- By:
- Wasti, Sanjita ; Talabi, Segun I; Hubbard, Amber M; Chawla, Komal ; Owusu, Adwoa K; Mungale, Chinmay V; Vaidya, Uday K; Hassen, Ahmed A; Ozcan, Soydan ; Tekinalp, Halil L; Kumar, Vipin
- Journal Name:
- Composites Part B: Engineering
- Page Number:
- 113799
- Volume:
- 323
- Publication Date:
- May 26, 2026
- View DOI Listing:
- https://doi.org/10.1016/j.compositesb.2026.113799
Abstract
Traditional extrusion-based additive manufacturing is limited to single material systems, restricting the multifunctional properties of composites. To overcome this limitation, multiplexed additive manufacturing–compression molding (AM-CM) was employed to fabricate multi-material thermoplastic composites with spatially tailored architectures. Neat acrylonitrile butadiene styrene (ABS) and 20 wt% carbon-fiber reinforced ABS (CF-ABS) were co-extruded through a core–sheath nozzle to produce hybrid composites with neat ABS as sheath (30-50 wt%) and CF-ABS as core (50 – 70 wt%). The results show that the hybrid composites have balance of mechanical and thermomechanical performance. The tensile strength and modulus of hybrid composites exhibited a 61–95% and 173–473% increase compared to neat ABS with increases in CF-ABS content whereas the impact resistance improved by 41% compared to CF-ABS at 50 wt% ABS. Additionally, hybrid composites showed significant reduction (54 - 70%) in creep strain at 100 °C compared to neat ABS. These findings demonstrate that multiplexed AM-CM enables tunable structure–property relationships, reducing CF-ABS usage up to 50 wt% while maintaining balanced stiffness, toughness, and creep resistance.