TY - JOUR
T1 - Broadband low-frequency sound absorption of multifunctional composite metastructure
AU - Yang, Yilong
AU - Liu, Shanshan
AU - Li, Yan
AU - Gao, Tong
AU - Pan, Yongdong
AU - Li, Yong
AU - Jin, Yabin
N1 - Publisher Copyright:
© Science China Press 2025.
PY - 2025/2
Y1 - 2025/2
N2 - In this study, we fabricated multifunctional metastructures from carbon fiber-reinforced plastic composites using additive manufacturing technology. These metastructures are characterized by their lightweight, load-bearing capacity, and broadband low-frequency sound absorption properties. The metastructure consists of 36 unit cells, and non-local coupling mechanism was considered for designing the sound absorption performance. We developed an acoustic impedance theory tailored for the metastructure, facilitating an analysis of thermal and viscous dissipation mechanisms. It is proven theoretically and experimentally that the proposed composite metastructure can achieve a noise reduction with an average sound absorption coefficient greater than 0.9 across frequencies in the rage of 330–1500 Hz. We also studied the metastructure’s quasi-static and cyclic compression performance, confirming its efficient absorption capabilities after cyclic compression. The proposed design and additive manufacturing method for composite metastructures provides a novel pathway for creating lightweight, multifunctional structures with diverse applications, such as aerospace engineering.
AB - In this study, we fabricated multifunctional metastructures from carbon fiber-reinforced plastic composites using additive manufacturing technology. These metastructures are characterized by their lightweight, load-bearing capacity, and broadband low-frequency sound absorption properties. The metastructure consists of 36 unit cells, and non-local coupling mechanism was considered for designing the sound absorption performance. We developed an acoustic impedance theory tailored for the metastructure, facilitating an analysis of thermal and viscous dissipation mechanisms. It is proven theoretically and experimentally that the proposed composite metastructure can achieve a noise reduction with an average sound absorption coefficient greater than 0.9 across frequencies in the rage of 330–1500 Hz. We also studied the metastructure’s quasi-static and cyclic compression performance, confirming its efficient absorption capabilities after cyclic compression. The proposed design and additive manufacturing method for composite metastructures provides a novel pathway for creating lightweight, multifunctional structures with diverse applications, such as aerospace engineering.
KW - additive manufacturing
KW - broadband sound absorption
KW - composite metastructure
UR - http://www.scopus.com/inward/record.url?scp=85218217561&partnerID=8YFLogxK
U2 - 10.1007/s11431-023-2644-7
DO - 10.1007/s11431-023-2644-7
M3 - 文章
AN - SCOPUS:85218217561
SN - 1674-7321
VL - 68
JO - Science China Technological Sciences
JF - Science China Technological Sciences
IS - 2
M1 - 1220206
ER -