Defect‐Free Sound Insulator Using Single Metal‐Based Friction Stir Process Array

Author:

Jin Yuqi12ORCID,Yang Teng23,Dahotre Narendra B.23,Neogi Arup1,Wang Tianhao4

Affiliation:

1. Department of Physics University of North Texas Denton TX 76203 USA

2. Center for Agile and Adaptive Additive Manufacturing University of North Texas Denton TX 76207 USA

3. Department of Materials Science and Engineering University of North Texas Denton TX 76207 USA

4. Energy and Environment Directorate Pacific Northwest National Laboratory Richland WA 99352 USA

Abstract

Metals are excellent conductors for phonon transportation such as vibration, sound, and heat. Generally, metal sound insulators require multimaterial structure or defects and unimetal sound insulators are challenging. Therefore, a design of a defect‐free sound insulator made by single alloys with multiple friction stir processes (FSPs) is proposed. Periodic friction stir processing can induce superlattice‐like local mechanical properties’ modifications. By experimental acoustic characterization, it is observed that FSP can introduce clear acoustic–elastic property contrast on an aluminum plate by the presence of stir zone and heat‐affected zones. In numerical simulations, the signature FSP‐induced property profile is periodically and parallelly arranged on a long aluminum plate. The transmission gap frequencies are present on the frequency spectrum with the sound propagation direction perpendicular to the FSP paths. Disorder offsets on FSP periodicity are further introduced. Anderson localization is found on a resonance frequency, which provides −11 dB sound reduction by an exponential decay. Due to the finite design length, the slight disorder can also enhance sound insulation in the periodic transmission gap frequency. With analysis and comparison with different configurations, the best performance in the models can achieve −30 dB sound insulation in the 350 mm‐long aluminum alloy plate with 14 parallel FSPs.

Funder

National Science Foundation

Publisher

Wiley

Subject

Condensed Matter Physics,General Materials Science

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