1,161
Views
4
CrossRef citations to date
0
Altmetric
Research Article

Enhancement of sound absorption of coir fiber using thin layer of kapok fibers

ORCID Icon, ORCID Icon &

References

  • Abdullah, Y., A. Putra, H. Efendy, W. M. Farid, and M. R. Ayob. 2013. Investigation on sound absorption coefficient of natural paddy fibers. International Journal of Renewable Energy Resources 3 (1):8–10.
  • Abdullah, S. A. S., N. Z. M. Zuhudi, N. I. S. Anuar, and M. D. Isa. 2018. Mechanical and thermal characterization of alkali treated kenaf fibers. IOP Conference Series: Materials Science and Engineering370: 012048. IOP Publishing. doi: 10.1088/1757-899X/370/1/012048.
  • Allard, J., and N. Atalla. 2009. Propagation of sound in porous media : Modelling sound absorbing materials. 2nd ed. John Wiley & Sons. doi:10.1002/9780470747339.
  • Arenas, J. P., and F. Asdrubali. 2019. Eco-materials with noise reduction properties. In Handbook of ecomaterials, ed. L. M. T. Martinez, O. V. Kharissova, and B. I. Kharisov, 3031–56. Springer. doi: 10.1007/978-3-319-48281-1_137-1.
  • Arenas, J. P., R. Del Rey, J. Alba, and R. Oltra. 2020. Sound-absorption properties of materials made of esparto grass fibers. Sustainability 12 (14):5533. doi:10.3390/su12145533.
  • Chen, C., Y. Zhang, G. Sun, J. Wang, and G. Wang. 2016. Windmill palm fiber/polyvinyl alcohol coated nonwoven mats with sound absorption characteristics. BioResources 11 (2):4212–25. doi:10.15376/biores.11.2.4212-4225.
  • Dilfi, K. A., A. Balan, H. Bin, G. Xian, and S. Thomas. 2018. Effect of surface modification of jute fiber on the mechanical properties and durability of jute fiber‐reinforced epoxy composites. Polymer Composites 39 (S4):E2519–28. doi:10.1002/pc.24817.
  • Glé, P., E. Gourdon, L. Arnaud, K. Horoshenkov, and A. Khan. 2013. The effect of particle shape and size distribution on the acoustical properties of mixtures of hemp particles. The Journal of the Acoustical Society of America 134 (6):4698–709. doi:10.1121/1.4824931.
  • Iannace, G., G. Ciaburro, and A. Trematerra. 2020. Modelling sound absorption properties of broom fibers using artificial neural networks. Applied Acoustics 163:107239. doi:10.1016/j.apacoust.2020.107239.
  • Lim, Z. Y., A. Putra, M. J. M. Nor, and M. Y. Yaakob. 2018. Sound absorption performance of natural kenaf fibers. Applied Acoustics 130:107–14. doi:10.1016/j.apacoust.2017.09.012.
  • Liu, X., X. Yan, and H. Zhang. 2016. Effects of pore structure on sound absorption of kapok-based fiber nonwoven fabrics at low frequency. Textile Research Journal 86 (7):755–64. doi:10.1177/0040517515599742.
  • Olcay, H., and E. D. Kocak. 2021. Rice plant waste reinforced polyurethane composites for use as the acoustic absorption material. Applied Acoustics 173:107733. doi:10.1016/j.apacoust.2020.107733.
  • Prachayawarakorn, J., S. Chaiwatyothin, S. Mueangta, and A. Hanchana. 2013. Effect of jute and kapok fibers on properties of thermoplastic cassava starch composites. Materials & Design 47:309–15. doi:10.1016/j.matdes.2012.12.012.
  • Putra, A., Y. Abdullah, H. Efendy, W. M. F. W. Mohamad, and N. L. Salleh. 2013. Biomass from paddy waste fibers as sustainable acoustic material. Advances in Acoustics and Vibration 2013. doi:10.1155/2013/605932.
  • Putra, A., F. A. Khair, and M. J. M. Nor. 2015. Utilizing hollow-structured bamboo as natural sound absorber. Archives of Acoustics 40 (4):601–08. doi:10.1515/aoa-2015-0060.
  • Shaharudin, M. A. B. 2016. Acoustic panel: Using kapok and sawdust as absorbent material. Undergraduate Final Year Project Report, Universiti Teknologi Mara, Malaysia.
  • Taban, E., P. Soltani, U. Berardi, A. Putra, S. M. Mousavi, M. Faridan, S. E. Samaei, and A. Khavanin. 2020. Measurement, modeling, and optimization of sound absorption performance of Kenaf fibers for building applications. Building and Environment 180:107087. doi:10.1016/j.buildenv.2020.107087.
  • Tan, B. K., Y. C. Ching, S. C. Poh, L. C. Abdullah, and S. N. Gan. 2015. A review of natural fiber reinforced poly (vinyl alcohol) based composites: Application and opportunity. Polymers 7 (11):2205–22. doi:10.3390/polym7111509.
  • Tang, X., X. Liu, and X. Yan. 2020. Investigation on the sound absorption properties of waste green tea residues covered by woven fabric. Journal of Natural Fibers 19:1–10. doi:10.1080/15440478.2020.1764455.
  • Tang, X., X. Zhang, H. Zhang, X. Zhuang, and X. Yan. 2018. Corn husk for noise reduction: Robust acoustic absorption and reduced thickness. Applied Acoustics 134:60–68. doi:10.1016/j.apacoust.2018.01.012.
  • Veerakumar, A., N. Selvakumar, A. Veerakumar, J. Boulden, C. Challis, J. Jochems, M. Chan, T. Petersen, E. Deneris, P. Matthias, et al. 2012. HDAC6 regulates glucocorticoid receptor signaling in serotonin pathways with critical impact on stress resilience. The Journal of Neuroscience : The Official Journal of the Society for Neuroscience 32:4400–16. doi:10.1523/JNEUROSCI.5634-11.2012.
  • Xiang, H. F., D. Wang, H. C. Liua, N. Zhao, and J. Xu. 2013. Investigation on sound absorption properties of kapok fibers. Chinese Journal of Polymer Science 31 (3):521–29. doi:10.1007/s10118-013-1241-8.
  • Yang, T., L. Hu, X. Xiong, M. Petrů, M. T. Noman, R. Mishra, and J. Militký. 2020. Sound absorption properties of natural fibers: A review. Sustainability 12 (20):8477. doi:10.3390/su12208477.
  • Zunaidi, N. H., W. H. Tan, M. S. A. Majid, and E. A. Lim. 2017. Effect of physical properties of natural fiber on the sound absorption coefficient. Journal of Physics, Conference Series 908 (1):012023. IOP Publishing. doi:10.1088/1742-6596/908/1/012023.