Preliminary Experimental and Numerical Study of the Tensile Behavior of a Composite Based on Sycamore Bark Fibers

Author:

Khoury Moussa Helena1,Lestriez Philippe1,Bui He Thong2ORCID,Nguyen Pham The Nhan3,Michaud Philippe4ORCID,Lucas-Roper Romain4ORCID,Antou Guy4ORCID,Luong Viet Dung5ORCID,Duong Pham Tuong Minh5,Abbès Fazilay1,Abbès Boussad1ORCID

Affiliation:

1. MATIM, Université de Reims Champagne-Ardenne, 51100 Reims, France

2. University of Technology and Education, The University of Danang, Danang 55000, Vietnam

3. University of Science and Technology, The University of Danang, Danang 55000, Vietnam

4. IRCER, University Limoges, CNRS, UMR 7315, 87000 Limoges, France

5. Faculty of Mechanical Engineering, Thai Nguyen University of Technology, Thai Nguyen 25000, Vietnam

Abstract

In the context of global sustainable development, using natural fibers as reinforcement for composites have become increasingly attractive due to their lightweight, abundant availability, renewability, and comparable specific properties to conventional fibers. This paper investigates the tensile properties of a sycamore bark fiber-reinforced composite. The tensile tests using digital image correlation showed that, by adding 18% by volume of sycamore bark for the polyester matrix, the tensile modulus achieves 4788.4 ± 940.1 MPa. Moreover, the tensile strength of the polyester resin increased by approximately 90% when reinforced with sycamore bark fiber, achieving a tensile strength of 64.5 ± 13.4 MPa. These mechanical properties are determined by the way loads are transferred between the polyester matrix and fibers and by the strength of the bond between the fiber-matrix interfaces. Since it is difficult and time consuming to characterize the mechanical properties of natural fibers, an alternative approach was proposed in this study. The method consists of the identification of the fiber elastic modulus using a finite element analysis approach, based on tensile tests conducted on the sycamore bark fiber-reinforced composites. The model correctly describes the overall composite behavior, a good agreement is found between the experimental, and the finite element predicted stress–strain curves. The identified sycamore bark fiber elastic modulus is 17,763 ± 6051 MPa. These results show that sycamore bark fibers can be used as reinforcements to produce composite materials.

Publisher

MDPI AG

Reference67 articles.

1. (2024, June 06). Natural Fiber Composites Market—By Type (Wood Fiber Composites, Hemp Fiber Composites, Flax Fiber Composites, Jute Fiber Composites), by Matrix (Inorganic Compound, Natural Polymer, Synthetic Polymer), by End-Use & Forecast, 2023–2032. Global Market Insights Inc. Available online: https://www.gminsights.com/industry-analysis/natural-fiber-composites-market.

2. Synthesis of lignocellulosic polymer with improved chemical resistance through free radical polymerization;Thakur;Int. J. Biol. Macromol.,2013

3. A brief review on the chemical modifications of lignocellulosic fibers for durable engineering composites;Saha;Polym. Bull.,2016

4. A review on the degradability of polymeric composites based on natural fibres;Azwa;Mater. Des.,2013

5. Natural fiber composites slowly take root;Brosius;Compos. Technol.,2006

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