Influence of Printing Speed, Layer Thickness, and Infill Percentage on the Mechanical Properties of 3D-Printed PLA Filament for Prototyping

Authors

  • O. K. Ajayi Tshwane University of Technology
  • S. Du Department of Electrical Engineering, Tshwane University of Technology, Pretoria, South Africa
  • T. A. Odemokoya
  • O. Bayonle

Keywords:

Print speed, infill density, layer thickness, regression, chart

Abstract

Proper selection of infill density, printing speed, and layer thickness could conserve material use, reduce printing time, and give acceptable mechanical properties for prototyping. Previous research has emphasized infill density as the major influencer on mechanical properties in additive manufacturing because a wider range of values is usually considered. However, for this study, 15 %, 17.5%, and 20 % infill densities used in prototyping; 60 mm/s, 70 mm/s, and 80 mm/s printing speeds; and 0.1 mm, 0.2 mm, and 0.3 mm layer thicknesses were selected. Twenty-seven samples were derived based on the Taguchi orthogonal array with three factors and nine runs, and a tensile test according to ASTM D638 was performed on each. Statistical and regression analysis was done to investigate the influence of each of the parameters on maximum tensile stress, load at maximum tensile stress, and modulus respectively for each sample and present a model for further parameter investigation. Printing speeds of 60 mm/s and 80 mm/s gave the highest mechanical properties with layer thicknesses of 0.1 mm and 0.2 mm. The sample with 70 mm/s printing speed at a layer thickness of 0.1 mm has the lowest modulus of elasticity. Lower and medium printing speeds and layer thickness showed higher tensile stress and modulus of elasticity.

References

Agrawal, A. P., Kumar, V., Kumar, J., Paramasivam, P., Dhanasekaran, S., & Prasad, L. (2023). An investigation of combined effect of infill pattern, density, and layer thickness on mechanical properties of 3D printed ABS by fused filament fabrication. Heliyon, 9(6), 1-12. e16531.

Ahmad, M. N., Ishak, M. R., Mohammad Taha, M., Mustapha, F., Leman, Z., Anak Lukista, D. D., Irianto, & Ghazali, I. (2022). Application of Taguchi Method to Optimize the Parameter of Fused Deposition Modeling (FDM) Using Oil Palm Fiber Reinforced Thermoplastic Composites. Polymers, 14(11), 1 – 15.

Akhoundi, B., Nabipour, M., Kordi, O., & Hajami, F. (2023). Calculating printing speed in order to correctly print PLA/continuous glass fiber composites via fused filament fabrication 3D printer. Journal of Thermoplastic Composite Materials, 36(1), 162–181.

Alshamrani, A. A., Raju, R., & Ellakwa, A. (2022). Effect of Printing Layer Thickness and Postprinting Conditions on the Flexural Strength and Hardness of a 3D-Printed Resin. BioMed Research International. 2022(2), 1 – 9.

Alzyod, H., Borbas, L., & Ficzere, P. (2023). Rapid prediction and optimization of the impact of printing parameters on the residual stress of FDM-ABS parts using L27 orthogonal array design and FEA. Materials Today: Proceedings, 93, 583–588.

Alzyod, H., & Ficzere, P. (2023). Material-Dependent Effect of Common Printing Parameters on Residual Stress and Warpage Deformation in 3D Printing: A Comprehensive Finite Element Analysis Study. Polymers, 15(13), 1 – 20.

Ansari, A. A., & Kamil, M. (2021). Effect of print speed and extrusion temperature on properties of 3D printed PLA using fused deposition modeling process. Materials Today: Proceedings, 45, 5462–5468.

Ayrilmis, N., Kariz, M., Kwon, J. H., & Kitek Kuzman, M. (2019). Effect of printing layer thickness on water absorption and mechanical properties of 3D-printed wood/PLA composite materials. International Journal of Advanced Manufacturing Technology, 102(5–8), 2195–2200.

Brackett, J., Cauthen, D., Condon, J., Smith, T., Gallego, N., Kunc, V., & Duty, C. (2022). The impact of infill percentage and layer height in small-scale material extrusion on porosity and tensile properties. Additive Manufacturing, 58(4), 1 – 8. 103063.

Chicos, L.-A., Pop, M. A., Zaharia, S.-M., Lancea, C., Buican, G. R., Pascariu, I. S., & Stamate, V.-M. (2022). Infill Density Influence on Mechanical and Thermal Properties of Short Carbon Fiber-Reinforced Polyamide Composites Manufactured by FFF Process. In Materials, 15(10), 1 – 20.

