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Mesoscale numerical analysis and test on the effect of debonding defect of rectangular CFSTs on wave propagation with a homogenization method

机译:Messcale数值分析及矩形CFST缺陷对均质方法波传播效果的数值分析及试验

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In this paper, in order to distinguish the influence of both interface debonding defect and the mesoscale structure of concrete core on the stress wave field and the response of an embedded Piezoelectric-lead-zirconate-titanate (PZT) sensor in rectangular concrete filled steel tube (RCFST) members efficiently, a two dimensional (2D) mesoscale numerical concrete homogenization approach for concrete core considering the random distribution of circular, elliptical and irregular polygonal aggregates is proposed firstly. Then, mesoscale simulation on stress wave fields within the cross-section of RCFST members with and without interface debonding defects using both mesoscale models and their homogenization models are carried out, respectively. The effect of both mesoscale structure of concrete core and the interface debonding defects on the stress wave field of each member is discussed and the efficiency of the homogenization approach is illustrated. Therefore, the time-domain response of an PZT sensor embedded in the concrete core of RCFST members coupled with PZT patches under sweep frequency excitation signal is determined with multi-physics field simulation and compared when both mesoscale models and their homogenization models are used. Then, the sensitivity of the wavelet packet energy of the embedded PZT sensor response on the variation of both mesoscale structure of concrete core and the dimension of interface debonding defects is investigated in details. Finally, in order to illustrate the difference in the significance of the effect of interface debonding defect and the mesoscale structure of concrete core on stress wave propagation, comparative test with a set of RCFST members without and with interface debonding defects is carried out. Test results also show that the influence of interface debonding defects on embedded PZT sensor response and the stress wave fields is dominant. The detectability of interface debonding detection approach using stress wave measurement is illustrated efficiently with the proposed equivalent homogenization mesoscale modelling approach even the mesoscale structure of the concrete core is considered.
机译:在本文中,为了区分界面剥离缺陷和混凝土芯的Messcale结构对应力波场的影响以及矩形混凝土填充钢管中的嵌入式压电引线 - 钛酸盐(PZT)传感器的响应(RCFST)成员有效地,提出了一种考虑圆形,椭圆形和不规则聚集体随机分布的混凝土芯的二维(2D)Mescreale数值均质均质方法。然后,分别使用使用MESCLE模型及其均化模型的RCFST成员的横截面的横截面内的应力波场的MES尺度模拟及其均匀化模型。讨论了混凝土芯的介质结构的效果和在每个成员的应力波场上的界面剥离缺陷的效果,并示出了均化方法的效率。因此,利用多物理场模拟确定嵌入在RCFST成员的混凝土芯中的PZT传感器的时域响应与在扫描频率激励信号下的PZT贴片中耦合,并使用MESCHE模型及其均化模型。然后,详细地研究了嵌入式PZT传感器响应对嵌入式PZT传感器响应对混凝土芯的间隙结构的变化的灵敏度和接口剥离缺陷的尺寸。最后,为了说明界面剥离缺陷的效果和混凝土芯的MESSCLE结构对应力波传播的影响的重要性,进行了一组RCFST成员而没有界面剥离缺陷的比较试验。测试结果还表明,界面剥离缺陷对嵌入式PZT传感器响应的影响和应力波场是显性的。利用所提出的等效均匀化Messcale建模方法有效地说明了使用应力波测量的接口剥离检测方法的可检测性,即使考虑了混凝土芯的Mescle结构。

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