Parametric study of the earth dam's behaviour subjected to earthquake

IF 0.7 Q4 MECHANICS Studia Geotechnica et Mechanica Pub Date : 2022-11-18 DOI:10.2478/sgem-2022-0017
H. Ayeche, Z. Zitouni, A. Limam, Ali Bouafia
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Abstract

Abstract Static stability of an earth dam can be established by estimating the static safety factor equal to the ratio of the shear strength to the shear stress along a critical sliding area. In contrast, it is more complicated to evaluate the dynamic stability during an earthquake. The water filling the interstices of the earth dams cannot drain during the short duration of an earthquake. An excess pore water pressure ΔU develops, and its role is predominant in the destabilisation of the dam. The pore water increase causes a decrease in the soil shear strength. It is, therefore, crucial to evaluate and take into consideration ΔU in the dam dynamic stability analysis. This research is a contribution to reach this objective. A parametric study was conducted by varying the physical and mechanical soil characteristics constituting the dam, as well as its geometrical values, in order to evaluate their effects on the dynamic safety factor. The dynamic safety factor is calculated using the pseudo-static method, taking into account the excess pore water pressure that develops during cyclic loading into the granular soil of the earth dam upstream face. The results of the parametrical analytical study were also compared to the results of numerical simulations of the dam seismic stability trough pseudo-static method. The numerical simulations were done with three different software: PLAXIS and ABAQUS (based on the finite element method) and GEOSTAB (deals with the problem at the limit equilibrium using the simplified Bishop method). At the end, on one hand, we were able to describe how and at what level of the dam upstream face the sliding occurs, and on the other hand, we were able to underline the adequate combination between the dam geometric parameters and the mechanical soil characteristics which may ensure seismic stability.
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地震作用下土坝性能的参数研究
摘要土石坝的静力稳定性可以通过计算静力安全系数来确定,静力安全系数等于沿临界滑动区域的抗剪强度与剪应力之比。相比之下,地震过程中动力稳定性的评估则更为复杂。在地震发生的短时间内,填满土坝缝隙的水不能排干。超孔隙水压力ΔU在大坝失稳中起主导作用。孔隙水的增加导致土体抗剪强度的降低。因此,在大坝动力稳定分析中,如何评价和考虑ΔU是至关重要的。这项研究是对实现这一目标的贡献。通过改变构成大坝的土壤的物理和力学特性及其几何值,进行了参数化研究,以评估它们对动力安全系数的影响。采用拟静力法计算动力安全系数,考虑了循环加载过程中对坝体上游颗粒土产生的超孔隙水压力。并将参数分析研究结果与拟静力法坝体地震稳定数值模拟结果进行了比较。采用PLAXIS和ABAQUS(基于有限元法)和GEOSTAB(使用简化的Bishop法处理极限平衡问题)三种不同的软件进行了数值模拟。最后,一方面,我们能够描述如何以及在大坝上游面发生滑动的水平,另一方面,我们能够强调大坝几何参数和机械土壤特性之间的适当组合,这可能确保地震稳定性。
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来源期刊
CiteScore
1.30
自引率
16.70%
发文量
20
审稿时长
16 weeks
期刊介绍: An international journal ‘Studia Geotechnica et Mechanica’ covers new developments in the broad areas of geomechanics as well as structural mechanics. The journal welcomes contributions dealing with original theoretical, numerical as well as experimental work. The following topics are of special interest: Constitutive relations for geomaterials (soils, rocks, concrete, etc.) Modeling of mechanical behaviour of heterogeneous materials at different scales Analysis of coupled thermo-hydro-chemo-mechanical problems Modeling of instabilities and localized deformation Experimental investigations of material properties at different scales Numerical algorithms: formulation and performance Application of numerical techniques to analysis of problems involving foundations, underground structures, slopes and embankment Risk and reliability analysis Analysis of concrete and masonry structures Modeling of case histories
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