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Performance-based seismic design of flexible-base multi-storey buildings considering soil-structure interaction

机译:考虑土-结构相互作用的柔性基础多层建筑基于性能的抗震设计

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摘要

A comprehensive parametric study has been carried out to investigate the seismic performance of multistorey shear buildings considering soil-structure interaction (SSI). More than 40,000 SDOF and MDOF models are designed based on different lateral seismic load patterns and target ductility demands to represent a wide range of building structures constructed on shallow foundations. The cone model is adopted to simulate the dynamic behaviour of an elastic homogeneous soil half-space. 1, 5, 10, 15 and 20-storey SSI systems are subjected to three sets of synthetic spectrum-compatible earthquakes corresponding to different soil classes, and the effects of soil stiffness, design lateral load pattern, fundamental period, number of storeys, structure slenderness ratio and site condition are investigated. The results indicate that, in general, SSI can reduce (up to 60%) the strength and ductility demands of multi-storey buildings, especially those with small slenderness ratio and low ductility demands. It is shown that code-specified design lateral load patterns are more suitable for long period flexible-base structures; whereas a trapezoidal design lateral-load pattern can provide the best solution for short period flexible-base structures. Based on the results of this study, a new design factor RF is introduced which is able to capture the reduction of strength of single-degree-of-freedom structures due to the combination of SSI and structural yielding. To take into account multi-degree-of-freedom effects in SSI systems, a new site and interaction-dependent modification factor RM is also proposed. The RF and RM factors are integrated into a novel performance-based design method for site and interaction-dependent seismic design of flexible-base structures. The adequacy of the proposed method is demonstrated through several practical design examples. (C) 2015 Elsevier Ltd. All rights reserved.
机译:考虑到土-结构相互作用(SSI),已经进行了一项综合的参数研究,以研究多层剪力建筑物的抗震性能。根据不同的侧向地震荷载模式和目标延性要求,设计了40,000多种SDOF和MDOF模型,以代表在浅基础上建造的各种建筑结构。采用圆锥模型模拟了弹性均质土半空间的动力特性。 1层,5层,10层,15层和20层SSI系统经受三组与频谱兼容的合成地震,分别对应于不同的土壤类别,以及土壤刚度,设计侧向荷载模式,基本周期,层数,结构的影响研究了细长比和现场条件。结果表明,总体而言,SSI可以降低(高达60%)多层建筑物的强度和延性要求,特别是细长比小且延性要求低的建筑物。结果表明,规范规定的设计侧向荷载模式更适合于长期的柔性基础结构。梯形设计的横向荷载模式可以为短期柔性基础结构提供最佳解决方案。基于这项研究的结果,引入了一种新的设计因子RF,该因子能够捕获由于SSI和结构屈服而导致的单自由度结构强度的降低。为了考虑到SSI系统中的多自由度效应,还提出了一个新的站点和与交互有关的修改因子RM。 RF和RM因子被集成到一种新颖的基于性能的设计方法中,以进行基于位置和相互作用的柔性基础结构的地震设计。通过几个实际的设计实例证明了该方法的充分性。 (C)2015 Elsevier Ltd.保留所有权利。

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