A multifunctional ultra-thin acoustic membrane with self-healing properties for adaptive low-frequency noise control

Author:

Boccaccio Marco,Myronidis Konstantinos,Thielke Michael,Meo Michele,Pinto Fulvio

Abstract

AbstractThis paper proposes a novel multifunctional ultra-thin membrane based on a Polyborosiloxane-based gel with stimuli-responsive sound absorption and sound transmission loss (STL) and characterised by excellent self-healing properties. This adaptive behaviour is the result of a dynamically activated phase transition in the membrane’s polymeric network which is given by the interaction with the travelling sound pressure wave. The presence and the extent of such phase transition in the material was investigated via oscillatory rheological measurements showing the possibility to control the dynamic response by modifying the Boron content within the polymer. Acoustic analyses conducted at different stimuli responses showed high and dynamic absorption (95%) at the absorption coefficient peaks and an adaptive shift to lower frequencies while sound amplitudes were increased. An average STL up to 27 dB in the frequency range between 500 to 1000 Hz was observed and an increased STL above 2 dB was measured as the excitation amplitude was increased. Results demonstrated that the new membrane can be used to develop deep subwavelength absorbers with unique properties (1/54 wavelength in absorption and 1/618 in STL) able to tune their performance in response to an external stimulus while autonomously regaining their properties in case of damage thanks to their self-healing ability.

Publisher

Springer Science and Business Media LLC

Subject

Multidisciplinary

Cited by 6 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. AI-Based Metamaterial Design;ACS Applied Materials & Interfaces;2024-05-29

2. Tunable and broadband low-frequency noise control via multifunctional polyborosiloxane thin membrane gels;Behavior and Mechanics of Multifunctional Materials XVIII;2024-05-09

3. Novel solutions for structural protections: retrofitting impact-vulnerable structures with non-Newtonian polymers;Behavior and Mechanics of Multifunctional Materials XVIII;2024-05-09

4. Fabrication of one-step shape memory gradient sound absorber with wrinkled inner wall and closed-pore structure;European Polymer Journal;2023-09

5. Investigation of a dynamic active/passive noise cancellation of polyborosiloxane thin membrane gel;Active and Passive Smart Structures and Integrated Systems XVII;2023-04-28

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