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February 2, 2026Progress in Rubber Plastics and Recycling Technology1 citations

Thermo-mechanical behavior of 3D printed ABS under varying printing parameters

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MAMustafa AslanKaradeniz Technical UniversityKÇKutay ÇavaKaradeniz Technical UniversityOGOnur GülerKaradeniz Technical University

Key Points

  • The research aims to understand how airflow rate and layer thickness affect the mechanical and thermal behavior of 3D-printed ABS.
  • Conducted tensile and compressive tests on 3D printed ABS samples with varying airflow rates and layer thicknesses.
  • Analyzed thermal properties using thermal imaging and differential scanning calorimetry (DSC).
  • Measured temperature changes to visualize effects of cooling rates on material properties.
  • Decreasing layer thickness from 0.3 mm to 0.05 mm significantly increased tensile properties.
  • Compressive strength showed comparatively less impact from changes in layer thickness.
  • Airflow rate had a greater effect on mechanical and thermal properties at thinner layers.
  • Thermal analysis indicated dramatic temperature drops due to swift cooling, impacting material characteristics.

Abstract

The study investigates the combined effects of airflow rate (AR) and layer thickness (LT) on the mechanical and thermal behavior of 3D-printed Acrylonitrile Butadiene Styrene (ABS). A series of tensile and compressive tests were performed, varying the LT and AR to understand their influence on mechanical robustness. In parallel, thermal properties were analyzed using thermal imaging and differential scanning calorimetry (DSC). It was observed that decreasing LT from 0.3 mm to 0.05 mm significantly increased tensile properties, with comparatively less impact on compressive strength. The AR’s influence was more pronounced at thinner layers, affecting both mechanical and thermal properties. Thermal analyses provided a dynamic view of temperature changes, with swift cooling leading to dramatic temperature drops. The DSC highlighted variations in glass transition and thermal degradation temperatures between extruded ABS and its filament form, with higher cooling rates elevating the glass transition temperatures. This study elucidates the complex relationship between 3D printing parameters and the resulting properties of ABS, offering insights that could revolutionize the printing process and material customization, particularly for applications demanding high mechanical strength and thermal stability.

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Cite This Study

Aslan et al. (2026) studied this question.

synapsesocial.com/papers/6980fff5c1c9540dea812ee3https://doi.org/10.1177/14777606261422746
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