» Articles » PMID: 37835977

Delamination Strength Comparison of Additively Manufactured Composite Curved Beams Using Continuous Fibers

Overview
Publisher MDPI
Date 2023 Oct 14
PMID 37835977
Authors
Affiliations
Soon will be listed here.
Abstract

The objective of this study is to show the applicability of various 3D-printed composite curved beams using continuous fibers and their delamination strength when they are subjected to bending loading. Four-point bending tests are configured for comparative research on evaluating the effect of fiber types on the delamination strength and failure mode. Out-of-plane tensile properties are calculated analytically by using experimental data. The number of curved beams per build during multiple printing is examined to observe the effect of delay time between each deposited layer of parts. Macro-scale finite element simulations including surface-based cohesive concept for the selected 3D-printed composite curved beam design are also presented and compared. The analytical results show that carbon fiber reinforced curved beam design is superior to the other fiber types by at least 18% in the interlaminar tensile strength and is relatively challenging against the conventionally manufactured composite curved beams in the literature despite its low fiber volume ratio. There is no gross effect of delay time between each deposited layer of parts, although printing a single sample is favorable for better strength. There is a presence of compatibility between the analytical and numerical results as the percentage difference for maximum load, radial tensile strength and maximum displacement are found as 1.8%, 2.4% and 1.5%, respectively, in a 3D cohesive model. A 2D cohesive model offers a fast solution and a competitive agreement with test results when the 2D and 3D finite element models are compared.

Citing Articles

Investigation of Delamination Characteristics in 3D-Printed Hybrid Curved Composite Beams.

Susler S, Kazanci Z Polymers (Basel). 2024; 16(16).

PMID: 39204470 PMC: 11360238. DOI: 10.3390/polym16162250.

References
1.
Santos J, Fernandez A, Ripoll L, Blanco N . Experimental Characterization and Analysis of the In-Plane Elastic Properties and Interlaminar Fracture Toughness of a 3D-Printed Continuous Carbon Fiber-Reinforced Composite. Polymers (Basel). 2022; 14(3). PMC: 8840590. DOI: 10.3390/polym14030506. View

2.
Fisher T, Almeida Jr J, Falzon B, Kazanci Z . Tension and Compression Properties of 3D-Printed Composites: Print Orientation and Strain Rate Effects. Polymers (Basel). 2023; 15(7). PMC: 10096896. DOI: 10.3390/polym15071708. View

3.
Santos J, Guerrero J, Blanco N, Fajardo J, Paltan C . Numerical and Experimental Analysis of the Mode I Interlaminar Fracture Toughness in Multidirectional 3D-Printed Thermoplastic Composites Reinforced with Continuous Carbon Fiber. Polymers (Basel). 2023; 15(10). PMC: 10223332. DOI: 10.3390/polym15102403. View