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首页> 外文期刊>Acta Geotechnica: An International journal for Geoengineering >Effect of coupling excess pore pressure and deformation on nonlinear seismic soil response
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Effect of coupling excess pore pressure and deformation on nonlinear seismic soil response

机译:孔隙压力和变形耦合对非线性地震土反应的影响

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摘要

The excess pore pressure () generation and consequent reduction in effective stress lead to the softening of a liquefiable soil deposit that can alter ground motions in terms of amplitude, frequency content and duration. However, total stress models, which are the most currently used, do not take into account coupling of excess pore pressures and soil deformations. To assess this effect, two analyses were made: (1) a Biot hydraulic and mechanical computation of a saturated soil deposit with coupling pore pressures and soil deformations and (2) a mechanical computation of a decoupled model with same initial behaviour. Both analyses were performed with a fully nonlinear elastoplastic multi-mechanism model. As depends on the soil properties, two soils were analysed: loose-to-medium and medium-to-dense sand. The results regarding the profile of maximum accelerations and shear strains, the surface accelerations and their corresponding response spectra are analysed. The mean values of the normalized response spectra ratio of surface accelerations between the coupled and decoupled model show a deamplification of low and high frequencies (i.e. at frequencies lower than 1.0 Hz and higher than 10 Hz) that tend to increase with the liquefaction zone size. Coupling of and soil deformation is therefore of great importance to accurately model the ground motion response. On the contrary, while peak acceleration predictions could be conservative, the amplification on the low frequencies could be largely underestimated which could be highly prejudicial for flexible buildings.
机译:过大的孔隙压力的产生以及有效应力的减少导致可液化土壤沉积物的软化,从而可以改变振幅,频率含量和持续时间方面的地面运动。但是,目前使用最广泛的总应力模型并未考虑过大孔隙压力与土壤变形的耦合。为了评估这种影响,进行了两项分析:(1)对饱和土壤沉积物进行Biot水力和机械计算,并结合孔隙压力和土壤变形;(2)对具有相同初始特性的解耦模型进行机械计算。两种分析均使用完全非线性的弹塑性多机理模型进行。根据土壤性质,分析了两种土壤:松散至中等和中等至密集的沙子。分析了有关最大加速度和剪切应变,表面加速度及其对应的响应谱的结果。耦合模型和解耦模型之间的表面加速度的归一化响应光谱比的平均值表明,低频和高频(即在低于1.0 Hz且高于10 Hz的频率下)的放大率随液化区尺寸的增加而增大。因此,土壤变形的耦合对准确模拟地震动响应非常重要。相反,虽然峰值加速度的预测可能是保守的,但低频的放大率可能被大大低估了,这对于灵活的建筑可能是非常不利的。

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