4.6 Article

Active feedforward control of flexural waves in an Acoustic Black Hole terminated beam

期刊

SMART MATERIALS AND STRUCTURES
卷 30, 期 3, 页码 -

出版社

IOP PUBLISHING LTD
DOI: 10.1088/1361-665X/abd90f

关键词

Acoustic Black Hole; active control; reflection coefficient

资金

  1. EPSRC iCASE studentship [16000058]
  2. Intelligent Structures for Low Noise Environments (ISLNE) EPSRC Prosperity Partnership [EP/S03661X/1]
  3. EPSRC [EP/S03661X/1, 1941775] Funding Source: UKRI

向作者/读者索取更多资源

Acoustic Black Holes (ABHs) are created by introducing a tapering thickness profile into a structure to enhance structural damping and wave absorption. This paper investigates the performance enhancements of replacing passive damping with active vibration control (AVC) in an ABH system. The study demonstrates that the proposed active ABH (AABH) achieves equivalent broadband performance to traditional systems with lower computational requirements and control efforts.
Acoustic Black Holes (ABHs) are structural features that are typically realised by introducing a tapering thickness profile into a structure that results in local regions of wave-speed reduction and a corresponding enhancement in the structural damping. In the ideal theoretical case, where the ABH tapers to zero thickness, the wave-speed reaches zero and the wave entering the ABH can be perfectly absorbed. In practical realisations, however, the thickness of the ABH taper and thus the wave-speed remain finite. In this case, to obtain high levels of structural damping, the ABH is typically combined with a passive damping material, such as a viscoelastic layer. This paper investigates the potential performance enhancements that can be achieved by replacing the complementary passive damping material with an active vibration control (AVC) system in a beam-based ABH, thus creating an active ABH (AABH). The proposed smart structure thus consists of a piezo-electric patch actuator, which is integrated into the ABH taper in place of the passive damping, and a wave-based, feedforward AVC strategy, which aims to minimise the broadband flexural wave reflection coefficient. To evaluate the relative performance of the proposed AABH, an identical AVC strategy is also applied to a beam with a constant thickness termination. It is demonstrated through experimental implementation, that the AABH is able to achieve equivalent broadband performance to the constant thickness beam-based AVC system, but with a lower computational requirement and a lower control effort, thus offering significant practical benefits.

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