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Review

Appraising the Acoustic Performance and Related Factors of Natural Fiber: A Review

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Pages 13475-13494 | Published online: 09 Aug 2022

References

  • Al-Oqla, F. M., and S. M. Sapuan. 2014. Natural fiber reinforced polymer composites in industrial applications: feasibility of date palm fibers for sustainable automotive industry. Journal of Cleaner Production 66 (March):347–54. doi:10.1016/j.jclepro.2013.10.050.
  • Arenas, J. P., and M. J. Crocker. 2010. Recent trends in porous sound-absorbing materials. SOUND & VIBRATION 44:12–17.
  • Asdrubali, F., B. Ferracuti, L. Lombardi, C. Guattari, L. Evangelisti, and G. Grazieschi. 2017. A review of structural, thermo-physical, acoustical, and environmental properties of wooden materials for building applications. Building and Environment 114:307–32. Elsevier Ltd. doi:10.1016/j.buildenv.2016.12.033.
  • Ashori, A. 2008. Wood-plastic composites as promising green-composites for automotive industries! Bioresource Technology 99 (11):4661–67. doi:10.1016/j.biortech.2007.09.043.
  • Asokan, P., M. Firdoous, and W. Sonal. 2012. Properties and potential of bio fibres, bio binders, and bio composites. Reviews on Advanced Materials Science 30 3 254–261 .
  • Ayub, M., M. Jailani, M. Nor, R. Zulkifli, N. Amin, and M. H. Fouladi. 2010. Effect of compression on the acoustic absorption of coir fiber. American Journal of Applied Sciences 7 (9):1285–90. doi:10.3844/ajassp.2010.1285.1290.
  • Bansod, P. V., T. Mittal, and A. R. Mohanty. 2016. Study on the acoustical properties of natural jute material by theoretical and experimental methods for building acoustics applications. Acoustics Australia 44 (3):457–72. doi:10.1007/s40857-016-0073-4.
  • Berardi, U., and G. Iannace. 2015. Acoustic characterization of natural fibers for sound absorption applications. Building and Environment 94:840–52. Elsevier Ltd. doi:10.1016/j.buildenv.2015.05.029.
  • Djafari Petroudy, S. R. 2017. “Physical and mechanical properties of natural fibers.” Advanced High Strength Natural Fibre Composites in Construction Elsevier Ltd, 59–83. doi:10.1016/B978-0-08-100411-1.00003-0.
  • Dunne, R., D. Desai, R. Sadiku, and J. Jayaramudu. 2016. A review of natural fibres, their sustainability and automotive applications. Journal of Reinforced Plastics and Composites 35 (13):1041–50. doi:10.1177/0731684416633898.
  • Dweib, M. A., B. Hu, A. O’Donnell, H. W. Shenton, and R. P. Wool. 2004. All natural composite sandwich beams for structural applications. Composite Structures 63(2):147–57. Elsevier BV. doi:10.1016/S0263-8223(03)00143-0.
  • Fatima, S., and A. R. Mohanty. 2011. Acoustical and fire-retardant properties of jute composite materials. Applied Acoustics 72(2–3):108–14. Elsevier Ltd. doi:10.1016/j.apacoust.2010.10.005.
  • Fowler, P. A., J. Mark Hughes, and R. M. Elias. 2006. Biocomposites: technology, environmental credentials and market forces. Journal of the Science of Food and Agriculture 86 (12):1781–89. doi:10.1002/jsfa.2558.
  • Hao, A., H. Zhao, and J. Y. Chen. 2013. Kenaf/polypropylene nonwoven composites: the influence of manufacturing conditions on mechanical, thermal, and acoustical performance. Composites Part B: Engineering 54 (1):44–51. doi:10.1016/j.compositesb.2013.04.065.
  • Hariprasad, K., K. Ravichandran, V. Jayaseelan, and T. Muthuramalingam. 2020. Acoustic and mechanical characterisation of polypropylene composites reinforced by natural fibres for automotive applications. Journal of Materials Research and Technology 9(6):14029–35. Elsevier BV. doi:10.1016/j.jmrt.2020.09.112.
  • Hosseini Fouladi, M., M. J. Mohd Nor, M. Ayub, and Z. Ali Leman. 2010. Utilization of coir fiber in multilayer acoustic absorption panel. Applied Acoustics 71 (3):241–49. doi:10.1016/j.apacoust.2009.09.003.
  • Jayamani, E., S. Hamdan, M. R. Rahman, and M. K. Bin Bakri. 2014. Investigation of fiber surface treatment on mechanical, acoustical and thermal properties of betelnut fiber polyester composites. Procedia Engineering 97 (July):545–54. doi:10.1016/j.proeng.2014.12.282.
  • John, M. J., and S. Thomas. 2008. Biofibres and biocomposites. Carbohydrate Polymers 71 (3):343–64. doi:10.1016/j.carbpol.2007.05.040.
