Isotropic 3D printing using material extrusion of thin shell and post-casting of reinforcement core

Additive Manufacturing - Tập 58 - Trang 102974 - 2022
Jihyuck Son1, Seounghee Yun1, Kundo Park1, Seunghwa Ryu1, Sanha Kim1
1Department of Mechanical Engineering, Korea Advanced Institute of Science and Technology, Daejeon 34141, South Korea

Tài liệu tham khảo

Rayna, 2016, From rapid prototyping to home fabrication: how 3D printing is changing business model innovation, Technol. Forecast. Soc. Change, vol. 102, 214, 10.1016/j.techfore.2015.07.023 Ngo, 2018, Additive manufacturing (3D printing): a review of materials, methods, applications and challenges, vol. 143, 172 Casavola, 2016, Orthotropic mechanical properties of fused deposition modelling parts described by classical laminate theory, Mater. Des., vol. 90, 453, 10.1016/j.matdes.2015.11.009 Cuan-Urquizo, 2019, Characterization of the mechanical properties of FFF structures and materials: a review on the experimental, computational and theoretical approaches, Materials, vol. 16, 10.3390/ma12060895 Vǎlean, 2020, Effect of manufacturing parameters on tensile properties of FDM printed specimens, Procedia Struct. Integr., vol. 26 Li, 2002, Composite modeling and analysis for fabrication of FDM prototypes with locally controlled properties, J. Manuf. Process., vol. 4, 129, 10.1016/S1526-6125(02)70139-4 Butt, 2020, Investigating the effects of annealing on the mechanical properties of FFF-printed thermoplastics, J. Manuf. Mater. Process., vol. 4, 1 Chacón, 2017, Additive manufacturing of PLA structures using fused deposition modelling: Effect of process parameters on mechanical properties and their optimal selection, Mater. Des., vol. 124, 143, 10.1016/j.matdes.2017.03.065 Durgun, 2014, Experimental investigation of FDM process for improvement of mechanical properties and production cost, Rapid Prototyp. J., vol. 20, 228, 10.1108/RPJ-10-2012-0091 Gebisa, 2018, Investigating effects of Fused-deposition modeling (FDM) processing parameters on flexural properties of ULTEM 9085 using designed experiment, Materials, vol. 11, 1, 10.3390/ma11040500 S. Madhukar, M. Diego A..de, C. Aleksander, “Flexural behavior of fdm parts: experimental, analytical and numerical study Madhukar Somireddy*, Diego A. de Moraes*, and Aleksander Czekanski* *Department of Mechanical Engineering, York University, Toronto, ON, M3J 1L4, Canada,” 2012. Somireddy, 2019, Analysis of the material behavior of 3D printed laminates Via FFF, Exp. Mech., vol. 59, 871, 10.1007/s11340-019-00511-5 Zaldivar, 2017, Influence of processing and orientation print effects on the mechanical and thermal behavior of 3D-Printed ULTEM ® 9085 Material, Addit. Manuf., vol. 13, 71 Ahn, 2002, Anisotropic material properties of fused deposition modeling ABS, Rapid Prototyp. J., vol. 8, 248, 10.1108/13552540210441166 Garzon-Hernandez, 2020, Design of FDM 3D printed polymers: an experimental-modelling methodology for the prediction of mechanical properties, Mater. Des., vol 188, 10.1016/j.matdes.2019.108414 Zhang, 2018, Interfacial bonding strength of short carbon fiber/acrylonitrile-butadiene-styrene composites fabricated by fused deposition modeling, Compos. Part B Eng., vol. 137, 51, 10.1016/j.compositesb.2017.11.018 Jia, 2019, 3D printing of biomimetic composites with improved fracture toughness, Acta Mater., vol. 173, 61, 10.1016/j.actamat.2019.04.052 Yavas, 2021, “Fracture behavior of 3D printed carbon fiber-reinforced polymer composites,”, Compos. Sci. Technol., vol. 208, 10.1016/j.compscitech.2021.108741 Yavas, 2021, Interlaminar shear behavior of continuous and short carbon fiber reinforced polymer composites fabricated by additive manufacturing, Compos. Part B Eng., vol. 204, 10.1016/j.compositesb.2020.108460 Young, 2018, Interlayer fracture toughness of additively manufactured unreinforced and carbon-fiber-reinforced acrylonitrile butadiene styrene, Addit. Manuf., vol. 22 Go, 2017, Fast Desktop-Scale Extrusion Additive Manufacturing, Addit. Manuf., vol. 18, 276 Go, 2017, Rate limits of additive manufacturing by fused filament fabrication and guidelines for high-throughput system design, Addit. Manuf., vol. 16, 1 Goh, 2021, vol. 54 Holzmond, 2017, In situ real time defect detection of 3D printed parts, Addit. Manuf., vol. 17, 135 Duty, 2019, Z-Pinning approach for 3D printing mechanically isotropic materials, Addit. Manuf., vol. 27, 175 Kazmer, 2020, Injection printing: additive molding via shell material extrusion and filling, Addit. Manuf., vol. 36 Shah, 2010, Evaluation of cure shrinkage measurement techniques for thermosetting resins, Polym. Test., vol. 29, 629, 10.1016/j.polymertesting.2010.05.001 Sataloff, 1987, Adhes Adhes Beer, 1999, Mech. Mater. ASTM. (2014). Standard test method for determination of the mode II interlaminar fracture toughness of unidirectional fiber-reinforced polymer matrix composites. ASTM International, 1–18. Deng, 2015, Thermoplastic-epoxy interactions and their potential applications in joining composite structures - a review, Compos. Part A Appl. Sci. Manuf., vol. 68, 121, 10.1016/j.compositesa.2014.09.027 Ji, 2020, Effect of acetone on mechanical properties of epoxy used for surface treatment before adhesive bonding, Polym. Test., vol. 86, 10.1016/j.polymertesting.2020.106492 Goh, 2021, Additively manufactured continuous carbon fiber-reinforced thermoplastic for topology optimized unmanned aerial vehicle structures, Compos. Part B: Eng., Volume 216, 10.1016/j.compositesb.2021.108840 Heidari-Rarani, 2019, Mechanical characterization of FDM 3D printing of continuous carbon fiber reinforced PLA composites, Compos. Part B Eng., Volume 175, 10.1016/j.compositesb.2019.107147