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首页> 外文期刊>Journal of Constructional Steel Research >Seismic fatigue behavior of in-plane deformational metallic energy dissipating devices
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Seismic fatigue behavior of in-plane deformational metallic energy dissipating devices

机译:面内变形金属耗能装置的地震疲劳行为

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摘要

The metallic energy dissipating devices (MEDDs) have been developed to mitigate structural damage in the manner that they mainly dissipate seismic input energy rather than typical structural components. Of MEDDs, in plane deformational metallic energy dissipating devices (IPMDs) are widely used to seismic force -resisting systems (SFRSs) in moderate and low -seismicity regions which are expected to relatively small seismic deformation demands since they effectively dissipate seismic energy throughout the yielding at small displacements obtained from relatively high initial lateral stiffness. However, IPMDs could be fractured due to their small deformation capacities and low-resistance to low-cycle fatigue failures. Even if potential problems of IPMDs exist, a current seismic code requires only a few tests of five-full-reversal cycles with a displacement amplitude expected at a very rare strong earthquake and does not provide specific requirements that can remove concern about such fatigue failures under strong earthquake. In this reason, the low-cycle fatigue behavior of IPMDs installed in SFRSs needs to be discussed in depth. To address this, this study performs nonlinear dynamic analyses of prototype SFRSs employing MEDDs and investigates fatigue damage states of MEDDs based on the strain-based approach. The analytic results show that the more rigorous requirements are required to ensure the target collapse probability under the maximum considered earthquakes (MCEs) and, in turn, to guarantee the seismic performance of structures employing MEDDs with preventing their low-cycle fatigue failures. (C) 2018 Elsevier Ltd. All rights reserved.
机译:金属耗能装置(MEDD)的开发目的是减轻结构破坏,因为它们主要耗散地震输入能量而不是典型的结构部件。在MEDD中,平面形变金属能量耗散装置(IPMD)广泛用于中等地震和低地震度地区的抗地震力系统(SFRS),由于它们在整个采油过程中有效地消散了地震能量,因此有望产生相对较小的地震形变要求从较高的初始横向刚度获得的小位移下。但是,由于IPMD变形能力小,对低周疲劳破坏的抵抗力低,因此可能会破裂。即使存在IPMD的潜在问题,当前的地震规范也只需要对五个全反转周期进行几次测试,并在非常罕见的强烈地震下预期位移幅度,并且没有提供可以消除对这种疲劳破坏的担忧的特定要求。强地震。因此,需要深入讨论安装在SFRS中的IPMD的低周疲劳行为。为了解决这个问题,本研究对基于MEDDs的SFRS原型进行了非线性动力学分析,并基于基于应变的方法研究了MEDDs的疲劳损伤状态。分析结果表明,需要更严格的要求来确保在最大考虑地震(MCE)下的目标倒塌概率,并进而保证采用MEDDs的结构的抗震性能并防止其低周疲劳破坏。 (C)2018 Elsevier Ltd.保留所有权利。

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