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Using Frequency Response Function And Wave Propagationfor Locating Damage In Plates

机译:利用频率响应函数和波传播来定位板中的损伤

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摘要

In this study, the frequency domain method which utilizes the evaluation of changes in the structural mode shape is adopted to identify regions which contain localized damages. Frequency response function (FRF) values corresponding to the modal frequency, analogous to the mode shape coefficients, are used since change in natural frequency of the system is usually insignificant for localized damage. This method requires only few sensors to obtain the dynamic response of the structure at specific locations to determine the FRF via fast-Fourier transform (FFT). Numerical examples of an aluminum plate, which includes damages of varying severity, locations and combinations of multiple locations, are presented to demonstrate the feasibility of the method. An experimental verification of the method is also done using an aluminum plate with two different degrees of damage, namely a half-through notch and a through notch. The inconsistency in attaining the FRF values for practical applications due to varying impact load may be overcome via statistical averaging, although large variations in the loading in terms of the contact duration should still be avoided. Nonetheless, this method needs special attention when the damages induce notable changes in the modal frequency, such as when the damages are of high severity or cover more extensive area or near the boundary where the support condition is modified. This is largely due to the significant decrease in the frequency term compared to the increase in the vibration amplitude. For practical reasons such as the use of limited number of sensors and to facilitate automation, extending the resolution of this method of identification may not be efficient. Hence, methods based on wave propagation can be employed as a complement on the isolated region to provide an accurate localization as well as to trace the geometry of the damage.
机译:在这项研究中,采用频域方法,利用结构模态形状变化的评估来识别包含局部损伤的区域。使用与模态频率相对应的模态频率对应的频率响应函数(FRF)值,这是因为系统的固有频率变化通常对于局部损伤不重要。该方法只需要很少的传感器即可在特定位置获得结构的动态响应,从而通过快速傅立叶变换(FFT)确定FRF。给出了铝板的数值示例,包括不同严重程度,位置以及多个位置的组合的损坏,以证明该方法的可行性。还使用具有两种不同程度的损坏的铝板(即半贯通槽口和贯通槽口)对方法进行了实验验证。可以通过统计平均来克服由于变化的冲击载荷而在实际应用中获得FRF值的不一致,尽管仍应避免载荷在接触持续时间方面的较大变化。但是,当损害引起模态频率的显着变化时,例如损害严重性较高或覆盖更广泛的区域或在更改支撑条件的边界附近时,此方法需要特别注意。这主要是由于与振动幅度的增加相比,频率项的显着减少。出于实际原因,例如使用有限数量的传感器并促进自动化,扩展这种识别方法的分辨率可能不是有效的。因此,可以将基于波传播的方法用作隔离区域的补充,以提供准确的定位并跟踪损坏的几何形状。

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