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April 12, 2026Polymers0 citationsOpen Access

High-Performance PA6 Composites Reinforced with Recycled Aramid Fibers from Firefighter Protective Clothing

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JMJoaquín Marco-SanjuanCLCarlos Lazaro-HerdezMMMario Miranda-Pinzon

Key Points

  • The aim is to develop high-performance thermoplastic composites using recycled aramid fibers from firefighter clothing.
  • Utilized recycled aramid-rich textile waste as reinforcement for polyamide 6.
  • Manufactured composites with varying wt.% of recycled textile waste using melt compounding and injection molding.
  • Applied amino-functional silane for compatibilization to improve interfacial adhesion among components.
  • Conducted systematic characterization of composites, including tensile properties and thermal behavior.
  • Achieved tensile strength of 78 MPa at 30 wt.% reinforcement from an initial 65 MPa for neat PA6.
  • Elastic modulus surpassed 5000 MPa at high reinforcement contents, indicating superior stiffness.
  • Achieved HDT values of 173 °C for highly reinforced systems, up from 55 °C for neat PA6.
  • Classified UL-94 V-0 flame retardancy at 30 wt.% reinforcement without additional additives.

Abstract

The recycling of technical textile waste represents a major challenge due to the complex and multilayered structure of these materials. Firefighter protective clothing, mainly composed of high-performance aramid fibers combined with polymeric membranes and auxiliary textile components, is commonly landfilled or incinerated at the end of its service life, resulting in a significant environmental impact. This work utilized recycled aramid-rich textile waste obtained from end-of-life firefighter protective clothing as reinforcement for polyamide 6 to develop high-performance thermoplastic composites within a circular economy framework. Composites containing 15, 30, 45, and 60 wt.% of recycled textile waste were manufactured by melt compounding followed by injection molding. In addition, a selected formulation containing 30 wt.% reinforcement was compatibilized using an amino-functional silane to improve interfacial adhesion. The materials were systematically characterized in terms of tensile properties, thermal behavior, thermomechanical performance, water uptake, flammability, colorimetric properties, and fracture morphology by field emission scanning electron microscopy. The results revealed a pronounced increase in stiffness and thermomechanical stability, with tensile strength increasing from approximately 65 MPa for neat PA6 up to 78 MPa at 30 wt.% reinforcement, and elastic modulus exceeding 5000 MPa at high reinforcement contents. An optimal balance between mechanical performance and ductility was achieved at 30 wt.% reinforcement, while higher contents enabled a substantial extension of the service temperature range, with HDT values increasing from 55 °C for neat PA6 up to 173 °C for highly reinforced systems. FESEM analysis confirmed improved interfacial adhesion in silane-compatibilized systems, explaining the enhanced mechanical and thermomechanical behavior. Furthermore, the incorporation of recycled aramid-rich textile waste led to a significant improvement in flame retardancy, enabling UL-94 V-0 classification at 30 wt.% reinforcement and above, without the use of additional flame-retardant additives, enabling UL-94 V-0 classification without additional flame-retardant additives. Overall, this study demonstrates the technical feasibility and high added-value potential of valorizing firefighter protective clothing waste into advanced PA6-based composites with enhanced mechanical, thermal, and fire-resistant properties, providing a sustainable route for the valorization of high-performance textile waste.

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Cite This Study

Marco-Sanjuan et al. (2026) studied this question.

synapsesocial.com/papers/69db37b04fe01fead37c5b13https://doi.org/10.3390/polym18080931
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