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Lamb Wave Excitation and Detection with Smart Fasteners for Structural Health Monitoring

机译:兰姆波激励和智能紧固件检测,用于结构健康监测

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摘要

Recently, a new design concept for multifunctional fasteners using smart materials was proposed by the authors. These piezoelectric devices, named 'smart fasteners,' can be fabricated by modifying the design of ordinary fasteners such that they have a piezoelectric transducer and a control unit embedded in their body. These smart fasteners can not only clamp structural members like ordinary fasteners but also induce or detect structural responses. In this paper, the capability of the smart fasteners to excite and detect Lamb waves in the clamped structure for structural health monitoring is presented. For this purpose, a mathematical model for the Lamb wave excitation with the smart fasteners is derived first using the potential function method. By applying the space domain Fourier transform, the model is transformed into the wave number domain where the boundary conditions are applied to get the solution. The obtained solution is then converted back into the physical space using the inverse Fourier transform. Finally, closed-form solutions for the surface displacements are obtained using the residue theorem in the complex plane. With the analytic solutions, mode tuning capabilities of the smart fasteners are analyzed and then experimentally verified.
机译:最近,作者提出了一种使用智能材料的多功能紧固件的新设计概念。这些压电设备被称为“智能紧固件”,可以通过修改普通紧固件的设计来制造,以使它们在体内嵌入压电换能器和控制单元。这些智能紧固件不仅可以像普通紧固件一样夹紧结构构件,而且可以诱导或检测结构响应。在本文中,介绍了智能紧固件在夹紧的结构中激发和检测兰姆波以进行结构健康监测的能力。为此,首先使用势函数方法导出使用智能紧固件进行兰姆波激发的数学模型。通过应用空间域傅里叶变换,将模型转换为波数域,并在其中应用边界条件以获得解。然后,使用逆傅立叶变换将获得的解转换回物理空间。最后,使用复平面中的残差定理获得表面位移的封闭形式解。通过分析解决方案,可以分析智能紧固件的模式调节功能,然后进行实验验证。

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