Estimation Accuracy of Absolute Maximum Elasto-Plastic Displacements of MDOF Oscillators Based on a Modal Combination Rule With Post-Yielding Modal Properties and Linear Response Spectrum Values

T. Taniguchi, Yoshihiko Toda, Y. Ono, K. Mukaibo
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Abstract

Taniguchi, et al. [1] developed an analytical method for evaluating the absolute maximum elasto-plastic displacements of multi-degree-of-freedom (MDOF) oscillators under the action of base excitation based on a modal combination. Its essence is that 1) modal frequencies, shapes and damping during yielding of any member of the MDOF oscillators are readily specified by the modal analysis with the secondary stiffness of the members being yielded, 2) assuming that a bilinear hysteresis may describe the force-displacement relationship of each mode, an equivalently linearized system consisting of a single-degree-of-freedom (SDOF) oscillator is introduced to approximate the absolute maximum elasto-plastic displacement of each mode, 3) the absolute maximum elasto-plastic displacement of the MDOF oscillator is evaluated by the Square Root of Sum of Squares rule (SRSS-rule) by combining the maximum elasto-plastic displacement of each mode approximated by the proposed equivalently linearized system. This study first provides small modification in the equivalently linearized system. Then, employing a couple of MDOF oscillators whose spring at arbitrary storey may yield and an accelerogram, the maximum elasto-plastic displacement of the MDOF oscillator is calculated by the proposed method and is compared with that computed by the time history analysis. Their comparison suggests that the proposed method can reasonably evaluate the absolute maximum elasto-plastic displacement of the MDOF oscillator subjected to earthquake excitation as the conventional SRSS-rule does that for the linear MDOF oscillators.
基于屈服后模态特性和线性响应谱值模态组合规则的多自由度振子绝对最大弹塑性位移估计精度
Taniguchi等[1]基于模态组合开发了一种基于模态组合的多自由度(MDOF)振子在基激励作用下的绝对最大弹塑性位移的分析方法。其实质是:1)MDOF振子中任何构件屈服时的模态频率、振型和阻尼都可以用被屈服构件的二次刚度通过模态分析来确定;2)假设双线性迟滞可以描述每个模态的力-位移关系;引入由单自由度(SDOF)振子组成的等效线性化系统来近似各模态的绝对最大弹塑性位移;3)结合所提出的等效线性化系统所近似的各模态最大弹塑性位移,采用平方和的平方根规则(srss规则)求出MDOF振子的绝对最大弹塑性位移。本研究首先对等效线性化系统进行了小的修正。然后,采用一对任意层位弹簧可能屈服的多自由度振子和一个加速度,用所提出的方法计算了多自由度振子的最大弹塑性位移,并与时程分析计算结果进行了比较。结果表明,与传统的srss准则对线性MDOF振子的绝对最大弹塑性位移的计算方法相比,该方法能合理地计算出地震作用下MDOF振子的绝对最大弹塑性位移。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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