4.7 Article

Interfacial enhancements between a three-dimensionally printed Honeycomb-Truss core and woven carbon fiber/polyamide-6 facesheets in sandwich-structured composites

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.compositesa.2021.106534

关键词

Sandwich structures; Interface/Interphase; 3-D Printing; Resin transfer moulding (RTM)

资金

  1. International Collaborative Technology Development Program (EUREKA Network) - Ministry of Trade, Industry and Energy (MOTIE) of Korea through Korea Institute for Advancement of Technology (KIAT) [P123800014]
  2. Ulsan National Institute of Science and Technology [1.210036]

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A novel sandwich-structured composite was fabricated and characterized, consisting of a 3D printed core and a woven carbon fiber/polyamide-6 facesheet. The use of 3D printing technology, interfacial strengthening techniques, and T-RTM process resulted in synergistic effects on mechanical properties, enhancing compressive properties and impact resistance significantly.
A novel sandwich-structured composite comprising a three-dimensionally (3D) printed core and a woven carbon fiber/polyamide-6 facesheet was fabricated and characterized. By using selective laser sintering, which is a 3D printing technology, a structurally reinforced honeycomb-truss hybrid core was produced, which had superior compressive stiffness in various directions compared with conventional honeycomb cores. The interface between the core and the facesheet was enhanced by laser power control during the sintering as well as plasma surface treatment. The sandwich composite was produced by the reactive thermoplastic resin transfer molding (T-RTM) technique using anionic polymerization of epsilon-caprolactam, which has an ultra-low viscosity in the molten state. This in-situ polymerization not only enabled manufacturing process simplification by combining fabrication and bonding processes of the facesheet, but also provided excellent resin impregnation into the fiber fabrics and core surface. Therefore, the 3D printing technology, interfacial strengthening techniques, and T-RTM process induced synergistic effects on mechanical properties of the sandwich composite by forming structural reinforcement and strong mechanical and chemical interactions. The edgewise compressive properties of the hybrid core were significantly better than those of a normal honeycomb core. In addition, the interlaminar fracture toughness, impact energy absorption, and penetration limit of the sandwich composite consisting of the structurally and interfacially strengthened hybrid core increased by 76, 77, and 125%, respectively, compared to those of a nonreinforced sandwich composite.

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