open access publication

Article, 2024

Metasurfaces for sound absorption over a broad range of wave incidence angles

Applied Acoustics, ISSN 0003-682X, 1872-910X, Volume 220, Page 109965, 10.1016/j.apacoust.2024.109965

Contributors

Garza-Agudelo, Diana Maria 0000-0002-5144-8062 (Corresponding author) [1] [2] Henríquez, Vicente Cutanda 0000-0002-5136-5398 [2] Jeong, Cheol-Ho 0000-0002-9864-7317 [2] Andersen, Peter Risby 0000-0002-3826-869X [3] Ibarias, Martin [4] Sánchez-Dehesa, José 0000-0003-0742-4407 [4] Lucklum, Frieder 0000-0002-6500-3531 [2]

Affiliations

  1. [1] Oticon (Denmark)
  2. [NORA names: Oticon; Private Research; Denmark; Europe, EU; Nordic; OECD];
  3. [2] Technical University of Denmark
  4. [NORA names: DTU Technical University of Denmark; University; Denmark; Europe, EU; Nordic; OECD];
  5. [3] GN Store Nord (Denmark)
  6. [NORA names: GN Store Nord; Private Research; Denmark; Europe, EU; Nordic; OECD];
  7. [4] Universitat Politècnica de València
  8. [NORA names: Spain; Europe, EU; OECD]

Abstract

Control of reflected waves that meet surfaces from oblique directions is crucial, for instance, in closed spaces. Metasurfaces composed of Helmholtz resonators can be efficient and compact absorbers but have limited ability to achieve high absorption over a wide incidence angle range, especially when designed for high performance in the region approaching grazing incidence. In turn, sonic crystals can be used to manipulate wave propagation direction at low frequencies. We propose a type of absorber that combines a surface of 2D Helmholtz resonators and a 2D sonic crystal with cylindrical scatterers arranged in a hexagonal lattice. The combined effect of both structures yields a metasurface that can achieve high absorption over a broad range of incidence angles. Here, an analytic model to estimate the behavior of the absorbers for wavelengths that are much longer than the unit cell dimensions is presented. The model is used in combination with an optimization strategy to realize designs for single frequency and octave-band performance. The test cases show that surfaces with absorption coefficient values above 0.9 for the range of incidence angle extending from 0 ∘ until 83 ∘ can be realized. The performance of the absorbers is verified with a finite element model and experimentally.

Keywords

Helmholtz, Helmholtz resonator, absorber, absorption, absorption coefficient values, analytical model, angle, angle range, behavior, cases, cell dimensions, closed space, coefficient values, combination, compact absorbers, control, crystal, cylindrical scatterers, dimensions, direction, effect, element model, finite element model, frequency, grazing, grazing incidence, hexagonal lattice, high performance, incidence, incident angle, incident angle range, lattice, low frequency, metasurface, model, oblique direction, optimal strategy, optimization, performance, propagation direction, range, range of incidence angles, region, resonance, scattering, sonic crystals, sound absorption, space, strategies, structure, surface, test, test cases, unit cell dimensions, units, values, wave, wave incidence angle, wave propagation direction, wavelength

Funders

  • Ministry of Economy, Industry and Competitiveness
  • Korea Advanced Institute of Science and Technology

Data Provider: Digital Science