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April 29, 2026Polymers0 citationsOpen Access

Assessing Natural Fillers as Substitutes for Glass Fibers in Polyamide 6 Composites for Large-Format Additive Manufacturing

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ASAlessandro SorzeFVFrancesco ValentiniSSSofia Santi

Key Points

  • This work aims to investigate natural fillers as sustainable substitutes for glass fibers in polyamide 6 composites for additive manufacturing.
  • Examined rheological, morphological, and thermo-mechanical properties of composites with ≤ 10 wt% natural fillers compared to 30 wt% GF-reinforced PA6.
  • Conducted flexural tests and thermal analyses to assess mechanical and thermal performance.
  • Analyzed printing quality and filler dispersion in preliminary LFAM components.
  • Silica- and clay-filled samples showed similar rheological responses to GF-filled reference composites.
  • Calcium carbonate-filled composites achieved thermal conductivity of ≥0.42 W/mK, comparable to GF-filled PA6.
  • Flexural tests indicated that silica and calcium carbonate enhanced mechanical properties and reduced anisotropy in components.

Abstract

This work investigated the potential of different natural fillers, i.e., clay, calcium carbonate, and silica, as sustainable alternatives to glass fibers (GFs) in polyamide 6 (PA6) for Large-Format Additive Manufacturing (LFAM) applications in order to guarantee the chemical recyclability of the produced materials. Specifically, PA6-based composites containing ≤ 10 wt% natural fillers were compared with a conventional system (30 wt% GF-reinforced PA6) from rheological, morphological and thermo-mechanical perspectives. Rheological analysis showed that silica- and clay-filled samples displayed similar rheological response to the GF-filled reference due to their large particle size. Thermal analyses revealed a slight increase in crystallinity (up to 32%) for filled samples, indicating a potential nucleating effect of the natural fillers. Calcium carbonate-filled composites achieved thermal conductivity values comparable to the GF-filled reference (≥0.42 W/mK) indicating a high heat dissipation capability during printing operations. Morphological analysis performed on preliminary LFAM components revealed satisfactory printing quality and good filler dispersion. Flexural tests showed that silica and calcium carbonate could provide a balanced mechanical response, thereby reducing the anisotropy of printed components. These results demonstrated that the addition of suitable natural fillers at limited concentrations (≤10 wt%) can represent a lightweight and eco-sustainable alternative to GF reinforcement in LFAM applications.

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Cite This Study

Sorze et al. (2026) studied this question.

synapsesocial.com/papers/69f19f9cedf4b46824806586https://doi.org/10.3390/polym18091049
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