- By:
- Wasti, Sanjita ; Talabi, Segun I; Hubbard, Amber M; Owusu, Adwoa K; Kumar, Vipin ; Tekinalp, Halil L; Mungale, Chinmay V; Vaidya, Uday K; Hassen, Ahmed A; Ozcan, Soydan
- Page Number:
- 870-882
- Book Title:
- Society for the Advancement of Material and Process Engineering Conference (SAMPE 2026) Proceedings
- Publication Date:
- May 29, 2026
- Conference Name:
- Society for the Advancement of Material and Process Engineering Conference (SAMPE 2026) Proceedings
- Conference Location:
- Seattle, Washington, United States of America
- Conference Sponsor:
- SAMPE
- View DOI Listing:
- https://doi.org/10.33599/nasampe/s.26.77
Abstract
The growing demand for hybrid polymer composites with multifunctional properties has led to the development of various hybridization techniques, such as multi-material compounding and controlled laminate stacking sequence. In this study, a novel hybrid manufacturing approach was used by integrating a multiplexing extrusion system (MExS) based on additive manufacturing with subsequent compression molding process. This technique enabled the co-extrusion of different materials during the additive manufacturing process to fabricate composites with tailored performance. The developed hybrid composite featured a skin layer of glass fiberreinforced polycarbonate (PC/GF) encapsulating a carbon fiber-reinforced acrylonitrile butadiene styrene (CF/ABS) core. The structure was engineered to promote improved thermal and impact resistance at the surface, supported by a stiff core for enhanced overall mechanical integrity. Mechanical, thermal and morphological properties of the hybrid composites were investigated to understand trade-offs in performance compared to a single-material system. The results demonstrate that this approach enables the production of multifunctional composites suitable for applications such as automotive body panels and protective housings, where a balance of weight, mechanical strength, and thermal performance is essential.