Multi-Criteria Decision-Making Analysis of Natural Fibers as Ceiling Liners in the Automotive Industry

Authors

  • F. Balo Department of METE, Engineering Faculty, Firat University, 23100, Turkey
  • L. Sagbansua Department of Management and Marketing, Southern University and A&M College, USA

DOI:

https://doi.org/10.15282/ijame.22.1.2025.11.0928

Keywords:

Fiber selection, Natural fibers, MCDM, Automotive industry, AHP

Abstract

The development of biomass technology for the generation of bio-based goods and bioenergy will enable more economic and wise use of indigenous natural sources like agricultural residues, trees, and crops. Improving the recyclability and generation of new cars with natural-based materials is becoming increasingly important for car manufacturers as environmental protection becomes a top priority. In this study, a multiple-criteria decision analysis (MCDM) was carried out to obtain the most suitable natural fiber in terms of technical and structural properties in the case of the use of natural fiber-based materials as ceiling liners in the automotive industry. For this purpose, natural fiber materials that are used in the automotive industry as interior parts were investigated. Taking into account the required characteristics for ceiling liner production, the technical and structural properties of the 13 most commonly used materials were determined. A cross-comparative hierarchy analysis was then used to obtain the most proper natural fiber for ceiling liner material production in the automotive sector. The numerical results indicate that the weighted priority scores of 0.1383 and 0.1149 for pineapple and coir are higher than those for the remaining fiber types, making them attractive alternatives. The results of the research are important for decision-makers, automotive manufacturers, and engineers to use natural fibers appropriately and in the right place in the automotive industry.

References

[1] E. Quintana, C. Valls, and M. B. Roncero, “Dissolving-grade pulp: A sustainable source for fiber production,” Wood Science Technology, vol. 58, pp. 23–85, 2024.

[2] S. Shaikh, M. Yaqoob, and P. Aggarwal, “An overview of biodegradable packaging in food industry,” Current Research in Food Science, vol. 4, pp. 503-520, 2021.

[3] F. Khan, N. Hossain, F. Hasan, S. M. M. Rahman, S. Khan, A. Z. A. Saifullah, et al. “Advances of natural fiber composites in diverse engineering applications—A review,” Applications in Engineering Science, vol. 18, p. 100184, 2024.

[4] L. Yan, and H. Xu. “Lightweight composite materials in automotive engineering: State-of-the-art and future trends,” Alexandria Engineering Journal, vol. 118, pp. 1-10, 2025.

[5] D. Thapliyal, S. Verma, P. Sen, R. Kumar, A. Thakur, A. K. Tiwari, et al. “Natural Fibers Composites: Origin, Importance, Consumption Pattern, and Challenges,” Journal of Composites Science, vol. 7, no. 12, p. 506, 2023.

[6] T. N. Babu, S. Shyam, D. R. Prabha, S. Kaul, and N. Kalsara. “Investigation of the mechanical properties of hybrid e-glass and mohair fiber reinforced epoxy composites,” International Journal of Automotive and Mechanical Engineering, vol. 21, no. 3, pp. 11606–11615, 2024.

[7] W. Zhang, and J. Xu. “Advanced lightweight materials for Automobiles: A review,” Materials & Design, vol. 221, p. 110994, 2022.

[8] D. K. Rajak, P. H. Wagh, and E. Linul, “Manufacturing technologies of carbon/glass fiber-reinforced polymer composites and their properties: A review,” Polymers, vol. 13, no. 21, p. 3721, 2021.

[9] F. Khan, N. Hossain, J. J. Mim, S. M. Rahman, M. J. Iqbal, M. Billah et al., “Advances of composite materials in automobile applications – A review,” Journal of Engineering Research. In Press, 2024.

[10] Business Research Insights, Natural Fibers Global Market Report 2025. [Online]. Available: https://www.thebusinessresearchcompany.com/report/natural-fibers-global-market-report. [Accessed: Jan. 24, 2025].

[11] L. A. Elseify, M. Midani, A. El-Badawy, and M. Jawaid, “Natural fibers in the automotive industry,” in Manufacturing Automotive Components from Sustainable Natural Fiber Composites, SpringerBriefs in Materials, Springer, Cham, 2021.

