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Finite element modelling of an innovative passive energy dissipation device for seismic hazard mitigation

机译:用于缓解地震灾害的创新型无源消能装置的有限元建模

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Nonlinear finite element analyses of an innovative passive energy dissipation device, referred to herein as CAR1, were conducted to investigate its behavior to dissipate seismic energy. The investigated device belongs to the passive energy dissipation systems, as it doesn't require external power to generate system control forces. It can be used on new or existing structures and can easily be adapted to the particular demands of structures. It can be installed in a variety of ways, including use in either single or cruciate (X) diagonal braces in building frames. Moreover this device has the advantages to provide (i) additional stiffness (ii) dissipation of seismic energy, (iii) as well as control of the axial forces that are developed at the diagonal steel braces. The main part of the device CAR1 is the groups of superimposed blades, which dissipate seismic energy through simultaneous friction and yield. The number and the dimensions of the blades as well as their elastoplastic properties define the constitutive law of the diagonal bars under axial force. To this purpose a finite-element micromodel of the device is formulated and used, by considering contact interface conditions between the blades. The analytical investigation is carried out through an extended comparative parametric study and is focused on the quantitative influence of certain simplified modelling assumptions and several critical modelling parameters on the response of the system. The present paper delineates a set of systematic procedures for finite element model calibration and parametric evaluation that enable robust simulation of the device CAR1 under quasi-static cyclic loading using explicit time-stepping dynamic analysis procedure.
机译:进行了一种创新的无源消能设备(本文称为CAR1)的非线性有限元分析,以研究其消散地震能量的行为。被研究的设备属于无源消能系统,因为它不需要外部电源即可产生系统控制力。它可以在新的或现有的结构上使用,并且可以轻松地适应结构的特定要求。它可以通过多种方式安装,包括在建筑框架中的单个或十字形(X)对角支架中使用。而且,该装置的优点在于提供(i)附加的刚度(ii)地震能量的耗散,(iii)以及控制在对角钢支架处产生的轴向力。设备CAR1的主要部分是成组的叠片,它们通过同时产生的摩擦和屈服来消散地震能量。叶片的数量和尺寸以及其弹塑性确定了斜杆在轴向力作用下的本构关系。为此,通过考虑叶片之间的接触界面条件,制定并使用了该装置的有限元模型。分析研究是通过扩展的比较参数研究进行的,重点是某些简化建模假设和一些关键建模参数对系统响应的定量影响。本文描述了一套用于有限元模型校准和参数评估的系统程序,这些程序可以使用明确的时步动态分析程序对准静态循环载荷下的设备CAR1进行可靠的仿真。

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