首页> 外文期刊>Journal of intelligent material systems and structures >Seismic fragility analyses of steel building frames installed with superelastic shape memory alloy dampers: Comparison with yielding dampers
【24h】

Seismic fragility analyses of steel building frames installed with superelastic shape memory alloy dampers: Comparison with yielding dampers

机译:安装了超弹性形状记忆合金阻尼器的钢制建筑框架的抗震性分析:与屈服阻尼器的比较

获取原文
获取原文并翻译 | 示例
           

摘要

Smart materials such as shape memory alloys have unique material properties that can potentially mitigate earthquake hazards on the built environment. Implementation of shape memory alloy-based devices on building structures should incorporate two key factors: (1) distinct mechanical features of the devices and (2) inherent large uncertainty stemming from material properties, building geometry, and ground motions. This study conducts seismic fragility analyses of steel building frames installed with superelastic shape memory alloy dampers, which enable both factors to be appropriately considered. First, a thermomechanical constitutive model is utilized to capture all essential characteristics of the shape memory alloy damper. Next, a probabilistic seismic analysis framework is developed to obtain the seismic demands of three critical engineering demand parameters (i.e. peak interstory drift ratio, residual drift ratio, and top floor acceleration) of the building when subjected to modeling uncertainty and a large set of realistic ground motion inputs. Nonlinear time history responses and the associated short-time Fourier transform demonstrate the superior control efficiency of the shape memory alloy damper in limiting the building's residual drift and top floor acceleration. Furthermore, seismic fragilities of the buildings when installed with shape memory alloy dampers are compared with those when equipped with yielding dampers. The study indicates that under different levels of ground motions and various ranges of modeling uncertainty in structural parameters, shape memory alloy damper consistently outperforms the yielding damper in reducing the seismic fragility of the building at both component and system levels.
机译:诸如形状记忆合金之类的智能材料具有独特的材料特性,可以潜在地减轻建筑环境中的地震危险。在建筑物结构上实施基于形状记忆合金的设备应包括两个关键因素:(1)设备的独特机械特性;(2)由于材料特性,建筑物几何形状和地震动而产生的固有的较大不确定性。这项研究对装有超弹性形状记忆合金减震器的钢制建筑框架进行了地震易损性分析,这使得可以适当考虑这两个因素。首先,利用热机械本构模型来捕获形状记忆合金阻尼器的所有基本特征。接下来,开发一个概率地震分析框架,以在受到模型不确定性和大量实际情况的影响时,获得建筑物的三个关键工程需求参数(即,峰值层间漂移比,残余漂移比和顶层加速度)的地震需求。地面运动输入。非线性时程响应和相关的短时傅立叶变换表明,形状记忆合金阻尼器在限制建筑物的残余漂移和顶层加速度方面具有出色的控制效率。此外,将安装有形状记忆合金阻尼器的建筑物的地震脆弱性与装有屈服阻尼器的建筑物的脆弱性进行了比较。研究表明,在不同水平的地震动和结构参数在各种建模不确定性范围内,形状记忆合金阻尼器在降低建筑物的构件和系统水平的地震脆性方面始终优于屈服阻尼器。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号