Assessment of Hydrothermal Treatment Effects on Coir Fibers for Incorporation into Polyurethane Matrix Biocomposites Derived from Castor Oil
Author:
Camillo Mayara de Oliveira1, Gonçalves Bárbara Maria Mateus1, Candido Veronica Scarpini2ORCID, Dias Luciano Da Costa1, Moulin Jordão Cabral1, Monteiro Sergio Neves3ORCID, Oliveira Michel Picanço1ORCID
Affiliation:
1. Forest and Wood Sciences Department, Federal University of Espírito Santo, Jeronimo Monteiro 29550-000, ES, Brazil 2. Materials Science and Engineering Program, Federal University of Pará, Ananindeua 67140-709, PA, Brazil 3. Materials Science Program, Military Institute of Engineering—IME, Praça General Tibúrcio 80, Urca, Rio de Janeiro 22290-270, RJ, Brazil
Abstract
The incorporation of natural lignocellulosic fibers as reinforcements in polymer composites has witnessed significant growth due to their biodegradability, cost-effectiveness, and mechanical properties. This study aims to evaluate castor-oil-based polyurethane (COPU), incorporating different contents of coconut coir fibers, 5, 10, and 15 wt%. The investigation includes analysis of the physical, mechanical, and microstructural properties of these composites. Additionally, this study evaluates the influence of hydrothermal treatment on the fibers, conducted at 120 °C and 98 kPa for 30 min, on the biocomposites’ properties. Both coir fibers (CFs) and hydrothermal-treated coir fibers (HTCFs) were subjected to comprehensive characterization, including lignocellulosic composition analysis, scanning electron microscopy (SEM), Fourier transform infrared spectroscopy (FTIR), X-ray diffraction (XRD), and thermogravimetric analysis (TGA). The biocomposites were subjected to water absorption analysis, bending tests, XRD, SEM, FTIR, and TGA. The results indicate that the 30 min hydrothermal treatment reduces the extractive content, enhancing the interfacial adhesion between the fiber and the matrix, as evidenced by SEM. Notably, the composite containing 5 wt% CF exhibits a reduced water absorption, approaching the level observed in pure COPU. The inclusion of 15 wt% HTCF results in a remarkable improvement in the composite’s flexural strength (100%), elastic modulus (98%), and toughness (280%) compared to neat COPU. TGA highlights that incorporating CFs into the COPU matrix enhances the material’s thermal stability, allowing it to withstand temperatures of up to 500 °C. These findings underscore the potential of CFs as a ductile, lightweight, and cost-effective reinforcement in COPU matrix biocomposites, particularly for engineering applications.
Funder
ESPÍRITO SANTO RESEARCH AND INNOVATION SUPPORT FOUNDATION
Subject
Polymers and Plastics,General Chemistry
Reference64 articles.
1. Dolçà, C., Fages, E., Gonga, E., Garcia-sanoguera, D., Balart, R., and Quiles-carrillo, L. (2022). The Effect of Varying the Amount of Short Hemp Fibers on Mechanical and Thermal Properties of Wood–Plastic Composites from Biobased Polyethylene Processed by Injection Molding. Polymers, 14. 2. Gonçalves, B.M.M., Camillo, M.d.O., Oliveira, M.P., Carreira, L.G., Moulin, J.C., Neto, H.F., de Oliveira, B.F., Pereira, A.C., and Monteiro, S.N. (2021). Surface Treatments of Coffee Husk Fiber Waste for Effective Incorporation into Polymer Biocomposites. Polymers, 13. 3. Maradini, G.d.S., Oliveira, M.P., Carreira, L.G., Guimarães, D., Profeti, D., Dias Júnior, A.F., Boschetti, W.T.N., Oliveira, B.F.d., Pereira, A.C., and Monteiro, S.N. (2021). Impact and Tensile Properties of Polyester Nanocomposites Reinforced with Conifer Fiber Cellulose Nanocrystal: A Previous Study Extension. Polymers, 13. 4. Chemical Composition and Mechanical Properties of Natural Fibers;Chokshi;J. Nat. Fibers,2022 5. Natural Cellulosic Fiber from Coccinia Indica Stem for Polymer Composites: Extraction and Characterization;Bhuvaneshwaran;J. Nat. Fibers,2021
Cited by
2 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献
|
|