Feasibility of Producing Core-Shell Filaments through Fused Filament Fabrication

被引:5
作者
Sover, Alexandru [1 ]
Ermolai, Vasile [1 ]
Raichur, Ashok M. [2 ]
Ciobanu, Romeo [3 ]
Aradoaei, Mihaela [3 ]
Lucanu, Nicolae [3 ]
机构
[1] Ansbach Univ Appl Sci, Tech Fac, Dept Technol, D-91522 Ansbach, Germany
[2] Indian Inst Sci, Dept Mat Engn, Bengaluru 560012, India
[3] Gheorghe Asachi Tech Univ, Dept Elect Measurements & Electrotech Mat, Iasi 700050, Romania
关键词
fused filament fabrication; multi-material; core-shell filament; 3D printed filament;
D O I
10.3390/polym13234253
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
Fused filament fabrication is a technology of additive manufacturing that uses molten thermoplastics for building parts. Due to the convenient shape of the raw material, a simple filament, the market offers a great variety of materials from simple to blends of compatible materials. However, finding a material with the desired properties can be difficult. Making it in-house or using a material manufacturer can be costly and time-consuming, especially when the optimum blend ratios are unknown or new design perspectives are tested. This paper presents an accessible method of producing core-shell filaments using material extrusion 3D printing. The printed filaments are characterised by a polycarbonate (PC) core and acryl butadiene styrene (ABS) shell with three material ratios. Their performance was investigated through printed samples. Additionally, the material mixing degree was studied by varying the extrusion temperature, nozzle feeding geometry, and layer thickness. The influence of all four factors was evaluated using a graphical representation of the main effects. The results showed that a core-shell filament can be processed using a 3D printer with a dual extrusion configuration and that the mechanical properties of the samples can be improved by varying the PC-ABS ratio. This research provides an accessible method for developing new hybrid filaments with a predesigned structure using a 3D printer.
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页数:13
相关论文
共 19 条
[1]   Additive manufacturing: Challenges, trends, and applications [J].
Abdulhameed, Osama ;
Al-Ahmari, Abdulrahman ;
Ameen, Wadea ;
Mian, Syed Hammad .
ADVANCES IN MECHANICAL ENGINEERING, 2019, 11 (02)
[2]   Enhanced Dimensional Accuracy of Material Extrusion 3D-Printed Plastics through Filament Architecture [J].
Ai, Jia-Ruey ;
Peng, Fang ;
Joo, Piljae ;
Vogt, Bryan D. .
ACS APPLIED POLYMER MATERIALS, 2021, 3 (05) :2518-2528
[3]   Fused Filament Fabrication Process: A Review of Numerical Simulation Techniques [J].
Al Rashid, Ans ;
Koc, Muammer .
POLYMERS, 2021, 13 (20)
[4]  
[Anonymous], 2015, 172962 ISO
[5]  
Beck C.B, 2016, WO Patent, Patent No. [2017183992A1, 2017183992]
[6]   A Review on Filament Materials for Fused Filament Fabrication [J].
Dey, Arup ;
Roan Eagle, Isnala Nanjin ;
Yodo, Nita .
JOURNAL OF MANUFACTURING AND MATERIALS PROCESSING, 2021, 5 (03)
[7]  
Dikshit V., 2020, Fiber-Reinforced Nanocomposites: Fundamentals and Applications, V1, P371, DOI [DOI 10.1016/B978-0-12-819904-6.00017-7, 10.1016/B978-0-12-819904- 6.00017]
[8]   Fused filament fabrication of polymer materials: A review of interlayer bond [J].
Gao, Xia ;
Qi, Shunxin ;
Kuang, Xiao ;
Su, Yunlan ;
Li, Jing ;
Wang, Dujin .
ADDITIVE MANUFACTURING, 2021, 37
[9]  
Gibson I., 2021, ADDITIVE MANUFACTURI, V1, P22
[10]   Tough, Additively Manufactured Structures Fabricated with Dual-Thermoplastic Filaments [J].
Hart, Kevin R. ;
Dunn, Ryan M. ;
Wetzel, Eric D. .
ADVANCED ENGINEERING MATERIALS, 2020, 22 (04)