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Experiments on coupled axial-flexural wave propagation in a sagged rod with structural discontinuity using piezoelectric transducers

机译:采用压电传感器的结构不连续耦合轴向弯曲波传播的实验

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摘要

A damage evaluation methodology in a sagged prismatic rod through application of wave propagation mechanics is presented, and an experimental investigation an experimental investigation is illustrated for damage detection using lead zirconate titanate (PZT) piezoelectric transducers. Discontinuity in the form of variation of the cross-sectional area (impedance mismatch) is induced in the longitudinal direction of the experimental specimen by butt welding two steel rods, as described in the previous work. The proposed methodology outlined for a sagged prismatic rod can be adopted for damage detection in a transmission line conductor made of wire rope. The corresponding wave reflections from the damage and boundaries are highlighted. Experiments are conducted on a predominantly single frequency based amplitude modulated narrow-banded, burst wave propagation. The novelty of the work is the experimental demonstration of narrow-banded single frequency wave generation with PZT patches with facility for a variable frequency excitation and controlled by a function generator. This is different from the conventional resonating piezo-crystal at ultrasonic frequency range, where the excitation is strong but the frequency is not variable. Also, the methodology is proposed for bifurcating the initial portion of the nondispersive wave propagation from a mixed-up response. For locating the bifurcation zone for axial-flexural wave interaction, a moving correlation coefficient method is employed. Thus, the use of PZT transducers for online monitoring of damage identification in sagged rod is promising for the future work.
机译:介绍了通过应用波传播力学的锁定棱柱杆中的损伤评估方法,并且实验研究示出了使用铅锆钛酸盐(PZT)压电传感器的损伤检测。通过对接焊接两个钢棒在实验标本的纵向方向上诱导横截面积(阻抗失配)的不连续性,如前一项工作所述。可以采用对由钢丝绳的传输线导体中的损坏检测来采用所提出的柱棱柱杆。突出了来自损坏和边界的相应波反射。实验是在主要基于单频的较频的窄带,突发波传播上进行的。该工作的新颖性是具有PZT贴片的窄带单频波产生的实验演示,具有用于可变频率激励和由函数发生器控制的设施。这与超声波频率范围内的传统谐振压电晶体不同,其中激励强,但频率不是可变的。而且,提出了用于将非运动波传播的初始部分与混合响应分叉的方法。为了定位用于轴向弯曲波相互作用的分叉区域,采用了运动相关系数方法。因此,使用PZT换能器进行在线监测缝隙杆损坏识别的对未来的工作是有希望的。

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