  • Kinnane, O., A. Reilly, J. Grimes, S. Pavia, and R. Walker. 2016. Acoustic absorption of hemp-lime construction. Construction and Building Materials 122:674–82. Elsevier Ltd. doi:10.1016/j.conbuildmat.2016.06.106.
  • Koronis, G., A. Silva, and M. Fontul. 2013. Green composites: A review of adequate materials for automotive applications. Composites Part B: Engineering 44(1):120–27. Elsevier Ltd. doi:10.1016/j.compositesb.2012.07.004.
  • Koruk, H., and G. Genc. 2015. Investigation of the acoustic properties of bio luffa fiber and composite materials. Materials Letters 157(June):166–68. Elsevier. doi:10.1016/j.matlet.2015.05.071.
  • Kumar, Sathish . 2012 Sound transmission properties of honeycomb panels and double-walled structures . . : The Marcus Wallenberg Laboratory for Sound and Vibration Research, Department of Aeronautical and Vehicle Engineering, KTH Royal Institute of Technology, Stockholm, Sweden.
  • Letellier, M., V. Fierro, A. Pizzi, and A. Celzard. 2014. Tortuosity studies of cellular vitreous carbon foams. Carbon 80(1):193–202. Elsevier Ltd. doi:10.1016/j.carbon.2014.08.056.
  • Lim, Z. Y., A. Putra, M. J. M. Nor, and M. Y. Yaakob. 2018. Sound absorption performance of natural kenaf fibres. Applied Acoustics 130(September 2017):107–14. Elsevier. doi:10.1016/j.apacoust.2017.09.012.
  • Mamtaz, H., M. H. Fouladi, M. Al-Atabi, and S. N. Namasivayam. 2016. Acoustic absorption of natural fiber composites. Journal of Engineering (United Kingdom). doi:10.1155/2016/5836107.
  • Mayer, G., and M. Sarikaya. 2002. Rigid biological composite materials: structural examples for biomimetic design. Experimental Mechanics 42 (4):395–403. doi:10.1177/001448502321548229.
  • Meng, H., M. A. Galland, M. Ichchou, O. Bareille, F. X. Xin, and T. J. Lu. 2017. Small perforations in corrugated sandwich panel significantly enhance low frequency sound absorption and transmission loss. Composite Structures 182(December):1–11. Elsevier Ltd. doi:10.1016/j.compstruct.2017.08.103.
  • Mohammed, L. M., N. M. Ansari, G. Pua, M. Jawaid, and M. Saiful Islam. 2015. A review on natural fiber reinforced polymer composite and its applications. International Journal of Polymer Science 2015:243947. doi:10.1155/2015/243947.
  • Mohanty, A. K., M. Misra, L. T. Drzal, S. E. Selke, B. R. Harte, and G. Hinrichsen. 2005. Natural fibers, biopolymers, and biocomposites: an introduction. Natural fibers, biopolymers, and biocomposites edited by Lawrence T. Drzal Amar K. Mohanty, Manjusri Misra 1st 1–35. CRC Press Boca Raton, Fla, USA 10.1201/9780203508206
  • Munde, Y. S., R. B. Ingle, and I. Siva. 2018. Vibration damping and acoustic characteristics of sisal fibre–reinforced polypropylene composite. Noise & Vibration Worldwide 50 (1):95745651881278. doi:10.1177/0957456518812784.
  • Niskanen, M., J.-P. Groby, A. Duclos, O. Dazel, J. C. Le Roux, N. Poulain, T. Huttunen, and T. Lähivaara. 2017. Deterministic and statistical characterization of rigid frame porous materials from impedance tube measurements. The Journal of the Acoustical Society of America 142 (4):2407–18. doi:10.1121/1.5008742.
  • Nordin, M. N. A. A., L. M. Wan, M. H. Zainulabidin, A. S. M. Kassim, and A. M. Aripin. 2016. Research finding in natural fibers sound absorbing material. ARPN Journal of Engineering and Applied Sciences 11 (14):8579–84 Accessed July 2016. https://www.researchgate.net/publication/306185770.
  • Peng, L. 2017. Sound absorption and insulation functional composites. Advanced High Strength Natural Fibre Composites in Construction Elsevier Inc. doi:10.1016/B978-0-08-100411-1.00013-3.
  • Prabhakaran, S., V. Krishnaraj, M. Senthil Kumar, and R. Zitoune. 2014. Sound and vibration damping properties of flax fiber reinforced composites. Procedia Engineering 97:573–81. Elsevier B.V. doi:10.1016/j.proeng.2014.12.285.
  • Putra, A., K. H. Or, M. Z. Selamat, M. J. Mohd Nor, M. H. Hassan, and I. Prasetiyo. 2018. Sound absorption of extracted pineapple-leaf fibres. Applied Acoustics 136 (November 2017):9–15. doi:10.1016/j.apacoust.2018.01.029.
  • Putra, A., I. Prasetiyo, and Z. Selamat. 2020. Green acoustic absorber from pineapple leaf fibers Jawaid, Mohammad, Asim, Mohammad, Paridah, Md. Tahir, Nasir, Mohammad. In Green energy and technology pineapple leaf fibers processing, properties and applications, edited by Mohammad Jawaid, Mohammad Asim, Paridah Md. Tahir, and Mohammed Nasir, 143–65. Switzerland AG: Springer Nature. doi:10.1007/978-981-15-1416-6_8.
