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Distribution of Shear Coefficient of Multi-story Buildings Subjected to Near-fault Ground Motions

机译:近断层地震动作用下多层建筑的抗剪系数分布

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摘要

In static seismic design, the strength demands of structural members are decided based on the expected shear force in a seismic event. A reasonable shear force distribution pattern leads to a reasonable configuration of structural parameters and thus makes the structure behave as expected in the design stage. In current seismic codes, the shear force distribution patterns are established based on the elastic response of structures subjected to ordinary far-fault ground motions. Because structural responses induced by pulse-like near-fault ground motions are substantially different from the responses induced by far-fault ground motions, shear force patterns specified in current codes are not suitable for the structural design against near-fault ground motions, and a shear force distribution pattern considering the near-fault effect should be established. This study aims to investigate the characteristics of shear coefficients resulting from near-fault ground motions and to provide a new shear force distribution pattern specifically for seismic design against near-fault ground motions. To achieve this goal, dynamic time history analyses are performed on elastic shear models based on 50 near-fault ground motions, and the shear force distributions are analyzed statistically. Findings from the study reveal that the higher modes contribute substantially to the shear coefficient, and the contribution is affected by the pulse period of the ground motion and the structural damping. The shear coefficients for floor levels 2/3 of the way up the height of the structure are significantly larger than code-specified values, if the structure has a limited damping ratio. Based on the numerical results, an empirical formula of the shear coefficient pattern is proposed. In this formula, the effects of damping ratio and period ratio are taken into account, and it can be used to derive shear coefficients more suitable for structures subjected to pulse-like near-fault ground motions.
机译:在静态地震设计中,结构构件的强度要求是根据地震事件中的预期剪切力确定的。合理的剪力分布模式可导致结构参数的合理配置,从而使结构在设计阶段达到预期的性能。在当前的地震规范中,基于经受普通远断层地面运动的结构的弹性响应来建立剪力分布模式。由于类似脉冲的近断层地震动所引起的结构响应与远断层地震动所引起的响应基本不同,因此,当前法规中规定的剪切力模式不适用于针对近断层地震动的结构设计,并且应建立考虑近断层效应的剪力分布模式。这项研究的目的是调查近断层地震动引起的剪切系数的特征,并为抗近断层地震动的地震设计提供一种新的剪力分布模式。为了实现此目标,基于50次近断层地震动对弹性剪切模型进行了动态时程分析,并对剪切力分布进行了统计分析。从研究中发现,较高的模态对剪切系数有很大的影响,并且该贡献受地震动脉冲周期和结构阻尼的影响。如果结构的阻尼比有限,则沿结构高度上升2/3的地板水平的剪切系数将明显大于规范指定的值。基于数值结果,提出了剪切系数模式的经验公式。在该公式中,考虑了阻尼比和周期比的影响,可以将其用于推导更适用于遭受类似脉冲的近断层地震动的结构的剪切系数。

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