Chockalingam, K., Jawahar, N., & Chandrasekhar, U. (2006). Influence of layer thickness on mechanical properties in stereolithography. Rapid Prototyping Journal, 12(2), 106–113

?wik?a, G., Grabowik, C., Kalinowski, K., Paprocka, I., & Ociepka, P. (2017). The influence of printing parameters on selected mechanical properties of FDM/FFF 3D-printed parts. IOP Conference Series: Materials Science and Engineering, 227(1), 0–10.

Dixit, N., & Jain, P. K. (2022). Effect of Fused Filament Fabrication Process Parameters on Compressive Strength of Thermoplastic Polyurethane and Polylactic Acid Lattice Structures. Journal of Materials Engineering and Performance, 31(7), 5973–5982.

dos Reis, M. Q., Carbas, R. J. C., Marques, E. A. S., & da Silva, L. F. M. (2024). Effect of the Infill Density on 3D-Printed Geometrically Graded Impact Attenuators. Polymers, 16(22), 1 – 16.

Doshi, M., Mahale, A., Singh, S. K., & Deshmukh, S. (2021). Printing parameters and materials affecting mechanical properties of FDM-3D printed Parts: Perspective and prospects. Materials Today: Proceedings, 50, 2269–2275.

Ftoutou, E., Allegue, L., Marouani, H., Hassine, T., Fouad, Y., & Mrad, H. (2024). Modeling of Effect of Infill Density Percentage on Rotating Bending Fatigue Behavior of Additive-Manufactured PLA Polymers. Materials, 17(2), 1 – 13.

Geng, P., Zhao, J., Wu, W., Ye, W., Wang, Y., Wang, S., & Zhang, S. (2019). Effects of extrusion speed and printing speed on the 3D printing stability of extruded PEEK filament. Journal of Manufacturing Processes, 37(November 2018), 266–273.

Hamoud, M., Elshalakany, A. B., Gamil, M., & Mohamed, H. (2024). Investigating the influence of 3D printing parameters on the mechanical characteristics of FDM fabricated (PLA/Cu) composite material. International Journal of Advanced Manufacturing Technology, 134(7–8), 3769–3785.

Jackson, B., Fouladi, K., & Eslami, B. (2022). Multi-Parameter Optimization of 3D Printing Condition for Enhanced Quality and Strength. Polymers, 14(8), 1 – 13.

Kamer, M. S., Temiz, ?., Yayka?li, H., Kaya, A., & Akay, O. (2022). Effect of Printing Speed on Fdm 3D-Printed Pla Samples Produced Using Different Two Printers. International Journal of 3D Printing Technologies and Digital Industry, 6(3), 438–448.

Kechagias, J. D. (2024). 3D printing parametric optimization using the power of Taguchi design: an expository paradigm. Materials and Manufacturing Processes, 39(6), 797–803.

Khan, I., Tariq, M., Abas, M., Shakeel, M., Hira, F., Al Rashid, A., & Koç, M. (2023). Parametric investigation and optimisation of mechanical properties of thick tri-material based composite of PLA-PETG-ABS 3D-printed using fused filament fabrication. Composites Part C: Open Access, 12(August), 1 – 13. 100392.

Kotlinski, J. (2014). Mechanical properties of commercial rapid prototyping materials. Rapid Prototyping Journal, 20(6), 499–510

Kuang, X., Zhao, Z., Chen, K., Fang, D., Kang, G., & Qi, H. J. (2018). High-Speed 3D Printing of High-Performance Thermosetting Polymers via Two-Stage Curing. Macromolecular Rapid Communications, 39(7), 1–8.

Liu, Y., Bai, W., Cheng, X., Tian, J., Wei, D., Sun, Y., & Di, P. (2021). Effects of printing layer thickness on mechanical properties of 3D-printed custom trays. Journal of Prosthetic Dentistry, 126(5), 1 – 7. 671. e1-671.e7.

Loskot, J., Jezbera, D., Loskot, R., Bušovský, D., Barylski, A., Glowka, K., Duda, P., Anio?ek, K., Voglová, K., & Zubko, M. (2023). Influence of print speed on the microstructure, morphology, and mechanical properties of 3D-printed PETG products. Polymer Testing, 123, 1 – 14, 108055. https://doi.org/https://doi.org/10.1016/j.polymertesting.2023.108055

Lundberg, O., Afriyie, R., Aronsson, D., Sas, G., Shanmugam, V., Jiang, L., Qiang, X., Michael, F., Hedenqvist, M., & Das, O. (2022). The effect of infill density on the fire properties of polylactic acid 3D printed parts: A short communication. 111(April), 0–2.

