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February 26, 2026Materials3 citationsOpen Access

Research on the Preparation of Polylactic Acid/Bamboo Fiber Composite Materials and Their 3D Printing Process

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ZXZhenxiao XuZHZixin HuBWBin Wang

Key Points

  • This research aims to create and evaluate bamboo fiber-reinforced polylactic acid composites for orthopedic braces.
  • Prepared composites using melt blending of PLA and bamboo fiber.
  • Evaluated the effects of PBAT toughener, fiber content, and silane treatment on mechanical properties.
  • Assessed 3D printing capability by testing different nozzle temperatures and printing speeds.
  • Achieved an impact strength of 7.7 kJ/m2 with a PLA/PBAT ratio of 85/15 and 10 wt.% bamboo fiber.
  • Silane treatment improved the impact strength to a maximum of 11.3 kJ/m2 with a 2/98 silane/BF mass ratio.
  • Identified 35 mm/s as the optimal printing speed for successful fabrication, preventing model collapse.

Abstract

The increasing need for lightweight, personalized, and sustainable orthopedic braces has motivated the development of bamboo fiber (BF)-reinforced polylactic acid (PLA) composites. In this study, BF/PLA composites were prepared by melt blending. The effects of polybutylene adipate terephthalate (PBAT) toughener, BF content, and a silane coupling agent on the mechanical properties were evaluated, along with their suitability for 3D printing foot braces. The results showed that at a PLA/PBAT mass ratio of 85/15 and a bamboo fiber content of 10 wt.%, the impact strength of the composite reached 7.7 kJ/m2. Silane treatment of BF further improved the impact strength, with a maximum value of 11.3 kJ/m2 achieved at a silane/BF mass ratio of 2/98. The optimized composite exhibited good printability across nozzle temperatures of 190–210 °C. Printing speed significantly influenced the process; a speed of 35 mm/s enabled successful fabrication of the foot brace, whereas higher or lower speeds led to model collapse due to overheating or cracking caused by insufficient interlayer adhesion. This study successfully developed a bamboo fiber-reinforced PLA composite suitable for 3D printing of orthopedic braces and identified the optimal 3D printing process parameters.

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Cite This Study

Xu et al. (2026) studied this question.

synapsesocial.com/papers/699fe3ec95ddcd3a253e7f32https://doi.org/10.3390/ma19050851
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