Title: Microstructural Characterization of Sheet Lamination-Based Additively Manufactured Fiber-Reinforced Thermoplastic Composites
Authors: Samiul Alam, Devin Young, Dae Han Sung, Juhyeong Lee
DOI: 10.33599/nasampe/s.25.0034
Abstract: Additive manufacturing (AM) of fiber-reinforced composites has garnered significant interest for its versatility in creating intricate parts and rapid prototyping. Short fiber-reinforced composites are typically fabricated through fused deposition modeling (FDM), but they possess several challenges including limited fiber volume fraction, low printing speed, and low throughput for industry scales. Composite-based additive manufacturing (CBAM) is a novel sheet lamination-based AM process, combining non-woven fabric reinforcement with thermoplastic materials to fabricate three-dimensional objects. CBAM offers notable advantages over FDM, including the potential for achieving higher fiber volume fractions and faster production rates, making it a promising technology for further investigation in composite manufacturing. This paper investigates the microstructural characteristics and porosity analyses of non-woven carbon fabric reinforced nylon composites (CF-PA12) manufactured by CBAM and FDM. Test coupons were fabricated in flatwise and edgewise printing orientations. Micro-computed tomography (μCT) analysis revealed that the CBAM specimens contained significantly lower porosity than FDM specimens and had more uniformly distributed smaller porous regions. CBAM flatwise specimens were less porous than edgewise specimens attributed to the comparatively higher number of sheets in edgewise orientation. This study highlights the microstructural characteristics of mechanical test specimens prepared using CBAM and FDM, emphasizing the lower porosity and smaller, more uniformly distributed pores in CBAM specimens which enhance its material integrity and performance, offering a foundation for further development in composite AM technology.
References: 1. H. Xu, P.T. Evers. Lightweight reinforced thermoplastic composite with improved formability. SPE ACCE, Novi, MI, September 4-6, 2019. 2. L. Wei and L. Scott. Poly-coated paper laminated onto lightweight reinforced thermoplastic composite panel via in-line lamination. In proceedings of CAMX - The Composites and Advanced Materials Expo, Dallas, TX, October 16-18, 2018. 3. L. Wei, R. Wang, and M.O. Mason. Light-weight reinforced thermoplastic composites with new design for recreational vehicles. In proceedings of CAMX - The Composites and Advanced Materials Expo, Anaheim, CA, September 23-26, 2019. 4. L. Wei, R. Wang, and M.O. Mason. In-line laminate decorative thermoplastic composite panel. May 10-21, 2021. 5. R. Wang and Y. Yang. Flame retardant and acoustic light-weight reinforced thermoplastic panel. In proceedings of CAMX - The Composites and Advanced Materials Expo, Orlando, FL, September 11-14, 2017. 6. L. Wei and L. Scott. Poly-coated paper laminated onto lightweight reinforced thermoplastic composite panel via in-line lamination. In proceedings of CAMX - The Composites and Advanced Materials Expo, Dallas, TX, October 16-18, 2018. SAMPE Conference & Exhibition, May 19-22, 2025, Indianapolis, Indiana, USA 7. L. Wei, R. Wang, and M.O. Mason. Light-weight reinforced thermoplastic composites with new design for recreational vehicles. In proceedings of CAMX - The Composites and Advanced Materials Expo, Anaheim, CA, September 23-26, 2019. 8. L. Wei, R. Wang, and M.O. Mason. In-line laminate decorative thermoplastic composite panel. May 10-21, 2021. 9. R. Wang and Y. Yang. Flame retardant and acoustic light-weight reinforced thermoplastic panel. In proceedings of CAMX - The Composites and Advanced Materials Expo, Orlando, FL, September 11-14, 2017. 10. Z. Yu, R. Wang, Y. Yang, M.O. Mason. Prepregs, Cores and Composite Articles including Synergistic and Compounded Flame Retardant Materials. Patent WO2017120171A1, 2017. 11. J. E. Winandy and J.J. Morrell. Improving the utility, performance, and durability of woodand bio-based composites. Annals of forest science, 2017: 74, 1-11. 12. M. Bomberg, M. Pazera, J. Zhang, and F. Haghighat. Weather resistive barriers: laboratory testing of moisture flow. In Ninth Canadian Conference on Building Science and Technology, 2003. 13. J. Singh, M. Kumar, S. Kumar, S.K. Mohapatra. Properties of Glass-Fiber Hybrid Composites: A Review. Polymer-Plastics Technology and Engineering. 2017;56(5), 455-469. 14. E.J. Biblis, Y.M. Chiu. Flexural strength and stiffness of southern pine plywood. Wood science and technology. 1970: 4(1), 70-77. 15. W.F. Stalter. Light-weight Paulowina based plywood. U.S. Patent 8,062,762, 2011. 16. J.F. Straube. The influence of low-permeance vapor barriers on roof and wall performance. Proceedings of Thermal Performance of Whole Buildings VIII, Clearwater, FL, 2001. 17. L. Wei, R. Wang, and M.O. Mason. Advancements in lightweight reinforced thermoplastic composites: versatile flat sheet manufacturing and applications. In proceedings of SAMPE Conference & Exhibition, Long Beach, California, USA, May 22-23, 2024. 18. A.E. Tiuc, O. Nemeş, H. Vermeşan, and A.C. Toma. New sound absorbent composite materials based on sawdust and polyurethane foam. Composites Part B: Engineering, 2019: 165, 120-130. 19. H. Ning, N. Lu, A.A. Hassen, K. Chawla, M. Selim, S.A. Pillay. A review of Long fibre thermoplastic (LFT) composites. International Materials Reviews. 2020: 65(3), 164-88.
Conference: SAMPE 2025
Publication Date: 2025/05/19
SKU: TP25-0000000034
Pages: 12
Price: $24.00
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