Mechanical Characterization and Production of Various Shapes Using Continuous Carbon Fiber-Reinforced Thermoset Resin-Based 3D Printing

被引:6
作者
Islam, Md Zahirul [1 ]
Rahman, Md Atikur [1 ]
Gibbon, Luke [1 ]
Hall, Eric [1 ]
Ulven, Chad A. [1 ]
La Scala, John J. [2 ]
机构
[1] North Dakota State Univ NDSU, Coll Engn, Mech Engn Dept, Dept 2490,POB 6050, Fargo, ND 58108 USA
[2] Combat Capabil Dev Command Army Res Lab, FCDD RLW MD, Aberdeen, MD 57401 USA
关键词
continuous carbon fiber reinforcement; light-assisted 3D printing; thermoset resin; print path optimization; complex shape printing; POLYMER COMPOSITES; PERFORMANCE; STRENGTH; VOIDS; GLASS;
D O I
10.3390/polym16131828
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
Continuous carbon fiber-reinforced (CCFR) thermoset composites have received significant attention due to their excellent mechanical and thermal properties. The implementation of 3D printing introduces cost-effectiveness and design flexibility into their manufacturing processes. The light-assisted 3D printing process shows promise for manufacturing CCFR composites using low-viscosity thermoset resin, which would otherwise be unprintable. Because of the lack of shape-retaining capability, 3D printing of various shapes is challenging with low-viscosity thermoset resin. This study demonstrated an overshoot-associated algorithm for 3D printing various shapes using low-viscosity thermoset resin and continuous carbon fiber. Additionally, 3D-printed unidirectional composites were mechanically characterized. The printed specimen exhibited tensile strength of 390 +/- 22 MPa and an interlaminar strength of 38 +/- 1.7 MPa, with a fiber volume fraction of 15.7 +/- 0.43%. Void analysis revealed that the printed specimen contained 5.5% overall voids. Moreover, the analysis showed the presence of numerous irregular cylindrical-shaped intra-tow voids, which governed the tensile properties. However, the inter-tow voids were small and spherical-shaped, governing the interlaminar shear strength. Therefore, the printed specimens showed exceptional interlaminar shear strength, and the tensile strength had the potential to increase further by improving the impregnation of polymer resin within the fiber.
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页数:20
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