  • Qui, H., and Y. Enhui. 2018. Effect of thickness, density and cavity depth on the sound absorption properties of wool boards. Autex Research Journal 18 (2):203–08. doi:10.1515/aut-2017-0020.
  • Rosa, A. D. L., G. Recca, J. Summerscales, A. Latteri, G. Cozzo, and G. Cicala. 2014. Bio-based versus traditional polymer composites. a life cycle assessment perspective. Journal of Cleaner Production 74(July):135–44. Elsevier Ltd. doi:10.1016/j.jclepro.2014.03.017.
  • Sagartzazu, X., L. Hervella-Nieto, and J. M. Pagalday. 2008. Review in sound absorbing materials. Archives of Computational Methods in Engineering 15 (3):311–42. doi:10.1007/s11831-008-9022-1.
  • Seddeq, H. S. 2009. Factors influencing acoustic performance of sound absorptive materials. Australian Journal of Basic and Applied Sciences 3 (4):4610–17.
  • Steffens, F., H. Steffens, and F. R. Oliveira. 2017. Applications of natural fibers on architecture. Procedia Engineering 200:317–24. Elsevier Ltd. doi:10.1016/j.proeng.2017.07.045.
  • Taiwo, E. M., K. Yahya, and Z. Haron. 2019. “Potential of using natural fiber for building acoustic absorber: a review.” In Journal of Physics: Conference Series 7 March 2019 Selangor, Malaysia. Vol. 1262. Institute of Physics Publishing. doi:10.1088/1742-6596/1262/1/012017.
  • Thilagavathi, G., E. Pradeep, T. Kannaian, and L. Sasikala. 2010. Development of natural fiber nonwovens for application as car interiors for noise control. Journal of Industrial Textiles 39 (3):267–78. doi:10.1177/1528083709347124.
  • Tie, T. S., K. H. Mo, A. Putra, L. U. Siaw Chuing, J. Alengaram, and T. C. Ling. 2020. Sound absorption performance of modified concrete: a review. Journal of Building Engineering 30(November 2019):101219. Elsevier Ltd. doi:10.1016/j.jobe.2020.101219.
  • Vallabh, R., P. Banks-Lee, and A. F. Seyam. 2010. New approach for determining tortuosity in fibrous porous media. Journal of Engineered Fibers and Fabrics 5 (3):7–15. doi:10.1177/155892501000500302.
  • Xie, S., S. Yang, C. Yang, and D. Wang. 2020. Sound absorption performance of a filled honeycomb composite structure. Applied Acoustics 162:107202. Elsevier Ltd. doi:10.1016/j.apacoust.2019.107202.
  • Yang, T., K. V. Rajesh Mishra, A. H. Horoshenkov, F. Saati, X. Xiong, and X. Xiong. 2018. A study of some airflow resistivity models for multi-component polyester fiber assembly. Applied Acoustics 139 (February):75–81. doi:10.1016/j.apacoust.2018.04.023.
  • Yang, T., K. V. Ferina Saati, X. X. Horoshenkov, K. Yang, R. Mishra, S. Marburg, M. Jiří, and J. Militký. 2019a. Study on the sound absorption behavior of multi-component polyester nonwovens: experimental and numerical methods. Textile Research Journal 89 (16):3342–61. doi:10.1177/0040517518811940.
  • Yang, T., X. Xiong, M. Venkataraman, R. Mishra, J. Novák, and M. Jiří. 2019b. Investigation on sound absorption properties of aerogel/polymer nonwovens. Journal of the Textile Institute 110(2):196–201. Taylor & Francis. doi:10.1080/00405000.2018.1472540.
  • Yang, T., H. Lizhu, X. Xiong, M. Petrů, M. T. Noman, R. Mishra, and M. Jiří. 2020. Sound absorption properties of natural fibers: a review. Sustainability 12 (20):1–25. doi:10.3390/su12208477.
  • Yao, D., J. Zhang, R. Q. Wang, X. B. N. Xiao, and J. Q. Guo. 2019. Lightweight design and sound insulation characteristic optimisation of railway floating floor structures. Applied Acoustics 156(December):66–77. Elsevier Ltd. doi:10.1016/j.apacoust.2019.07.005.
  • Zah, R., R. Hischier, A. L. Leão, and I. Braun. 2007. Curauá fibers in the automobile industry - a sustainability assessment. Journal of Cleaner Production 15 (11–12):1032–40. doi:10.1016/j.jclepro.2006.05.036.
  • Zhang, J., Y. Shen, B. Jiang, and L. Yan. 2018. Sound absorption characterization of natural materials and sandwich structure composites. Aerospace 5(3):75. MDPI Multidisciplinary Digital Publishing Institute. doi:10.3390/aerospace5030075.
  • Zhu, X., B. J. Kim, Q. W. Wang, and W. Qinglin. 2014. Recent advances in the sound insulation properties of bio-based materials. BioResources. doi:10.15376/biores.9.1.1764-1786.

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