首页> 外文会议>ASME conference on smart materials, adaptive structures and intelligent systems;SMASIS2011 >DAMAGE DETECTION IN FLEXIBLE PROPELLER BEAM STRUCTURES BY EXPLOITING IMPACT-INDUCED COUPLED ACCELERATION SIGNALS
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DAMAGE DETECTION IN FLEXIBLE PROPELLER BEAM STRUCTURES BY EXPLOITING IMPACT-INDUCED COUPLED ACCELERATION SIGNALS

机译:通过探究冲击感应耦合加速度信号检测柔性螺旋桨梁结构的损伤

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A local damage at the tip of a composite propeller is diagnosed by properly comparing its impact-induced free coupled dynamics to that of a pristine wooden propeller of the same size and shape. This is accomplished by creating indirectly via collocated measurements distributed information for the coupled acceleration field of the propellers. The powerful data-driven modal expansion analysis delivered by the Proper Orthogonal Decomposition (POD) Transform reveals that ensembles of impact-induced collocated coupled experimental acceleration signals are underlined by a high level of spatio-temporal coherence. Thus they furnish a valuable spatio-temporal sample of coupled response induced by a point impulse. In view of this fact, a tri-axial sensor was placed on the propeller hub to collect collocated coupled acceleration signals induced via modal hammer nondestructive impacts and thus obtained a reduced order characterization of the coupled free dynamics. This experimental data-driven analysis reveals that the in-plane unit components of the POD modes for both propellers have similar shapes-nearly identical. For the damaged propeller this POD shape-difference is quite pronounced. The shapes of the POD modes are used to compute indices of difference reflecting directly damage. At the first POD energy level, the shape-difference indices of the damaged composite propeller are quite larger than those of the pristine wooden propeller.
机译:通过适当地比较其撞击引起的自由耦合动力学与相同尺寸和形状的原始木质螺旋桨的自由耦合动力学,可以诊断出复合螺旋桨尖端的局部损坏。这是通过并置的测量值间接创建螺旋桨耦合加速度场的分布信息来实现的。正确的正交分解(POD)变换提供的强大的数据驱动模态扩展分析表明,高水平的时空相干性突显了碰撞诱发的并置耦合实验加速度信号的集合。因此,它们提供了由点冲动引起的耦合响应的宝贵时空样本。鉴于此事实,将三轴传感器放置在螺旋桨毂上,以收集通过模态锤无损撞击而产生的并置的耦合加速度信号,从而获得耦合自由动力学的降阶特征。该实验数据驱动的分析表明,两个螺旋桨的POD模式的面内单元组件都具有相似的形状-几乎相同。对于损坏的螺旋桨,这种POD形状差异非常明显。 POD模式的形状用于计算直接反映损伤的差异指标。在第一个POD能量水平,损坏的复合材料螺旋桨的形状差异指数要比原始木质螺旋桨的形状差异指数大得多。

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