[12] W. B. Du Preez, O. F. R. A. Damm, N. G. Trollip, and M. J. John, “Advanced materials for application in the aerospace and automotive industries,” Science real and relevant: The 2nd CSIR Biennial Conference, CSIR International Convention Centre in Pretoria, South Africa on, pp. 17-18. 2001.

[13] F. M. Al-Oqla and M. S. Salit, Materials Selection for Natural Fiber Composites, 1st ed. Cambridge, USA: Woodhead Publishing, Elsevier, 2017.

[14] I. Elfaleh, F. Abbassi, M. Habibi, F. Ahmad, M. Guedri, M. Nasri, et al., “A comprehensive review of natural fibers and their composites: An eco-friendly alternative to conventional materials,” Results in Engineering, vol. 19, p. 101271, 2023.

[15] E. Vázquez-Núñez, A.M. Avecilla-Ramírez, B. Vergara-Porras, M. del R. López-Cuellar, “Green composites and their contribution toward sustainability: A review,” Polymers and Polymer Composites, vol. 29, no. 9_suppl, pp. S1588-S1608, 2021.

[16] O. Olanrewaju, I. O. Oladele, and S. O. Adelani, “Recent advances in natural fiber reinforced metal/ceramic/polymer composites: An overview of the structure-property relationship for engineering applications,” Hybrid Advances, vol. 8, p. 100378, 2025.

[17] V. Mahesh, S. Joladarashi, and S. M. Kulkarni. “A comprehensive review on material selection for polymer matrix composites subjected to impact load,” Defence Technology, vol. 17, no. 1, pp. 257-277, 2021.

[18] A. Karimah, M. R. Ridho, S. S. Munawar, D. S. Adi, R. Damayanti, B. Subiyanto, et al. “A review on natural fibers for development of eco-friendly bio-composite: Characteristics, and utilizations,” Journal of Materials Research and Technology, vol. 13, pp. 2442-2458, 2021.

[19] S. M. Sapuan, “Design for sustainability in composite product development,” in Composite Materials, 1st ed., vol. 281, Butterworth-Heinemann: Elsevier Inc., pp. 273–294, 2017.

[20] S. Maiti, M. R. Islam, M. A. Uddin, S. Afroj, S. J. Eichhorn, and N. Karim, “Sustainable fiber-reinforced composites: A review,” Advanced Sustainable Systems, vol. 6, no. 11, p. 2200258, 2022.

[21] S. Ullah, Z. Akhter, A. Palevicius, and G. Janusas. “Review: Natural fiber-based biocomposites for potential advanced automotive applications,” Journal of Engineered Fibers and Fabrics, vol. 20, p. 15589250241311468, 2025.

[22] S. J. Skosana, C. Khoathane, and T. Malwela, “Driving towards sustainability: A review of natural fiber reinforced polymer composites for eco-friendly automotive light-weighting,” Journal of Thermoplastic Composite Materials, 38, no. 2, pp. 754-780, 2024.

[23] D. Xu, S. He, W. Leng, Y. Chen, and Z. Wu. “Replacing plastic with bamboo: A review of the properties and green applications of bamboo-fiber-reinforced polymer composites,” Polymers, vol. 15, no. 21, p. 4276, 2023.

[24] G. Bishop, D. Styles, and P. N. Lens. “Environmental performance comparison of bioplastics and petrochemical plastics: A review of life cycle assessment (LCA) methodological decisions,” Resources, Conservation and Recycling, vol. 168, p. 105451, 2021.

[25] G. S. Mann, N. Azum, A. Khan, M. A. Rub, M. I. Hassan, K. Fatima, and A. M. Asiri. “Green composites based on animal fiber and their applications for a sustainable future,” Polymers, vol. 15, no. 3, p. 601, 2023.

[26] S. M. Sapuan, F. L. Pua, Y. A. El-Shekeil, and F. M. Al-Oqla, “Mechanical properties of soil buried kenaf fiber reinforced thermoplastic polyurethane composites,” Materials Design, vol. 50, pp. 467–670, 2013.

[27] C. Lacoste, R. El Hage, A. Bergeret, S. Corn, and P. Lacroix, “Sodium alginate adhesives as binders in wood fibers/textile waste fibers biocomposites for building insulation,” Carbohydrate Polymers, vol. 184, pp. 1–8, 2018.

