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HIGH SENSITIVITY DAMAGE DETECTION WITH VIBRATION MODE SHAPE TUNING THROUGH THE OPTIMAL DESIGN OF PIEZOELECTRIC ACTUATORS

机译:通过压电执行器的优化设计,通过振动模式形状进行高灵敏度损伤检测

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This paper develops an advanced technique to significantly increase the frequency based damage detection sensitivity on a beam structure through a mode shape tuning process with the optimal design of the piezoelectric actuators. Piezoelectric sensors and actuators are mounted on the surface of the host beams to generate the feedback voltage and the active controlled excitations respectively. The excitations induced by the piezoelectric effect will be utilized to change the curvature distribution of the vibration mode shapes of the host beam structure so as to magnify the natural frequency difference between the intact beam and the damaged one to realize the high sensitivity damage detection. In this paper, theoretical models of the cantilever beams with and without mode shape tuning induced by piezoelectric layers are built first, while the damage is represented by a fixed end crack. Then, through the numerical simulations, the vibration mode shapes and corresponding natural frequencies of the beams can be solved to study the sensitivity improvement by using the proposed technique. In order to improve the detection efficiency, a couple of piezoelectric actuators are installed symmetrically on the upper and lower surface of the host beam, generating shifty bending moments to tune the vibration mode shapes. The actuation voltages applied on the actuators are determined by applying certain gain to the voltage from the piezoelectric sensors. Different gain factors are applied to the mode shape tuning process to reveal their effects on damage detection sensitivity improvement. As a result of the control process with proper gain factor, the curvature is more concentrated at the position close to the crack in the first vibration mode shape of the damaged beam comparing with the one without mode shape tuning. Therefore, the first natural frequency variation induced by the crack effect with mode shape tuning is much more significant than the one without mode shape tuning. In addition, further numerical simulations also indicate that the improvement of the detection sensitivity is closely related to the dimensions of the piezoelectric actuators. To realize better detection results, the optimal design of the size of the piezoelectric actuators is presented. The optimal length of the piezoelectric actuators is found leading to the best performance on damage detection. The theoretical studies and numerical simulations reflect that the proposed technique with mode shape tuning and optimally designed actuators is effective and promising in the field of damage detection. It is noted that the proposed technique can also be applied to improve the sensitivity of frequency based damage detection on other structures, e.g. plates and frames.
机译:本文开发了一种先进的技术,通过采用压电致动器的最佳设计的模式形状调整过程,可以显着提高梁结构上基于频率的损伤检测灵敏度。压电传感器和执行器安装在主梁的表面上,分别产生反馈电压和主动控制的激励。压电效应引起的激发将被用来改变主梁结构的振动模式形状的曲率分布,从而放大完整梁与受损梁之间的固有频率差,从而实现高灵敏度的损伤检测。本文首先建立了带有和不带有由压电层引起的模态调谐的悬臂梁的理论模型,而损伤则以固定的端部裂纹表示。然后,通过数值模拟,可以解决梁的振动模式形状和相应的固有频率,从而利用所提出的技术来研究灵敏度的提高。为了提高检测效率,将一对压电致动器对称地安装在主梁的上,下表面,从而产生移位的弯矩来调整振动模式的形状。通过对压电传感器的电压施加一定的增益,可以确定施加在执行器上的驱动电压。将不同的增益因子应用于模式形状调整过程,以揭示它们对损伤检测灵敏度提高的影响。作为具有适当增益因子的控制过程的结果,与没有模式形状调整的情况相比,在受损梁的第一振动模式形状中,曲率更集中在靠近裂纹的位置。因此,由裂纹效应引起的具有模式形状调整的第一固有频率变化比没有模式形状调整的第一固有频率变化大得多。此外,进一步的数值模拟还表明,检测灵敏度的提高与压电致动器的尺寸密切相关。为了实现更好的检测结果,提出了压电致动器尺寸的优化设计。找到了压电致动器的最佳长度,从而在损坏检测方面获得了最佳性能。理论研究和数值模拟表明,所提出的具有模式形状调整和优化设计的执行器的技术在损伤检测领域是有效且有前途的。注意,所提出的技术还可以应用于提高基于频率的损伤检测在其他结构上的灵敏度,例如,对其他结构。盘子和框架。

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