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Assessment of soil-pile-structure interaction influencing seismic response of mid-rise buildings sitting on floating pile foundations

机译:土-桩-结构相互作用对浮动桩基础上高层建筑地震响应的影响评估

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The role of the seismic soil-pile-structure interaction (SSPSI) is usually considered beneficial to the structural system under seismic loading since it lengthens the lateral fundamental period and leads to higher damping of the system in comparison with the fixed-base assumption. Lessons learned from recent earthquakes show that fixed-base assumption could be misleading, and neglecting the influence of SSPSI could lead to unsafe design particularly for structures founded on soft soils. In this study, in order to better understand the SSPSI phenomena, a series of shaking table tests have been conducted for three different cases, namely: (ⅰ) fixed-base structure representing the situation excluding the soil-structure interaction; (ⅱ) structure supported by shallow foundation on soft soil; and (ⅲ) structure supported by floating (frictional) pile foundation in soft soil. A laminar soil container has been designed and constructed to simulate the free field soil response by minimising boundary effects during shaking table tests. In addition, a fully nonlinear three dimensional numerical model employing FLAC3D has been adopted to perform time-history analysis on the mentioned three cases. The numerical model adopts hys-teretic damping algorithm representing the variation of the shear modulus and damping ratio of the soil with the cyclic shear strain capturing the energy absorbing characteristics of the soil. Results are presented in terms of the structural response parameters most significant for the damage such as foundation rocking, base shear, floor deformation, and inter-storey drifts. Comparison of the numerical predictions and the experimental data shows a good agreement confirming the reliability of the numerical model. Both experimental and numerical results indicate that soil-structure interaction amplifies the lateral deflections and inter-storey drifts of the structures supported by floating pile foundations in comparison to the fixed base structures. However, the floating pile foundations contribute to the reduction in the lateral displacements in comparison to the shallow foundation case, due to the reduced rocking components.
机译:地震土-桩-结构相互作用(SSPSI)的作用通常被认为对地震荷载作用下的结构系统有利,因为与固定基础假设相比,它延长了侧向基本周期并导致了更高的系统阻尼。从最近的地震中吸取的教训表明,固定基准的假设可能会产生误导,而忽略SSPSI的影响可能会导致设计不安全,特别是对于基于软土的结构。在这项研究中,为了更好地理解SSPSI现象,针对三种不同情况进行了一系列振动台测试,即:(ⅰ)固定状态的结构代表了不包括土-结构相互作用的情况; (ⅱ)软土地上浅层支撑的结构; (ⅲ)在软土中由浮动(摩擦)桩基础支撑的结构。设计并构造了一个层状土壤容器,以通过最小化振动台测试期间的边界效应来模拟自由土壤的响应。此外,已采用采用FLAC3D的完全非线性三维数值模型对上述三种情况进行时程分析。数值模型采用滞回阻尼算法,代表了土壤的剪切模量和阻尼比的变化,其中循环剪切应变捕获了土壤的能量吸收特性。结果以对破坏最重要的结构响应参数表示,例如基础摇摆,基础剪力,地面变形和层间漂移。数值预测和实验数据的比较显示出良好的一致性,证实了数值模型的可靠性。实验和数值结果均表明,与固定基础结构相比,土-结构相互作用放大了浮动桩基础所支撑结构的侧向挠度和层间漂移。然而,由于减少了晃动分量,与浅基础情况相比,浮动桩基础有助于减小侧向位移。

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