Mayandi, K., Rigesh, K., Nagarajan, R., Ismail, S. O., Krishnan, K., Mohammad, F., & Al-Lohedan, H. A. (2024). Effects of infill density on mechanical properties of additively manufactured chopped carbon fiber reinforced PLA composites. Materials Science- Poland, 42(1), 42–51.

Newman, I., & Newman, C. (2000). A discussion of low r-squares: Concerns and uses. Educational Research Quarterly, 24, 3–9.

Nugroho, A., Ardiansyah, R., Rusita, L., & Larasati, I. L. (2018). Effect of layer thickness on flexural properties of PLA (PolyLactid Acid) by 3D printing. Journal of Physics: Conference Series, 1130(1), 0–10.

Sabarish, K. V, & Paul, P. (2020). Optimizing the concrete materials by L9 orthogonal array. Materials Today: Proceedings, 22, 460–464.

Shergill, K., Chen, Y., & Bull, S. (2023). An investigation into the layer thickness effect on the mechanical properties of additively manufactured polymers: PLA and ABS. The International Journal of Advanced Manufacturing Technology, 126(7), 3651–3665.

Shubham, P., Sikidar, A., & Chand, T. (2016). The influence of layer thickness on mechanical properties of the 3D printed ABS polymer by fused deposition modeling. Key Engineering Materials, 706(September), 63–67.

Song, S., Zhang, J., Liu, M., Li, F., & Bai, S. (2023). Effect of build orientation and layer thickness on manufacturing accuracy, printing time, and material consumption of 3D printed complete denture bases. Journal of Dentistry, 130(09), 1 – 7, 104435.

Song, Y. L., Yu, N., Danny, B. P. T., & Chew, M. T. (2022). A pilot study on three-dimensional printing of stainless steel arch bars for orthognathic segmental jaw surgeries. Annals of 3D Printed Medicine, 6, 100055, 1 – 8.

Sriya Ambati, S., & Ambatipudi, R. (2022). Effect of infill density and infill pattern on the mechanical properties of 3D printed PLA parts. Materials Today: Proceedings, 64, 804–807.

Sultana, J., Rahman, M. M., Wang, Y., Ahmed, A., & Xiaohu, C. (2024). Influences of 3D printing parameters on the mechanical properties of wood PLA filament: an experimental analysis by Taguchi method. Progress in Additive Manufacturing, 9(4), 1239–1251.

Suteja, J. (2021). Effect of Infill Pattern, Infill Density, and Infill Angle on the Printing Time and Filament Length of 3D Printing. Jurnal Rekayasa Mesin, 12(1), 145 – 152.

Suteja, T. J., & Soesanti, A. (2020). Mechanical Properties of 3D Printed Polylactic Acid Product for Various Infill Design Parameters: A Review. Journal of Physics: Conference Series, 1569(4), 0–6.

Tanveer, M. Q., Haleem, A., & Suhaib, M. (2019). Effect of variable infill density on mechanical behaviour of 3-D printed PLA specimen: an experimental investigation. SN Applied Sciences, 1(12), 1–12. https://doi.org/10.1007/s42452-019-1744-1

Tetsuka, H., & Shin, S. R. (2020). Materials and technical innovations in 3D printing in biomedical applications. Journal of Materials Chemistry B, 8(15), 2930–2950.

Travieso-Rodriguez, J. A., Jerez-Mesa, R., Llumà, J., Traver-Ramos, O., Gomez-Gras, G., & Rovira, J. J. R. (2019). Mechanical properties of 3D-printing polylactic acid parts subjected to bending stress and fatigue testing. Materials, 12(23), 1 – 20.

Vaezi, M., & Chua, C. K. (2011). Effects of layer thickness and binder saturation level parameters on 3D printing process. International Journal of Advanced Manufacturing Technology, 53(1–4), 275–284.

Yang, T. C., & Yeh, C. H. (2020). Morphology and mechanical properties of 3D printed wood fiber/polylactic acid composite parts using Fused Deposition Modeling (FDM): The effects of printing speed. Polymers, 12(6), 1 – 13. 1334.

Zhang, Z. chen, Li, P. lun, Chu, F. ting, & Shen, G. (2019). Influence of the three-dimensional printing technique and printing layer thickness on model accuracy. Journal of Orofacial Orthopedics, 80(4), 194–204.

Published

2025-06-30