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A Study on the liquefaction risk in seismic design of foundations

机译:地基抗震设计中液化风险的研究

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摘要

A fully coupled non-linear effective stress response finite difference (FD) model is built to survey the counter-intuitive recent findings on the reliance of pore water pressure ratio on foundation contact pressure. Two alternative design scenarios for a benchmark problem are explored and contrasted in the light of construction emission rates using the EFFC-DFI methodology. A strain-hardening effective stress plasticity model is adopted to simulate the dynamic loading. A combination of input motions, contact pressure, initial vertical total pressure and distance to foundation centreline are employed, as model variables, to further investigate the control of permanent and variable actions on the residual pore pressure ratio. The model is verified against the Ghosh and Madabhushi high acceleration field test database. The outputs of this work is aimed to improve the current computer-aided seismic foundation design that relies on ground’s packing state and consistency. The results confirm that on seismic excitation of shallow foundations, the likelihood of effective stress loss is greater in deeper depths and across free field. For the benchmark problem, adopting a shallow foundation system instead of piled foundation benefitted in a 75% less emission rate, a marked proportion of which is owed to reduced materials and haulage carbon cost.
机译:建立了完全耦合的非线性有效应力响应有限差分(FD)模型,以调查与孔隙水压力比对地基接触压力有关的反直觉的最新发现。使用EFFC-DFI方法,根据建筑排放率探索并对比了基准问题的两种替代设计方案。采用应变硬化有效应力可塑性模型来模拟动态载荷。输入运动,接触压力,初始垂直总压力和到地心线的距离的组合被用作模型变量,以进一步研究对残余孔隙压力比的永久作用和可变作用的控制。该模型针对Ghosh和Madabhushi高加速度现场测试数据库进行了验证。这项工作的输出旨在改进当前基于地面填充状态和一致性的计算机辅助地震基础设计。结果证实,在浅层基础上进行地震激励时,在更深的深度和整个自由场中有效应力损失的可能性更大。对于基准问题,采用浅基础系统而不是桩基础可减少75%的排放率,这主要归功于减少的材料和运输的碳成本。

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