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首页> 外文期刊>Earthquake Engineering & Structural Dynamics >Effects of the improper modeling of viscous damping on the first-mode and higher-mode dominated responses of base-isolated buildings
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Effects of the improper modeling of viscous damping on the first-mode and higher-mode dominated responses of base-isolated buildings

机译:粘性阻尼建模不当对基础隔震建筑物的一阶和高阶主导响应的影响

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摘要

In many finite element platforms, a classical global damping matrix based on the elastic stiffness of the system (including isolators) is usually developed as part of the solution to the equations of motion of base-isolated buildings. The conducted analytical and numerical investigations illustrate that this approach can lead to the introduction of unintended damping to the first and higher vibration modes and the spurious suppression of the respective structural responses. A similar shortcoming might be observed even when a nonclassical damping model (ie, an assembly of the superstructure and isolation system damping sub-matrices) is used. For example, the use of Rayleigh damping approach to develop the superstructure damping sub-matrix can lead to the undesired addition of damping to the isolated mode arising from the mass-proportional component of the superstructure damping. On the other hand, the improper use of nonclassical stiffness-proportional damping (eg, determining the proportional damping coefficient, beta(k), based on the first mode) can result in assigning significant damping to the higher-modes and the unintended mitigation of the higher-mode responses. Results show that a nonclassical stiffness-proportional model in which beta(k) is determined based on the second modal period of a base-isolated building can reasonably specify the intended damping to the higher modes without imparting undesirable damping to the first mode. The nonclassical stiffness-proportional damping can be introduced to the numerical model through explicit viscous damper elements attached between adjacent floors. In structural analysis software such as SAP2000 (R), the desired nonclassical damping can be also modeled through specifying damping solely to the superstructure material.
机译:在许多有限元平台中,通常将基于系统(包括隔离器)的弹性刚度的经典全局阻尼矩阵作为基础隔震建筑运动方程解的一部分。进行的分析和数值研究表明,这种方法可能导致在第一和更高振动模式中引入意想不到的阻尼,并相应地抑制了相应的结构响应。即使使用非经典的阻尼模型(即,上部结构和隔离系统阻尼子矩阵的组合),也可能会观察到类似的缺点。例如,使用瑞利阻尼方法来开发上部结构阻尼子矩阵会导致由于上部结构阻尼的质量比例分量而使阻尼不期望地添加到隔离模式中。另一方面,不适当地使用非经典的刚度-比例阻尼(例如,基于第一模式确定比例阻尼系数beta(k))可能会导致对较高模式分配显着的阻尼,并且会意外地减轻较高模式的响应。结果表明,基于基础隔震建筑物的第二模态周期确定beta(k)的非经典刚度比例模型可以合理地指定较高模态的预期阻尼,而不会给第一模态带来不期望的阻尼。可以通过连接在相邻地板之间的显式粘性阻尼器元件将非经典刚度比例阻尼器引入数值模型。在诸如SAP2000(R)之类的结构分析软件中,也可以通过仅指定对上部结构材料的阻尼来对所需的非经典阻尼进行建模。

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