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March 13, 2026Eng—Advances in Engineering1 citationsOpen Access

Optimisation of 3D Printing Parameters to Enhance the Ultimate Tensile Strength of PA6 Polymer Products

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JMJure MarijićMKMirko KarakašićIGIvan Grgić

Key Points

  • To investigate how different process parameters influence the tensile strength of PA6 polymer products.
  • Investigated nozzle temperature, infill density, and infill geometry effects on tensile strength.
  • Used Central Composite Design (CCD) for modelling and optimization.
  • Conducted preliminary and main experiments to analyze parameters.
  • Increased nozzle temperature and infill density enhances tensile strength.
  • Achieved maximum tensile strength of 17.705 MPa with specific optimized parameters.
  • Model validation showed a high coefficient of determination (R2 = 0.8958).

Abstract

Additive manufacturing (AM) technologies are a key tool in producing complex and functional polymer parts, with Fused Deposition Modelling (FDM) emerging as the most widely used technique. PA6 polyamide is gaining increasing importance due to its high strength, wear resistance and processability, making it suitable for polymer product manufacturing. However, the mechanical properties of PA6 FDM components are largely determined by process parameters, and their optimisation is necessary to achieve stable and reliable properties. In this study, the influence of nozzle temperature, infill density and infill geometry on the tensile strength of PA6 specimens was investigated. The Central Composite Design (CCD) method was used for process modelling and optimisation, along with statistical analysis and experimental validation. The individual effects of the analysed parameters were confirmed by a preliminary experiment, while a detailed analysis of their mutual relationships was enabled through the main experiment. Analysis of the results showed that increasing both temperature and infill density positively affects tensile strength, regardless of the infill structure. The accuracy and reliability of the model were confirmed by validation, with a coefficient of determination R2 = 0.8958 and a high level of agreement between experimental and predicted data. By optimising the process parameters, maximum tensile stresses of 17.705 MPa were achieved with an infill density of 74.142%, a Triangle-Hexa infill pattern, and a nozzle temperature of 254.142 °C. The confirmation experiment validated the optimised parameters, and the results provide a statistically validated framework for optimising the tensile performance of PA6 components manufactured by FDM under controlled laboratory conditions.

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Cite This Study

Marijić et al. (2026) studied this question.

synapsesocial.com/papers/69b3ac8102a1e69014cce356https://doi.org/10.3390/eng7030127
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