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Configuration study of an acoustic wave sensor on a continuous elastic support

机译:连续弹性支撑上声波传感器的结构研究

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This paper has exploited a new acoustic sensor method for determining moving acoustic wave loads from the structural responses through an inverse process. This new method is completely different from the principle of conventional acoustic wave sensors which use certain piezoelectric materials to generate the acoustic wave. Specifically, a beam structure with elastic foundation supports acting as a sensor configuration is studied. The time-domain response of an EulerBernoulli beam supported by an elastic foundation and excited by a traveling sinusoidal excitation is obtained based on an assumed basis function approach and by the finite element method. Moving wave loads are well identified in the time domain through an inverse process with the help of the Tikhonov regularization technique to solve ill-conditioned problems. To evaluate the method and examine various configurations, various levels of random noise are added to the simulated displacements and velocities to study the effect of noise in moving wave load identification. In addition, some of the configuration parameters of interest include the beam material, geometry, and thickness, and the elastic foundation properties. Results obtained from the simulations show that this sensor configuration can be effective in identifying moving wave loads.
机译:本文开发了一种新的声学传感器方法,该方法可通过逆过程从结构响应确定运动声波载荷。这种新方法与使用某些压电材料产生声波的常规声波传感器的原理完全不同。具体地,研究了具有弹性基础支撑件作为传感器构造的梁结构。基于假定的基函数方法和有限元方法,获得了由弹性地基支撑并由正弦行进激励激励的EulerBernoulli梁的时域响应。在Tikhonov正则化技术的帮助下,通过逆过程可以很好地识别时域中的移动波载荷,从而解决病态问题。为了评估该方法并检查各种配置,在模拟的位移和速度中添加了各种级别的随机噪声,以研究噪声对移动波载荷识别的影响。另外,一些感兴趣的配置参数包括梁的材料,几何形状和厚度以及弹性基础属性。从仿真获得的结果表明,这种传感器配置可以有效地识别移动波负载。

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