[28] P. Mariana, N. Antonia, A. Jaume, and A. M. Lacasta, “Characterization of thermal insulation materials developed with crop wastes and natural binders,” in WSB 14 Barcelona Sustainable Building, vol. 28, p. 1, 2014.

[29] N. Mati-Baouche, H. De Baynast, A. Lebert, S. Sun, C. J. S. Lopez-Mingo, P. Leclaire, et al., “Mechanical, thermal and acoustical characterizations of an insulating bio-based composite made from sunflower stalks particles and chitosan,” Industrial Crops and Products, vol. 58, pp. 244-250, 2014.

[30] J. Zhao and S. Li, “Life cycle cost assessment and multi-criteria decision analysis of environment-friendly building insulation materials: A review,” Energy and Buildings, vol. 254, p. 111582, 2021.

[31] F. Balo and L. S. Sua, Handbook of Sustainable Materials: Modelling, Characterization, and Optimization, Strategic Evaluation and Selection for Energy-Effective Natural Fibers as Alternative Sustainable Insulation Materials for Green Building Envelope, CRC Press, Mar. 31, pp. 1–14, 2023.

[32] F. Balo and L. S. Sua, “Application of expert decision system at the optimal fiber selection for green building design components,” in Pragmatic Engineering and Lifestyle - Responsible Engineering for a Sustainable Future, Book Series by Emerald Publishing, vol. 2, pp. 21-37, 2023.

[33] F. Balo and L. S. Sua, “Hierarchical model for optimizing natural fiber selection process for eco-design of buildings,” Journal of Natural Fibers, vol. 19, no. 15, pp. 10897–10909, 2022.

[34] M. T. Mastura, S. M. Sapuan, M. R. Mansor, and A. A. Nuraini, “Materials selection of thermoplastic matrices for ‘green’ natural fiber composites for automotive anti-roll bar with particular emphasis on the environment,” International Journal of Precision Engineering and Manufacturing - Green Technology, vol. 5, no. 1, pp. 111–119, 2018.

[35] M. R. Mansor, S. M. Sapuan, E. S. Zainudin, A. A. Nuraini, and A. Hambali, “Hybrid natural and glass fibers reinforced polymer composites material selection using Analytical Hierarchy Process for automotive brake lever design,” Materials and Design, vol. 51, pp. 484–492, 2013.

[36] F. M. Al-Oqla, S. M. Sapuan, M. R. Ishak, and A. A. Nuraini, “A decision-making model for selecting the most appropriate natural fiber - Polypropylene-based composites for automotive applications,” Journal of Composite Materials, vol. 50, no. 4, pp. 543–556, 2016.

[37] S. M. Sapuan, J. Y. Kho, E. S. Zainudin, Z. Leman, B. A. Ali, and A. Hambali, “Materials selection for natural fiber reinforced polymer composites using analytical hierarchy process,” Indian Journal of Engineering & Materials Sciences, vol. 18, no. 4, pp. 255–267, 2011.

[38] A. Hambali, M. S. Sapuan, N. Ismail, and Y. Nukman, “Material selection of polymeric composite automotive bumper beam using analytical hierarchy process,” Journal of Central South University of Technology (English Edition), vol. 17, no. 2, pp. 244–256, 2010.

[39] M. Noryani, S. M. Sapuan, and M. T. Mastura, “Multi-criteria decision-making tools for material selection of natural fiber composites: A review,” Journal of Mechanical Engineering and Sciences, vol. 12, no. 1, pp. 3330–3353, 2018.

[40] I. M. Hutten, Handbook of Nonwoven Filter Media, Elsevier, UK, 2007.

[41] L. Averous and F. Le Digabel, “Properties of biocomposites based on lignocellulosic fillers,” Carbohydrate Polymers, vol. 66, no. 4, pp. 480–493, 2006.

Downloads

Published

2025-02-26

Issue

Section

Articles

How to Cite

[1]
F. Balo and L. Sagbansua, “Multi-Criteria Decision-Making Analysis of Natural Fibers as Ceiling Liners in the Automotive Industry”, Int. J. Automot. Mech. Eng., vol. 22, no. 1, pp. 12091–12102, Feb. 2025, doi: 10.15282/ijame.22.1.2025.11.0928.

Similar Articles

1-10 of 255

You may also start an advanced similarity search for this article.