» Articles » PMID: 34069144

Optimisation of Strength Properties of FDM Printed Parts-A Critical Review

Overview
Publisher MDPI
Date 2021 Jun 2
PMID 34069144
Citations 47
Authors
Affiliations
Soon will be listed here.
Abstract

Additive Manufacturing is currently growing fast, especially fused deposition modeling (FDM), also known as fused filament fabrication (FFF). When manufacturing parts use FDM, there are two key parameters-strength of the part and dimensional accuracy-that need to be considered. Although FDM is a popular technology for fabricating prototypes with complex geometry and other part product with reduced cycle time, it is also limited by several drawbacks including inadequate mechanical properties and reduced dimensional accuracy. It is evident that part qualities are greatly influenced by the various process parameters, therefore an extensive review of the effects of the following process parameters was carried out: infill density, infill patterns, extrusion temperature, layer thickness, nozzle diameter, raster angle and build orientation on the mechanical properties. It was found from the literature that layer thickness is the most important factor among the studied ones. Although manipulation of process parameters makes significant differences in the quality and mechanical properties of the printed part, the ideal combination of parameters is challenging to achieve. Hence, this study also includes the influence of pre-processing of the printed part to improve the part strength and new research trends such as, vacuum-assisted FDM that has shown to improve the quality of the printing due to improved bonding between the layers. Advances in materials and technologies that are currently under development are presented. For example, the pre-deposition heating method, using an IR lamp of other technologies, shows a positive impact on the mechanical properties of the printed parts.

Citing Articles

Mechanical Characterization and Modeling of Glass Fiber-Reinforced Polyamide Built by Additive Manufacturing.

Avalle M, Frascio M Materials (Basel). 2025; 18(4).

PMID: 40004269 PMC: 11857739. DOI: 10.3390/ma18040745.


Optimization of 3D Printing Nozzle Parameters and the Optimal Combination of 3D Printer Process Parameters for Engineering Plastics with High Melting Points and Large Thermal Expansion Coefficients.

Wang J, Hu H, Liu Z, Shi Y, Huang Y Materials (Basel). 2025; 18(3).

PMID: 39942165 PMC: 11818178. DOI: 10.3390/ma18030500.


Investigation of the Influence of Fused Deposition Modeling 3D Printing Process Parameters on Tensile Properties of Polylactic Acid Parts Using the Taguchi Method.

Megersa G, Sitek W, Nowak A, Tomasic N Materials (Basel). 2024; 17(23).

PMID: 39685387 PMC: 11643830. DOI: 10.3390/ma17235951.


3D Printing of Continuous Basalt Fiber-Reinforced Composites: Characterization of the In-Plane Mechanical Properties and Anisotropy Evaluation.

Zanelli M, Ronconi G, Pritoni N, DIorio A, Bertoldo M, Mazzanti V Polymers (Basel). 2024; 16(23).

PMID: 39684122 PMC: 11644435. DOI: 10.3390/polym16233377.


Analyzing the effects of printing parameters to minimize the dimensional deviation of polylactic acid parts by applying three different decision-making approaches.

Solouki A, Aliha M, Makui A, Choupani N, Seiti H Sci Rep. 2024; 14(1):27674.

PMID: 39532950 PMC: 11557710. DOI: 10.1038/s41598-024-78952-9.


References
1.
Peltola S, Melchels F, Grijpma D, Kellomaki M . A review of rapid prototyping techniques for tissue engineering purposes. Ann Med. 2008; 40(4):268-80. DOI: 10.1080/07853890701881788. View

2.
Okwuosa T, Stefaniak D, Arafat B, Isreb A, Wan K, Alhnan M . A Lower Temperature FDM 3D Printing for the Manufacture of Patient-Specific Immediate Release Tablets. Pharm Res. 2016; 33(11):2704-12. DOI: 10.1007/s11095-016-1995-0. View

3.
Wang X, Zhao L, Fuh J, Lee H . Effect of Porosity on Mechanical Properties of 3D Printed Polymers: Experiments and Micromechanical Modeling Based on X-ray Computed Tomography Analysis. Polymers (Basel). 2019; 11(7). PMC: 6680582. DOI: 10.3390/polym11071154. View

4.
Harynska A, Gubanska I, Kucinska-Lipka J, Janik H . Fabrication and Characterization of Flexible Medical-Grade TPU Filament for Fused Deposition Modeling 3DP Technology. Polymers (Basel). 2019; 10(12). PMC: 6401970. DOI: 10.3390/polym10121304. View

5.
Jung S, Lee S, Kim H, Park H, Wang Z, Kim H . 3D printed polyurethane prosthesis for partial tracheal reconstruction: a pilot animal study. Biofabrication. 2016; 8(4):045015. DOI: 10.1088/1758-5090/8/4/045015. View