Vibroacoustic topology optimization for sound transmission minimization through sandwich structures

Vanessa Cool*, Ole Sigmund, Niels Aage, Frank Naets, Elke Deckers

*Corresponding author for this work

Research output: Contribution to journalJournal articleResearchpeer-review

Abstract

Recently, metamaterials, sandwich panels, and a combination of both have shown potential for creating lightweight, load-bearing structures with good noise and vibration suppression properties. However, designing these structures is difficult due to the complex vibroacoustic innate physics and the need to balance conflicting requirements. Structural optimization methods can help address this multi-functional, multi-physical design challenge. While much research has been conducted on optimizing the materials and sizes of plates and sandwich cores, the systematic topological design of fully coupled vibroacoustic cores has not yet been explored. To address this gap, this work presents a topology optimization framework for the vibroacoustic design of sandwich structure cores, with the goal of minimizing sound transmission while constraining volume and structural stiffness. The framework is used to conduct a systematic design analysis, focusing on the dynamic behavior of the optimized structures. The versatility of the methodology is demonstrated by analyzing different targeted frequency ranges, different angles of incidence and the trade-off between the acoustic and structural performance. The resulting designs are lightweight, load-bearing, and achieve high sound transmission loss performance, exceeding the mass law by 15–40 dB in targeted frequency ranges of 500Hz in the interval between 1000Hz and 3000Hz.

Original languageEnglish
Article number117959
JournalJournal of Sound and Vibration
Volume568
Number of pages19
ISSN0022-460X
DOIs
Publication statusPublished - 2024

Keywords

  • Metamaterials
  • Sandwich panels
  • Sound transmission loss
  • Topology optimization
  • Vibroacoustics

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