| Literature DB >> 30513580 |
Jinjie Luo1,2,3, Haibao Wang4,5, Duquan Zuo6,7, Anping Ji8,9, Yaowen Liu10,11.
Abstract
As an advanced manufacturing technology that has been developed in recent years, three-dimensional (3D) printing of macromolecular materials can create complex-shaped components that cannot be realized by traditional processing. However, only a few types of macromolecular materials are suitable for 3D printing: the structure must have a single function, and manufacturing macromolecular functional devices is difficult. In this study, using poly lactic acid (PLA) as a matrix, conductive composites were prepared by adding various contents of multi-walled carbon nanotubes (MWCNTs). The printability and properties of MWCNT/PLA composites with different MWCNT proportions were studied by using the fused deposition modeling (FDM) processing technology of 3D printing. The experimental results showed that high conductivity can be realized in 3D-printed products with a composite material containing 5% MWCNTs; its conductivity was 0.4 ± 0.2 S/cm, its tensile strength was 78.4 ± 12.4 MPa, and its elongation at break was 94.4% ± 14.3%. It had a good melt flow rate and thermal properties, and it enabled smooth printing, thus meeting all the requirements for the 3D printing of consumables.Entities:
Keywords: 3D printer; MWCNTs; PLA
Year: 2018 PMID: 30513580 PMCID: PMC6316805 DOI: 10.3390/mi9120635
Source DB: PubMed Journal: Micromachines (Basel) ISSN: 2072-666X Impact factor: 2.891
Figure 1The fabrication process of poly lactic acid (PLA)/multi-walled carbon nanotubes (MWCNTS) composite materials by three-dimensional (3D) printing.
Figure 2(a) Transmission electron microscopy (TEM) images of PLA containing different amounts of MWCNTs. (b) Typical scanning electron microscopy (SEM) images of the cross-sections of PLA containing 5% MWCNTs.
Figure 3Conductivity of the PLA containing different amounts of MWCNTs.
Mechanical properties of PLA and the PVA/MWCNTs composite materials (n = 6).
| Properties | PLA | PVA/MWCNT-1% | PVA/MWCNT-3% | PVA/MWCNT-5% | PVA/MWCNT-7% |
|---|---|---|---|---|---|
| Stress (MPa) | 18.8 ± 2.1 | 44.7 ± 8.4 | 67.2 ± 10.3 | 78.4 ± 12.4 | 72.2 ± 11.4 |
| Strain (%) | 26.2 ± 3.4 | 78.6 ± 12.7 | 90.1 ± 13.3 | 94.4 ± 14.3 | 91.9 ± 13.8 |
| Young’s Modulus | 78.4 ± 10.3 | 108.5 ± 17.4 | 127.6 ± 21.0 | 134.4 ± 24.3 | 114.8 ± 18.2 |
Melt flow rate (MFR) properties of PLA and the PVA/MWCNTs composite materials.
| Samples | MFR(g/10 min) |
|---|---|
| PLA | 18.8 ± 2.3 |
| PVA/MWCNT-1% | 20.0 ± 2.8 |
| PVA/MWCNT-3% | 24.4 ± 3.1 |
| PVA/MWCNT-5% | 27.5 ± 3.9 |
| PVA/MWCNT-7% | 8.6 ± 1.2 |
Figure 4Thermogravimetric analysis (TGA) thermograms of PLA and the PLA/MWCNTs composite materials.
Figure 5(a) Hardness, (b) adhesion of the extruded PLA/MWCNTs samples containing different amounts of MWCNTs.
Figure 6(a) Line test of the extruded PLA/MWCNTs samples containing different amounts of MWCNTs; (b) Pictures of some products printed with a 0.4-mm nozzle diameter.