AccScience Publishing / MSAM / Volume 4 / Issue 1 / DOI: 10.36922/msam.5737
ORIGINAL RESEARCH ARTICLE

Multicavity structures with triply periodic minimal surface for broadband and perfect sound absorption manufactured by laser powder bed fusion

Mingkang Zhang1 Mingjian Deng1 Guanhao Wang1 Sihua Yin1 Wenbin Liu1 Chang Liu1 Jie Chen2*
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1 Additive Manufacturing Laboratory, School of Mechanical and Energy Engineering, Guangdong Ocean University, Yangjiang, Guangdong, China
2 Guangdong Key Laboratory of Modern Control Technology, Institute of Intelligent Manufacturing, Guangdong Academy of Sciences, Guangzhou, Guangdong, China
Submitted: 31 October 2024 | Accepted: 13 December 2024 | Published: 10 January 2025
© 2025 by the Author(s). This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution 4.0 International License ( https://creativecommons.org/licenses/by/4.0/ )
Abstract

This research proposes a multicavity and a graded structure design method for triply periodic minimal surface (TPMS) structures with broadband and perfect sound absorption. TPMS structures were manufactured by laser powder bed fusion. The sound absorption coefficient curves and acoustic band structure of TPMS are analyzed using a two-microphone impedance tube. As the thickness of TPMS structures increases, the noise reduction coefficient of TPMS structures increases linearly, and the first resonance frequency shifts to the lower frequency. The acoustic band structures indicate that the acoustic bandgap of TPMS structures shifts to a lower frequency with increasing thickness. Diamond has the highest noise reduction coefficient among these four types of TPMS. The TPMS with a multicavity design has multiple resonance peaks. Notably, the five resonance peaks of the multicavity-I-Wrapped Package (IWP) are all above 0.94, achieving near-perfect sound absorption over a wide frequency range. The semi-absorption bandwidth of the multicavity-TPMS structure has been widened, except for multicavity-diamond structures. Both uniform and multicavity TPMS present a subwavelength absorption peak. The graded design method can broaden the semi-absorption bandwidth of TPMS, and the combination of graded and multicavity designs can further enhance broadband and achieve perfect sound absorption.

