂直应力增加得更快。在土拱完全退化后,有拱效应和无拱效应的应力增量和垂直位移等值线逐渐趋于相似。最后,提出了一种经验方法来预测局部循环地表荷载下的土壤起拱率值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Degradation Mechanisms of Soil Arching under a Localized Cyclic Surface Loading
Soil arching causes stress redistribution in many earth structures, such as pile-supported embankments and buried structures. A localized cyclic surface load (e.g., footing and traffic load) would weaken the arching effect and cause structural safety at potential risk. This paper presents a series of trapdoor tests using transparent soil to investigate the degradation mechanisms of soil arching subjected to a localized cyclic surface load. The particle image velocimetry (PIV) technique was adopted to monitor the inner soil deformations during test. The test results show that soil arching under localized cyclic surface loading first degraded locally on the trapdoor center and then progressed from the center to the entire trapdoor. The soil arching degraded faster within a lower backfill, on a wider trapdoor, and under a higher load frequency of localized surface loading. Owing to the volumetric expansion during trapdoor movement, the average vertical stress with soil arching increased faster under localized surface loading than that without soil arching. After full degradation of soil arching, the stress increment and vertical displacement contours with and without arching effect gradually tended to be similar. Finally, an empirical method was proposed to predict the soil arching ratio under localized cyclic surface loading.
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