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A shakedown limit calculation method for geogrid reinforced soils under moving loads

机译:移动载荷下土工格栅增强土壤的Shakbraplown限制计算方法

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摘要

A method to calculate the elastic shakedown limit of transportation systems (e.g. pavements and railways) supported by geogrid reinforced soils is presented. For the first time, lower-bound shakedown theory is combined with a strength-based geogrid simulation approach, resulting in a rapid method to quantify the benefit of geogrids on the elastic shakedown limit. It allows decoupling of elastic stress generation and shakedown calculations, meaning it is straightforward to implement, and requires minimal computational effort. Therefore it presents a useful tool to optimise geogrid design for transportation structures such as highway pavements and railways. To show the capability of the method, shakedown limits are calculated for a variety of geogrid configurations using elastic stresses induced by a moving Hertz load. The effect of geogrid depth, soil cohesion, soil friction angle and loading type (normal versus tangential) are investigated for reinforced and non-reinforced soils. It is found that the optimum depth is sensitive to the soil strength properties. Regarding loading, it is shown that for highly tangential loads, shallower geogrids are effective, while for loads with a minimal tangential component, deeper geogrids are effective.
机译:提出了一种计算土工格栅钢筋土壤支持的输送系统(例如路面和铁路)的弹性升起极限的方法。首次,下限的Shakedrown理论与基于强度的地质格栅模拟方法相结合,导致快速的方法来量化土工格栅对弹性振荡极限的益处。它允许弹性应力发电和Shakedown计算的解耦,这意味着实施它很简单,并且需要最小的计算工作。因此,它提出了一种有用的工具,可以优化用于运输结构的地质格栅设计,如公路路面和铁路。为了显示该方法的能力,使用由移动赫兹负载引起的弹性应力来计算Shakedown限制。对加强和非增强土壤的研究,研究了地理丛深度,土壤内聚力,土壤摩擦角和装载型(正常与切向)的影响。发现最佳深度对土壤强度特性敏感。关于加载,表明,对于高度切向载荷,较浅的地质格栅是有效的,而对于具有最小切向组件的负载,更深的地质格栅是有效的。

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