[1] Chen, Changru; Du, Zhibo; Hu, Gengkai e Yang, Jun. A low-frequency sound absorbing material with subwavelength thickness. Applied Physics Letters, 110(22):221903, 2017. doi: 10.1063/1.4984095.
[2] Chen, Jung-San; Chen, Yu-Bin; Cheng, Yu- Hsiang e Chou, Li-Chih. A sound absorption panel containing coiled helmholtz resonators. Physics Letters A, 384(35):126887, 2020. doi: 10.1016/j.physleta.2020.126887.
[3] Almeida, Gildean do N; Vergara, Erasmo F; Barbosa, Leandro R e Brum, Ricardo. Low-frequency sound absorption of a metamaterial with symmetrical-coiledup spaces. Applied Acoustics, 172:107593, 2021. doi: 10.1016/j.apacoust.2020.107593.
[4] Almeida, Gildean do N; Vergara, Erasmo F; Barbosa, Leandro R; Lenzi, Arcanjo e Birch, Robert S. A low-frequency sound absorber based on micro-slit and coiled cavity. Journal of the Brazilian Society of Mechanical Sciences and Engineering, 43(3):1–9, 2021. doi: 10.1007/s40430-020-02763-y.
[5] Guo, Jingwen; Fang, Yi; Jiang, Ziyan e Zhang, Xin. An investigation on noise attenuation by acoustic liner constructed by helmholtz resonators with extended necks. The Journal of the Acoustical Society of America, 149(1):70–81, 2021. doi: 10.1121/10.0002990.
[6] Duan, Haiqin; Shen, Xinmin; Wang, Enshuai; Yang, Fei; Zhang, Xiaonan e Yin, Qin. Acoustic multi-layer helmholtz resonance metamaterials with multiple adjustable absorption peaks. Applied Physics Letters, 118(24):241904, 2021. doi: 10.1063/5.0054562.
[7] Sousa, Augusto Carvalho; Deckers, Elke; Claeys, Claus e Desmet, Wim. On the assembly of archimedean spiral cavities for sound absorption applications: Design, optimization and experimental validation. Mechanical Systems and Signal Processing, 147: 107102, 2021. doi: 10.1016/j.ymssp.2020.107102.
[8] Almeida, Gildean Nascimento; Vergara, Erasmo Felipe; Barbosa, Leandro Rodrigues e Farias, Linconl Cézar Bastos. Otimização de um metamaterial acústico labiríntico para absorção sonora na faixa de frequências de 100–300 hz. Acústica e Vibrações, 35 (52):7–22, 2020. doi: 10.55753/aev.v35e52.36.
[9] Jiménez, Noé; Groby, Jean-Philippe; Pagneux, Vincent e Romero-García, Vicent. Iridescent perfect absorption in critically-coupled acoustic metamaterials using the transfer matrix method. Applied Sciences, 7 (6):618, 2017. doi: 10.3390/app7060618.
[10] Li, Junfei; Wang, Wenqi; Xie, Yangbo; Popa, Bogdan- Ioan e Cummer, Steven A. A sound absorbing metasurface with coupled resonators. Applied Physics Letters, 109(9):091908, 2016. doi: 10.1063/1.4961671.
[11] Li, Xin; Liu, Bilong e Wu, Qianqian. Enhanced low-frequency sound absorption of a porous layer mosaicked with perforated resonator. Polymers, 14 (2):223, 2022. doi: 10.3390/polym14020223.
[12] Zhao, Honggang; Wang, Yang; Yu, Dianlong; Yang, Haibin; Zhong, Jie; Wu, Fei e Wen, Jihong. A double porosity material for low frequency sound absorption. Composite Structures, 239:111978, 2020. doi: 10.1016/j.compstruct.2020.111978.
[13] Liu, Xuewei; Yu, Chenlei e Xin, Fengxian. Gradually perforated porous materials backed with helmholtz resonant cavity for broadband low-frequency sound absorption. Composite Structures, 263:113647, 2021. doi: 10.1016/j.compstruct.2021.113647.
[14] Li, Xin; Liu, Bilong e Chang, Daoqing. An acoustic impedance structure consisting of perforated panel resonator and porous material for low-to-mid frequency sound absorption. Applied Acoustics, 180:108069, 2021. doi: 10.1016/j.apacoust.2021.108069.
[15] Zhao, Honggang; Wang, Yang; Wen, Jihong; Lam, Yiu Wai e Umnova, Olga. A slim subwavelength absorber based on coupled microslits. Applied Acoustics, 142:11–17, 2018. doi: 10.1016/j.apacoust.2018.08.004.
[16] Huang, Sibo; Fang, Xinsheng; Wang, Xu; Assouar, Badreddine; Cheng, Qian e Li, Yong. Acoustic perfect absorbers via helmholtz resonators with embedded apertures. The Journal of the Acoustical Society of America, 145(1):254–262, 2019. doi: 10.1121/1.5087128.
[17] Duan, Mingyu; Yu, Chenlei; Xu, Zhimin; Xin, Fengxian e Lu, Tian Jian. Acoustic impedance regulation of helmholtz resonators for perfect sound absorption via roughened embedded necks. Applied Physics Letters, 117(15):151904, 2020. doi: 10.1063/5.0024804.
[18] Mahesh, K; Kumar Ranjith, S e Mini, RS. Inverse design of a helmholtz resonator based low-frequency acoustic absorber using deep neural network. Journal of Applied Physics, 129(17):174901, 2021. doi: 10.1063/5.0046582.
[19] Guo, Ying; Allam, Sabry e Åbom, Mats. Microperforated plates for vehicle applications. Em 37th International Congress and Exhibition on Noise Control Engineering, Shanghai, China October, 2008, 2008.
[20] Allard, J-F e Daigle, Gilles. Propagation of sound in porous media: Modeling sound absorbing materials, 1994.
[21] Allard, Jean e Atalla, Noureddine. Propagation of sound in porous media: modelling sound absorbing materials 2e. John Wiley & Sons, 2009.
[22] Organisation, International Standard. Acoustics — determination of sound absorption coefficient and impedance in impedance tubes — part 2: Transferfunction method, 1998.
[23] Kandlikar, Satish G; Schmitt, Derek; Carrano, Andres L e Taylor, James B. Characterization of surface roughness effects on pressure drop in single-phase flow in minichannels. Physics of Fluids, 17(10): 100606, 2005. doi: 10.1063/1.1896985.
[24] Zieli´nski, Tomasz G; Opiela, Kamil C; Pawłowski, Piotr; Dauchez, Nicolas; Boutin, Thomas; Kennedy, John; Trimble, Daniel; Rice, Henry; Van Damme, Bart; Hannema, Gwenael et al. Reproducibility of sound-absorbing periodic porous materials using additive manufacturing technologies: Round robin study. Additive Manufacturing, 36:101564, 2020. doi: 10.1016/j.addma.2020.101564.
[25] Almeida, Gildean do N; Vergara, Erasmo F; Barbosa, Leandro R; Lenzi, Arcanjo e Birch, Robert S. Sound absorption metasurface with symmetrical coiled spaces and micro slit of variable depth. Applied Acoustics, 183:108312, 2021. doi: 10.1016/j.apacoust.2021.108312.