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◆ Composites Part B Engineering2025-11-06· Materials science

Sustainable lunar additive manufacturing of high regolith-loaded PEKK composites for space infrastructure

Farshad Malekpour, Marjan Abdali, Krzysztof Skonieczny, Mohammad Azami, Mehdi Hojjati

原始摘要(英文原文)· Original abstract
Minimizing the cost and complexity of space missions requires sustainable strategies for in-situ manufacturing using local resources. Additive manufacturing, particularly material extrusion (MEX), offers a practical route for fabricating lunar infrastructure components from regolith-reinforced thermoplastics. This work presents the development and characterization of Polyether-Ketone-Ketone (PEKK)/Lunar Regolith Simulant (LRS) composites with loadings up to 60 wt%, fabricated via twin-screw extrusion. Thermal, rheological, and microstructural analyses revealed uniform LRS dispersion and identified a critical viscosity threshold above 30 wt% that coincides with a ductile-to-brittle fracture transition. Density and porosity measurements showed that annealing increased porosity at low filler contents but reduced it at high loadings through matrix densification. Mechanical testing confirmed the interplay between filler fraction, fracture mode, and post-processing, with annealed 60 wt% composites achieving a 13.7% tensile strength improvement compared to their as-printed counterparts. A novel adapted tensile strength model was proposed, explicitly integrating volume fraction, porosity, and fracture regime, and demonstrated strong agreement with experimental results across both amorphous and annealed states. Demonstration prints of complex lunar rover wheel prototypes validated printability at high regolith contents and highlighted superior dimensional stability after annealing. These findings establish a material–process–property framework for defect-controlled additive manufacturing of high-regolith composites, supporting the design of resilient, resource-efficient structures for long-term lunar infrastructure under extreme thermal cycling, radiation, and vacuum conditions to support sustainable in-situ aerospace additive manufacturing development for future space missions. • PEKK/Lunar regolith composites fabricated with up to 60 wt% loading via twin-screw extrusion. • A novel tensile strength model integrates filler fraction, porosity, and fracture regime. • Critical viscosity threshold (>30 wt% LRS) linked to ductile–brittle transition identified. • Annealing increases porosity at low LRS but decreases it at high loadings through densification. • Complex lunar rover wheels successfully 3D-printed at 50–60 wt% LRS with high stability.
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