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June 26, 2026Journal of Composite Materials0 citations

Development and performance evaluation of sustainable 3D-Printed PLA composites reinforced with sword bean microfibers and teff straw-derived biosilica

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PVP. VivekanandanTPT. PrakashBEBalaji E

Key Points

  • This research aims to develop sustainable 3D-printed PLA composites enhanced with natural fiber reinforcements.
  • PLA was reinforced with GPTMS-treated sword bean microfibers and teff straw-derived biosilica.
  • Hybrid composites were created using twin-screw extrusion and fused deposition modelling.
  • Mechanical, thermal, and water absorption tests were conducted on the manufactured composites.
  • The optimal composite (30 vol. % microfiber and 3 vol. % biosilica) achieved 126 MPa tensile strength and 137 MPa flexural strength.
  • The impact energy recorded was 4.55 J, with a hardness of 82 Shore D and thermal conductivity at 0.45 W/mK.
  • The composite showed 1.49% less water absorption compared to other mixtures.

Abstract

Polylactic acid (PLA) was reinforced with glycidoxypropyltrimethoxysilane (GPTMS)-treated sword bean microfibers and teff straw-derived biosilica in sustainable hybrid composites that were created using twin-screw extrusion and fused deposition modelling. Hydrophilic reinforcements and PLA matrix interface compatibility was improved through surface treatment with GPTMS. A variety of mechanical, thermal, and water absorption tests were performed on the manufactured composites. When hybrid reinforcements were used, performance was noticeably improved. The optimal mixture of 30 vol. % microfiber and 3 vol. % biosilica (PSB2) demonstrated superior overall characteristics, yielding 126 MPa for tensile strength, 137 MPa for flexural strength, 4.55 J for impact energy, 82 Shore D for hardness, 0.45 W/mK for thermal conductivity, and 1.49 % less water absorption. The creation of an efficient hybrid reinforcement network, enhanced interfacial bonding, and uniform biosilica dispersion are the reasons behind these improvements. The constructed composites are well-suited for high-tech structural and functional uses, as the results show that they are strong, robust, thermally efficient, and moisture resistant.

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Cite This Study

Vivekanandan et al. (2026) studied this question.

synapsesocial.com/papers/6a3e193b030ad1a9b3091f9chttps://doi.org/10.1177/00219983261463650
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