基于粘弹性材料构成关系的等效复阻尼模型时域积分法

Jia Fan, Shuxia Wang, Panxu Sun
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引用次数: 0

摘要

复阻尼模型仅适用于频域。基于粘弹性材料的构成关系,一个振动方程等效于复阻尼理论的构成关系和满足因果关系约束的频率响应函数。与现有的等效复阻尼模型相比,所提出的等效阻尼模型可以考虑更多的固有频率。推导了高斯精确积分法和改进恒定平均加速度法的计算公式。通过等效复阻尼,可以对典型实例的地震时程响应进行数值计算。与复阻尼振动方程的高斯精确积分计算结果相比,可以分析出一些结论。所提出的两种方法可以避免复杂阻尼振动方程时域数值求解中的发散现象。等效复阻尼理论时域积分法稳定且收敛性好。高斯精确积分法等效性强,计算复杂度大。改进的恒定平均加速度法具有弱等效性和较小的计算复杂度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A time-domain integration method with equivalent complex damping model based on viscoelastic material constitutive relation
The complex damping model is only applied in frequency-domain. Based on the constitutive relation of viscoelastic materials, a vibration equation is equivalent to the constitutive relation of complex damping theory and the frequency response function satisfying the causality constraint. Compared with the existing equivalent complex damping model, the proposed equivalent damping model can consider more natural frequencies. The calculation formulas of Gauss precise integral method and improvement constant average acceleration method are derived. By the equivalent complex damping, the seismic time-history response of the typical example could carry on the numerical calculation. Compared with the Gauss precise integral calculation results of complex damping vibration equation, some conclusions can be analyzed. The proposed two methods could avoid divergent phenomenon in the time-domain numerical solution of complex damping vibration equation. The time-domain integral method of equivalent complex damping theory is stable and convergent. The Gauss precise integral method has strong equivalence and big computational complexity. The improvement constant average acceleration method has weak equivalence and small computational complexity.
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