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Dynamic and Static Properties of Double-Layered Compound Acoustic Black Hole Structures

机译:双层复合声学黑洞结构的动态和静态特性

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摘要

The "acoustic black hole" (ABH) phenomenon can be exploited for flexural vibration suppressions in beam and plate structures. Conventional ABH structures, however, are tied with the inherent structural weakness due to the low local stiffness required and possibly high stress concentration caused by the small residual cross-section thickness of the ABH taper, thus hampering their practical applications. In this study, the dynamic and static properties of a compound ABH beam are investigated through numerical simulations. It is shown that, whilst ensuring an effective ABH effect, the compound ABH structure allows a significant improvement in the static properties of the structure. For the former, the compound design is shown to outperform its counterpart in the conventional ABH configuration in terms of the damping enhancement and the vibration suppression. For the latter, the compound ABH structure is also shown to provide much better static properties in terms of structural stiffness and strength. Meanwhile, the structural damping can be further improved by using an extended platform at the tip of tailored profile, which improves the structural strength but reduces the structural stiffness at the same time. Therefore, when choosing the platform length, a balance needs to be struck among the desired ABH effect and the mechanical properties of the structure.
机译:“声学黑洞”(ABH)现象可以用于光束和板结构中的弯曲振动抑制。然而,传统的ABH结构与由于ABH锥度的小的残余横截面厚度引起的局部刚度和可能的高应力浓度,因此涉及固有的结构弱度,从而阻碍了它们的实际应用。在该研究中,通过数值模拟研究了复合ABH光束的动态和静态性质。结果表明,在确保有效的ABH效应的情况下,化合物ABH结构允许在结构的静态性质中显着改善。对于前者,在阻尼增强和振动抑制方面,该化合物设计在传统的ABH配置中占据了其对应物。对于后者,还显示化合物ABH结构以在结构刚度和强度方面提供更好的静态性能。同时,通过在定制轮廓尖端的延伸平台上使用延伸平台可以进一步改善结构阻尼,这提高了结构强度,但同时降低了结构刚度。因此,在选择平台长度时,需要在所需的ABH效应和结构的机械性能之间击中平衡。

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