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Stochastic dynamic response and reliability assessment of controlled structures with fractional derivative model of viscoelastic dampers

机译:粘弹性阻尼器分数阶导数模型对受控结构的随机动力响应和可靠性评估

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摘要

Viscoelastic dampers, where fractional derivatives are involved, are often considered for use to mitigate dynamic response of structures. However, it is not an easy task to obtain the probabilistic dynamic response and the reliability of controlled structures with fractional terms. For this purpose, an efficient methodology based on the probability density evolution method is proposed, where the generalized density evolution equation is present to capture the instantaneous probabilistic dynamic response and the dynamic reliability can be evaluated from the standpoint of probability dissipation. Numerical solution is of practical necessity, where a deterministic procedure to solve the equation of motion with fractional derivatives is embedded. Therefore, the precise integration method (PIM) is extended to numerically integrate the equation of motion with fractional terms, which offers high accuracy. The numerical results verify the effectiveness of the advocated methodology, but also indicate the viscoelastic dampers can enhance the seismic performance of structures significantly.
机译:通常考虑使用涉及分数导数的粘弹性阻尼器,以减轻结构的动力响应。但是,获得具有分数项的概率动态响应和受控结构的可靠性并非易事。为此,提出了一种基于概率密度演化方法的有效方法,提出了一种通用的密度演化方程来捕获瞬时概率动态响应,并且可以从概率耗散的角度评估动态可靠性。数值解是有实际必要性的,其中嵌入了使用分数导数求解运动方程的确定性过程。因此,扩展了精确积分方法(PIM),以对运动方程与分数项进行数值积分,从而提供了高精度。数值结果验证了所提方法的有效性,但也表明粘弹性阻尼器可以显着提高结构的抗震性能。

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