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Numerical and experimental investigation of the acoustic black hole effect for vibration damping in beams and elliptical plates

机译:梁和椭圆板振动阻尼声学黑洞效应的数值和实验研究

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Flexural waves in beams and plates slow down if their thickness decreases. Such property was successfully used for establishing the theory of acoustic black holes (ABH). In fact, in the case of a sharpened edge having a power-law profile, it can be shown that the refection coefficient of a wave propagating towards the sharpened edge can be equal to zero. However, manufacturing such profiles is always related to truncations and imperfections that undermine ABH. It is known though that the use of a thin absorbing film drastically improves the damping effect of ABH. The aim of the current paper is to show numerically and experimentally the capability of ABH to provide structural damping without introducing additional mass. The dynamic behaviour of a non uniform Euler-Bernoulli beam is described using a Riccati equation for the beam impedance, which leads to the reflection matrix of the sharpened edge of the beam. The influence of length of the profile, thickness and length of the absorbing film are evaluated as realistically as possible and optimised numerically in order to reduce wave reflection from the edge. Keeping in mind the numerical results, an elliptic plate with a pit of power law profile placed at one of its focuses has been designed and tested. As a result, both numerical simulations and experimental measurements show significant reduction of vibration levels.
机译:横梁中的弯曲波,如果它们的厚度降低,则板块慢下降。这些性质成功地用于建立声学黑洞(ABH)的理论。实际上,在具有动力法轮廓的尖锐边缘的情况下,可以示出朝向尖锐边缘传播的波的反射系数可以等于零。然而,制造这种型材总是与破坏ABH的截断和缺陷相关。虽然使用薄吸收膜的使用大幅提高了ABH的阻尼效果。目前纸张的目的是在数值和实验上显示ABH提供结构阻尼的能力,而不会引入额外的质量。使用用于光束阻抗的Riccati方程描述了非均匀Euler-Bernoulli光束的动态行为,这导致光束的尖锐边缘的反射矩阵。尽可能地评估吸收膜的型材,厚度和长度的长度,厚度和长度的影响,以便在数值上进行优化,以减少来自边缘的波反射。请记住数值结果,设计并测试了一个椭圆板,其具有电力法剖面的坑,已经设计并进行了测试。结果,数值模拟和实验测量均显示出振动水平的显着降低。

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