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Evaluation of pseudostatic active earth pressure coefficient of cantilever retaining walls

机译:悬臂式挡土墙的拟静力主动土压力系数评估

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A stress plasticity solution is proposed for evaluating the gravitational and dynamic active earth pressures on cantilever retaining walls with long heel. The solution takes into account the friction angle of the soil, wall roughness, backfill inclination and horizontal and vertical seismic accelerations. It is validated by means of the comparison with both traditional limit equilibrium methods (e.g. Mononobe-Okabe equations) and static and pseudostatic numerical FLAC analyses. For numerical analyses the soil is modelled as an elasto-plastic non-dilatant medium obeying the Mohr-Coulomb yield criterion, while the wall is elastic. The solutions for the horizontal and vertical seismic coefficients are proposed, which allow one to determine the intensity of the active thrust and its inclination δ with respect to the horizontal. It is demonstrated that the latter also depends on the soil friction angle ψ. The inclination in seismic conditions δ_E, is greater than the one in static conditions, δ_S, usually adopted in both cases. As a matter of fact, since wall stability conditions improve with the increase of inclination δ, the present method gives solutions that are less onerous than traditional ones, producing less conservative wall designs. Finally pseudostatic results are compared with proper dynamic analyses (by FLAC code) performed utilising four Italian accelerometric time-histories as input ground motion.
机译:提出了一种应力可塑性解决方案,用于评估长跟悬臂式挡土墙的重力和动态主动土压力。该解决方案考虑了土壤的摩擦角,壁面粗糙度,回填倾角以及水平和垂直地震加速度。通过与传统极限平衡方法(例如Mononobe-Okabe方程)以及静态和拟静态数值FLAC分析进行比较来验证这一点。为了进行数值分析,将土壤建模为遵循Mohr-Coulomb屈服准则的弹塑性非膨胀介质,而墙是弹性的。提出了水平和垂直地震系数的解决方案,该解决方案允许确定活动推力的强度及其相对于水平方向的倾斜度δ。证明后者也取决于土壤摩擦角ψ。在两种情况下通常采用的地震条件下的倾角δ_E大于静态条件下的倾角δ_S。实际上,由于壁的稳定性条件随着倾角δ的增加而改善,因此本方法所提供的解决方案比传统解决方案的工作量少,产生的保守壁设计也更少。最终,将伪静态结果与适当的动态分析(通过FLAC代码)进行比较(利用四个意大利加速度时间历史作为输入地面运动)。

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