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首页> 外文期刊>Journal of Vibration and Acoustics >3-D Elasticity-Based Modeling of Anisotropic Piezocomposite Transducers for Guided Wave Structural Health Monitoring
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3-D Elasticity-Based Modeling of Anisotropic Piezocomposite Transducers for Guided Wave Structural Health Monitoring

机译:基于3D弹性的各向异性压电复合材料换能器的导波结构健康监测建模

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摘要

Anisotropic piezocomposite transducers (APTs), such as macro fiber composites and active fiber composites, have great potential to be used as structurally integrated transducers for guided-wave (GW) structural health monitoring. Their main advantages over conventional monolithic piezoceramic wafer transducers are mechanical flexibility, curved surface conformability, power efficiency, their ability to excite focused GW fields, and their unidirectional sensing capability as a GW sensor. In this paper, models are developed to describe excitation of GW fields by APTs in isotropic structures. The configurations explored are plane Lamb-wave fields in beams with rectangular cross-section, axisymmetric GW fields in cylinders, and 3-D GW fields in plates. The dynamics of the substrate and transducer are assumed uncoupled. The actuator is modeled as causing shear traction at the edges of the actuator's active area along the fiber direction. The sensor is modeled as sensing the average extensional strain over the active area along the fiber direction. The work is unique in that the formulation is based on 3-D elasticity, and no reduced-order structural assumptions are used. This is crucial to model multimo-dal GW propagation, especially at high frequencies. A formulation is also proposed to model the behavior of APTs as GW sensors. Finally, results from experimental tests to examine the validity of the models are discussed and the possible sources of error are examined in detail.
机译:各向异性压电复合换能器(APT),例如大纤维复合材料和活性纤维复合材料,具有很大的潜力,可以用作结构集成的换能器,用于导波(GW)结构健康监测。与常规的单片压电陶瓷晶片换能器相比,它们的主要优点是机械柔韧性,曲面顺应性,功率效率,激发聚焦GW场的能力以及作为GW传感器的单向感应能力。在本文中,建立了模型来描述各向同性结构中APT对GW场的激发。探索的配置是具有矩形横截面的梁中的平面兰姆波场,圆柱体中的轴对称GW场以及板中的3-D GW场。假定衬底和换能器的动力学是不耦合的。将执行器建模为在执行器有效区域的边缘沿光纤方向引起剪切牵引。传感器被建模为沿纤维方向感应有效区域上的平均拉伸应变。这项工作的独特之处在于其配方基于3-D弹性,并且不使用降阶结构假设。这对于建模多节点GW传播(尤其是在高频下)至关重要。还提出了一种公式来模拟APT作为GW传感器的行为。最后,讨论了检验模型有效性的实验测试结果,并详细研究了可能的误差来源。

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