Please use this identifier to cite or link to this item: https://doi.org/10.1016/j.matdes.2017.10.016
Title: Microstructure-based experimental and numerical investigations on the sound absorption property of open-cell metallic foams manufactured by a template replication technique
Authors: Zhai, Wei 
Yu, Xiang
Song, Xu
Ang, Linus Yinn Leng
Cui, Fangsen
Lee, Heow Pueh
Li, Tao
Keywords: Science & Technology
Technology
Materials Science, Multidisciplinary
Materials Science
Template replication method
Metallic foam
Sound absorption
Microstructure
Airflow resistivity
MECHANICAL-PROPERTIES
POROUS-MEDIA
PERMEABILITY
TORTUOSITY
ALUMINUM
SOLIDS
MODEL
Issue Date: 5-Jan-2018
Publisher: ELSEVIER SCI LTD
Citation: Zhai, Wei, Yu, Xiang, Song, Xu, Ang, Linus Yinn Leng, Cui, Fangsen, Lee, Heow Pueh, Li, Tao (2018-01-05). Microstructure-based experimental and numerical investigations on the sound absorption property of open-cell metallic foams manufactured by a template replication technique. MATERIALS & DESIGN 137 : 108-116. ScholarBank@NUS Repository. https://doi.org/10.1016/j.matdes.2017.10.016
Abstract: The current study investigates the acoustic absorption property of nickel-based superalloy open-cell foams manufactured by a newly developed template replication process. Inconel 625 open cell foams with controllable porosities (92%–98%) and cell sizes (300 μm–900 μm) have been successfully produced and tested for their sound absorption performance. It is evident that foam samples with the smallest cell size among them exhibit the best acoustic absorption performance, with sound absorption coefficient > 0.9 at frequencies > 1500 Hz for 50 mm thick sample. In the numerical simulation, the classical Delany­Bazley model is employed to predict the acoustic absorption property across a broad frequency range, and it requires knowledge of foam's static air flow resistivity, which, as proposed in this work, can be analytically expressed as a function of foam's microstructure parameters. A good agreement between such microstructure-based numerical model and experimental results was obtained. The proposed model can be utilized as a material design tool to guide the production of foam with optimal microstructure for sound absorption through the controllable template replication process.
Source Title: MATERIALS & DESIGN
URI: https://scholarbank.nus.edu.sg/handle/10635/243325
ISSN: 0264-1275
1873-4197
DOI: 10.1016/j.matdes.2017.10.016
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