Modares Mechanical Engineering

Modares Mechanical Engineering

Experimental and FEM Investigation of the Mechanical Strength of Parts Printed with a Five-Degree-of-Freedom 3D FDM Printer Based on a Parallel Mechanism

Document Type : Original Research

Authors
Mechanical Engineering Department, University of Tabriz, Tabriz, Iran
Abstract
In recent years, fused deposition modeling (FDM) has gained widespread use as one of the most advanced additive manufacturing methods due to its availability and ability to manufacture complex parts with relatively good strength.
One of the important research challenges in this field is to increase the strength of parts by appropriately selecting manufacturing variables and, in particular, choosing the arrangement of manufacturing layers by utilizing printing capabilities beyond three axes. In this paper, the aim is to print and investigate its parameters with 5-degree-of-freedom (5-Dof) robotic printers. For this purpose, a 5-Dof printer with a parallel mechanism and a delta robot was built and equipped, and Siemens NX software was used to generate five-axis G-code. To investigate the effect of the directions and arrangement of the filaments used on the quality of printing parts, especially with the five-axis printing method, a knee-shaped sample piece made of polylactic acid (PLA) was selected. Then, the necessary G-codes for printing this part with different methods and different orientations were created with common three-axis and five-axis software (Siemens NX) and printed by three-axis and five-axis printers. Experimental tensile and bending tests were performed on the printed samples and the superiority of about 11.5% and 7% of the five-axis printing method in tensile and bending force tolerance was observed compared to the three-axis method. To study the strength and finite element simulation of printed parts, ANSYS software was used and the results obtained from the analyses were compared with experimental results. The results of the experiments showed that the use of the five-axis printing method increases the tensile and bending strength of the printed part
Keywords

Subjects


[1] M. Vlachou, A. Siamidi and C. Protopapa, "3D-printing technologies for pharmaceutical applications, " In Elsevier eBooks, pp. 29–46, 2025. http://doi.org/10.1016/b978-0-443-23645-7.00002-7.
[2] M. Enyan, J. N. O. Amu-Darko., E. Issaka and O. J. Abban, "Advances in fused deposition modeling on process, process parameters, and multifaceted industrial application: a review, " Engineering Research Express, 6(1), 012401, 2024. http://doi.org/10.1088/2631-8695/ad32f6.
[3] Liam Rudd, I. Matthew, Campbell, and Ghazi Alonayni. "Multi-Axis 3D Printer Design Challenges for In-Situ Additive Manufacturing." International Manufacturing Science and Engineering Conference. Vol. 87240. American Society of Mechanical Engineers, 2023. http:/ doi.org/10.1115/MSEC2023-100996.
[4] W. Gao, Y. Zhang, D. Ramanujan, K. Ramani, Y. Chen, C. B. Williams, C. C. Wang, Y. C. Shin, S. Zhang, and P. D. Zavattieri, "The status, challenges, and future of additive manufacturing in engineering," Computer-Aided Design, 69, 65–89, 2015.  http://doi.org/10.1016/j.cad.2015 .04.001.
[5] Song, Xuan, Yayue Pan, and Yong Chen. "Development of a low-cost parallel kinematic machine for multidirectional additive manufacturing." Journal of Manufacturing Science and Engineering 137.2, 021005, 2015, https://doi.org/10.1115/1.4028897.
[6] Gao, W., Zhang, Y., Ramanujan, D., Ramani, K., Chen, Y., Williams, C. B., Wang, C. C., Shin, Y. C., Zhang, S., & Zavattieri, P. D. (2015). The status, challenges, and future of additive manufacturing in engineering. Computer-Aided Design, 69, 65–89. , http://doi.org/10.1016/j.cad.2015.04.001
[7] Zhang, H., Liu, D., Huang, T., Hu, Q., & Lammer, H. (2020). Three-Dimensional printing of continuous flax Fiber-Reinforced thermoplastic composites by Five-Axis machine. Materials, 13(7), 1678.  http://doi.org/10.3390/ma13071678
[8] O. K. Grutle,. 5-axis 3D Printer, Master's thesis, 2015.
[9] Isa, M. A., & Lazoglu, I. (2018). Five-axis additive manufacturing of freeform models through buildup of transition layers. Journal of Manufacturing Systems, 50, 69–80. http://doi.org/10.1016/j.jmsy.2018.12.002
[10] M. Mahboubkhah, A. Dumlu, F. Khabazi Barab, K. K. Ayten, "Design and Manufacturing of 5-Dof FDM Printer Based on Parallel Mechanism", Modares Mechanical Engineering Journal, 22(10): 253-257, 2022.
[11] M. Mahboubkhah, M. Tayyari, "Calibration and error compensation of a 4-DOF milling machine with parallel mechanism", Modares Mechanical Engineering Journal,  23(5): 317-322, 2023, http://doi.org/10.22034/mme.23.5.317
[12]Fathi, A., Mahboubkhah, M., Entezari Maleki, A. et al. Enhanced performance in additive manufacturing: a comparative study of multi-axis and 3-axis FDM for tubular parts. Prog Addit Manuf (2025). http://doi.org/10.1007/s40964-025-01219
[13]ASTM D638-10, Standard Test Method for Tensile Properties of Plastics, Type IV Specimen, 2010.