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Experimental Examination of the Arching Mechanism on the Micro Level

机译:微观水平上拱形机理的实验检验

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摘要

The arching phenomenon is manifested through the reduction of stresses experienced by underground structures. Arching plays an important role in geotechnical engineering construction, such as excavations, retaining structures, pile groups, tunnel boring machines, culverts and underground facilities. The arching mechanism is intrinsic to granular material/rock mass independent of scale effect. Its fundamental mechanism relates to the ability of discrete units to transfer loads through interaction in a preferable geometry, and thus to bridge between the zone (or point) of load application to the zone (or points) of reaction. Though investigated extensively, very little work has been done to address the fundamental mechanism related to the discrete particles interaction. Testing results of an advanced experimental technique is presented and analyzed. A model of granular material made of photoelastic particles is utilized. The model and the sophisticated image and global data acquisition system allow one to track the development of the arching within ideal granular material during a trap door experiment by following the motion of each particle and the contact forces between the particles. Visual and quantitative analyses are presented demonstrating the relationship between the global arching phenomenon and the particle interaction on the micro-level. The information allows one to observe the changes associated with the arching mechanism and the stress variation resulting from it. Comparisons are possible between DEM and the test results.
机译:拱形现象是通过减少地下结构所承受的应力来体现的。拱起在岩土工程施工中起着重要作用,例如开挖,挡土结构,桩群,隧道掘进机,涵洞和地下设施。拱形机制对于颗粒材料/岩体是固有的,与尺度效应无关。它的基本机制涉及离散单元通过相互作用以优选的几何形状传递载荷的能力,从而在载荷施加区域(或点)与反应区域(或点)之间架起桥梁。尽管进行了广泛的研究,但为解决与离散粒子相互作用有关的基本机理所做的工作很少。介绍并分析了先进实验技术的测试结果。利用由光弹性颗粒制成的颗粒材料模型。该模型以及先进的图像和全局数据采集系统,使您能够通过跟踪每个粒子的运动以及粒子之间的接触力来跟踪陷井门实验期间理想粒状材料内拱形的发展。进行了可视化和定量分析,从微观层面证明了整体弓形现象与粒子相互作用之间的关系。该信息使人们能够观察与拱形机构相关的变化以及由此产生的应力变化。 DEM和测试结果之间可以进行比较。

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