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Deterministic-stochastic subspace identification method for identification of nonlinear structures as time-varying linear systems

机译:用于确定非线性结构为时变线性系统的确定性-随机子空间识别方法

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This paper proposes the use of the deterministic-stochastic subspace identification (DSI) method, an input-output parametric linear system identification method, for characterization of nonlinear dynamic structural systems based on their time-varying amplitude-dependent instantaneous (i.e., based on short time-windows) modal parameters. Performance of the DSI method for estimation of instantaneous modal parameters of nonlinear systems is investigated using numerical as well as experimental data. In this study, DSI is used for extracting instantaneous modal parameters of single degree-of-freedom (SDOF) as well as 7-DOF systems with different hysteretic material behavior. Nonlinear responses of the SDOF and 7-DOF systems are simulated due to different seismic excitations using the OpenSees structural analysis software. Modal identification results are compared with those obtained using wavelet transform and the exact values. Effects of four input factors are studied on the variability of identified instantaneous modal parameters: (1) type of material nonlinearity, (2) level of nonlinearity, (3) input excitation, and (4) length of data windows used in the identification. The accuracy of the identified instantaneous modal parameters is evaluated along the response time history while varying the above mentioned input factors. Overall, DSI outperforms the wavelet transform for short-time/instantaneous modal identification of nonlinear structural systems and provides reasonably accurate results especially when the material hysteretic behavior is smooth such as the considered Giuffre-Menegotto-Pinto hysteretic model. Finally, DSI has been applied for short-time modal identification of a full-scale seven-story reinforced concrete shear wall structure based on its measured response to different seismic base excitations on a shake table. The identified instantaneous natural frequencies of the first vibration mode can accurately track the variation in the structure's effective stiffness along its response.
机译:本文提出使用确定性-随机子空间识别(DSI)方法(一种输入-输出参数线性系统识别方法),基于非线性动态结构系统的时变幅度相关瞬时(即,基于短时基)来表征非线性动力结构系统。时间窗口)模态参数。使用数值和实验数据,研究了DSI方法估计非线性系统瞬时模态参数的性能。在这项研究中,DSI用于提取单自由度(SDOF)以及具有不同滞后材料特性的7自由度系统的瞬时模态参数。使用OpenSees结构分析软件,由于地震激励的不同,模拟了SDOF和7自由度系统的非线性响应。将模态识别结果与使用小波变换获得的结果和精确值进行比较。研究了四个输入因素对所识别的瞬时模态参数的变异性的影响:(1)材料非线性的类型,(2)非线性程度,(3)输入激励和(4)用于识别的数据窗口长度。沿响应时间历史评估识别的瞬时模态参数的准确性,同时更改上述输入因子。总体而言,DSI优于小波变换,可用于非线性结构系统的短时/瞬时模态识别,并提供合理准确的结果,尤其是在材料滞回特性较为平稳的情况下,例如考虑的Giuffre-Menegotto-Pinto滞回模型。最后,DSI基于其在振动台上对不同地震基础激励的实测响应,已应用于全尺寸七层钢筋混凝土剪力墙结构的短时模态识别。所识别的第一振动模式的瞬时固有频率可以准确地跟踪结构沿其响应的有效刚度的变化。

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