Keywords
Triply periodic minimal surface
Laser powder bed fusion
Acoustic metamaterials
Sound absorption
Broadband
Funding
This research was funded by the Guangdong Basic and Applied Basic Research Foundation (No. 2023A1515012704), GDA’s Project of Science and Technology Development (No. 2022GDASZH-2022010107), Yangjiang City Key Industry Talent Revitalization Plan Project for Alloy Materials and Hardware Scissors (Grant No. RCZX2023002), Undergraduate Innovation Team Project of Guangdong Ocean University (No. CXTD2023021), and National College Students’ Innovation and Entrepreneurship Training Program Project of Guangdong Ocean University (No. 202310566036).
Conflict of interest
The authors declare that they have no known competing financial interests or personal relationships that could have appeared to influence the work reported in this paper.
References
  1. Liu Z, Zhang X, Mao Y, et al. Locally resonant sonic materials. Science. 2000;289(5485):1734-1736. doi: 10.1126/science.289.5485.1734
  2. Zhang S, Xia C, Fang N. Broadband acoustic cloak for ultrasound waves. Phys Rev Lett. 2011;106(2):024301. doi: 10.1103/PhysRevLett.106.024301
  3. Yang M, Sheng P. Sound absorption structures: From porous media to acoustic metamaterials. Annu Rev Mater Res. 2017;47:83-114. doi: 10.1146/annurev-matsci-070616-124032
  4. Liu CR, Wu JH, Lu K, Zhao ZT, Huang Z. Acoustical siphon effect for reducing the thickness in membrane-type metamaterials with low-frequency broadband absorption. Appl Acoust. 2019;148:1-8. doi: 10.1016/j.apacoust.2018.12.008
  5. Zhao H, Wen J, Yang H, Lv L, Wen X. Backing effects on the underwater acoustic absorption of a viscoelastic slab with locally resonant scatterers. Appl Acoust. 2014;76:48-51. doi: 10.1016/j.apacoust.2013.07.022
  6. Guo J, Fang Y, Jiang Z, Zhang X. An investigation on noise attenuation by acoustic liner constructed by Helmholtz resonators with extended necks. J Acoust Soc Am. 2021;149(1):70-81. doi: 10.1121/10.0002990
  7. Zhang X, Wu J, Mao Q, Zhou W, Xiong Y. Design of a honeycomb-microperforated panel with an adjustable sound absorption frequency. Appl Acoust. 2020;164:107246. doi: 10.1016/j.apacoust.2020.107246
  8. Leclaire P, Umnova O, Dupont T, Panneton R. Acoustical properties of air-saturated porous material with periodically distributed dead-end pores. J Acoust Soc Am. 2015;137(4):1772-1782. doi: 10.1121/1.4916712
  9. Costa-Baptista J, Fotsing ER, Mardjono J, Therriault D, Ross A. Design and fused filament fabrication of multilayered microchannels for subwavelength and broadband sound absorption. Addit Manuf. 2022;55:102777. doi: 10.1016/j.addma.2022.102777
  10. Pierre J, Iervolino F, Farahani RD, Piccirelli N, Lévesque M, Therriault D. Material extrusion additive manufacturing of multifunctional sandwich panels with load-bearing and acoustic capabilities for aerospace applications. Addit Manuf. 2023;61:103344. doi: 10.1016/j.addma.2022.103344
  11. Wang C, Huang L. On the acoustic properties of parallel arrangement of multiple micro-perforated panel absorbers with different cavity depths. J Acoust Soc Am. 2011;130(1):208-218. doi: 10.1121/1.3596459
  12. Qian YJ, Zhang J, Sun N, Kong DY, Zhang XX. Pilot study on wideband sound absorber obtained by adopting a serial-parallel coupling manner. Appl Acoust. 2017;124:48-51. doi: 10.1016/j.apacoust.2017.03.021
  13. Yan S, Wu J, Chen J, Xiong Y, Mao Q, Zhang X. Optimization design and analysis of honeycomb micro-perforated plate broadband sound absorber. Appl Acoust. 2022;186:108487. doi: 10.1016/j.apacoust.2021.108487
  14. Shen C, Cummer SA. Harnessing multiple internal reflections to design highly absorptive acoustic metasurfaces. Phys Rev Appl. 2018;9(5):054009. doi: 10.1103/PhysRevApplied.9.054009
  15. Elayouch A, Addouche M, Khelif A. Extensive tailorability of sound absorption using acoustic metamaterials. J Appl Phys. 2018;124(15):155103. doi: 10.1063/1.5035129
  16. Yang W, An J, Chua CK, Zhou K. Acoustic absorptions of multifunctional polymeric cellular structures based on triply periodic minimal surfaces fabricated by stereolithography. Virtual Phys Prototyp. 2020;15(2):242-249. doi: 10.1080/17452759.2020.1740747
  17. Lin C, Wen G, Yin H, Wang ZP, Liu J, Xie YM. Revealing the sound insulation capacities of TPMS sandwich panels. J Sound Vib. 2022;540:117303. doi: 10.1016/j.jsv.2022.117303
  18. Zhang M, Liu C, Deng M, Li Y, Li J, Wang D. Graded minimal surface structures with high specific strength for broadband sound absorption produced by laser powder bed fusion. Coatings. 2023;13(11):1950. doi: 10.3390/coatings13111950
  19. Li Z, Zhou Y, Kong X, et al. Sound absorption performance of a micro-perforated plate sandwich structure based on selective laser melting. Virtual Phys Prototyp. 2024;19(1):e2321607. doi: 10.1080/17452759.2024.2321607
  20. Xue Y, Paige Nobles L, Sharma B, Stuart Bolton J. Designing hybrid aerogel-3D printed absorbers for simultaneous low frequency and broadband noise control. Mater Des. 2024;242:113026. doi: 10.1016/j.matdes.2024.113026
  21. Wang Z, Guo Z, Li Z, Zeng K. Design, manufacture, and characterisation of hierarchical metamaterials for simultaneous ultra-broadband sound-absorbing and superior mechanical performance. Virtual Phys Prototyp. 2022;18(1):e2111585. doi: 10.1080/17452759.2022.2111585
  22. Yang X, Shen X, Bai P, et al. Preparation and characterization of gradient compressed porous metal for high-efficiency and thin-thickness acoustic absorber. Materials (Basel). 2019;12(9):1413. doi: 10.3390/ma12091413
  23. Meng H, Ren S, Xin F, Lu T. Sound absorption coefficient optimization of gradient sintered metal fiber felts. Sci China Technol Sci. 2016;59(5):699-708. doi: 10.1007/s11431-016-6042-1
  24. Zhang X, Qu Z, Xu Y. Enhanced sound absorption in two-dimensional continuously graded phononic crystals. Jpn J Appl Phys. 2019;58(9):090904. doi: 10.7567/1347-4065/ab3686
  25. Zhang XH, Qu ZG, Tian D, Fang Y. Acoustic characteristics of continuously graded phononic crystals. Appl Acoust. 2019;151:22-29. doi: 10.1016/j.apacoust.2019.03.002
  26. Boulvert J, Cavalieri T, Costa-Baptista J, et al. Optimally graded porous material for broadband perfect absorption of sound. J Appl Phys. 2019;126(17):175101. doi: 10.1063/1.5119715
  27. Guan X, Yang J, Deckers E, Hornikx M. Computational Characterization of Functionally Graded Porous Ansorbers Based On Triply Periodic Minimal Surfaces (TPMS). In: Proceedings of the 10th Convention of the European Acoustics Association Forum Acusticum; 2023
  28. Zhang XH, Qu ZG, He XC, Lu DL. Experimental study on the sound absorption characteristics of continuously graded phononic crystals. AIP Adv. 2016;6(10):105205. doi: 10.1063/1.4965923
  29. Xiang-Nan K, Bin L, Zhong-Hua L, Peng-Fei Z, Chao S. Research on sound absorption properties of tri-periodic minimal surface sandwich structure of selective laser melting titanium alloy. Mater Trans. 2023;64(4):861-868. doi: 10.2320/matertrans.MT-M2022164

 

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Materials Science in Additive Manufacturing, Electronic ISSN: 2810-9635 Published by AccScience Publishing