| Literature DB >> 36080634 |
Jian Su1, Zhiwei Jiang1, Changqing Fang1,2, Yamin Zheng1, Mannan Yang1,2, Lu Pei1, Zhigang Huang3.
Abstract
To improve the recycle value of waste paper and promote circular economic development, waste corrugated paper fiber (WCPF) was used as a reinforcing agent to prepare waste corrugated paper fiber/polylactic acid (WCPF/PLA) composites via dichloromethane solvent which can be reused. The WCPF in the waste corrugated paper is extracted by beating in a Valli beating machine for different time lengths and grinding in a disc grinder. The effects of beating time and the content of WCPF on the microstructure, mechanical properties, thermal decomposition process, and crystallization properties of the WCPF/PLA composite were studied. The result shows that the WCPF can be well separated from each other and can be evenly dispersed in the PLA matrix. When 25 wt% WCPF which was beat for 30 min was used, the composite has the greatest improvement in tensile property. This study provides a new process for the recycling of waste paper in the application of polymer reinforcement. The research on waste paper fiber and degradable polymer composite is of great significance for reducing environmental pollutants and developing circular economy.Entities:
Keywords: composite material; polylactic acid; recycle; reinforce; waste corrugated paper fiber
Year: 2022 PMID: 36080634 PMCID: PMC9460597 DOI: 10.3390/polym14173562
Source DB: PubMed Journal: Polymers (Basel) ISSN: 2073-4360 Impact factor: 4.967
Figure 1Preparation process diagram of the WCPF/PLA composite.
The different preparation conditions of the WCPF/PLA composite.
| Sample Number | Beating Time (min) | Fiber Content (wt%) |
|---|---|---|
| PLA | - | 0 |
| C1-20 | 10 | 20 |
| C2-20 | 20 | 20 |
| C3-20 | 30 | 20 |
| C4-20 | 40 | 20 |
| C5-20 | 50 | 20 |
| C6-20 | 60 | 20 |
| C3-5 | 30 | 5 |
| C3-10 | 30 | 10 |
| C3-15 | 30 | 15 |
| C3-20 | 30 | 20 |
| C3-25 | 30 | 25 |
| C3-30 | 30 | 30 |
Figure 2Micromorphology of WCPF with different beating times, composition contents (a) and infrared spectrum (b) of WCPF.
Mechanical properties of WCPF/PLA composites with different beating times and content of WCPF.
| Samples | Tensile Strength (MPa) | Elongation at Break (%) | Tensile Modulus (MPa) | Flexural Strength (MPa) | Flexural Modulus (MPa) |
|---|---|---|---|---|---|
| PLA | 24.2 ± 0.50 | 5.0 ± 0.16 | 486.3 ± 23.8 | 29.7 ± 0.13 | 627.6 ± 3.9 |
| C1-20 | 25.6 ± 0.29 | 3.9 ± 0.37 | 657.0 ± 63.4 | 35.8 ± 2.59 | 1245.5 ± 69.5 |
| C2-20 | 26.3 ± 0.45 | 3.9 ± 0.45 | 698.5 ± 64.8 | 37.4 ± 0.44 | 1326.4 ± 51.8 |
| C3-20 | 27.7 ± 0.16 | 3.8 ± 0.29 | 717.0 ± 70.8 | 37.5 ± 0.06 | 1384.5 ± 44.1 |
| C4-20 | 27.5 ± 0.24 | 4.0 ± 0.17 | 694.6 ± 31.4 | 38.4 ± 1.16 | 1366.2 ± 48.5 |
| C5-20 | 26.6 ± 0.29 | 3.7 ± 0.14 | 719.2 ± 29.9 | 34.7 ± 0.81 | 1317.8 ± 9.8 |
| C6-20 | 27.0 ± 0.37 | 3.8 ± 0.33 | 709.3 ± 58.9 | 36.6 ± 0.58 | 1351.7 ± 58.1 |
| C3-5 | 24.4 ± 0.80 | 4.5 ± 0.22 | 543.0 ± 21.6 | 31.2 ± 0.69 | 724.6 ± 24.5 |
| C3-10 | 25.8 ± 0.57 | 4.3 ± 0.19 | 596.5 ± 28.7 | 31.5 ± 0.63 | 824.6 ± 14.1 |
| C3-15 | 27.3 ± 0.33 | 4.2 ± 0.24 | 651.2 ± 34.3 | 35.5 ± 3.25 | 1128.6 ± 85.8 |
| C3-25 | 29.5 ± 1.27 | 3.3 ± 0.21 | 907.3 ± 80.1 | 41.8 ± 0.27 | 1766.2 ± 15.0 |
| C3-30 | 27.2 ± 0.34 | 2.9 ± 0.10 | 948.4 ± 24.1 | 44.4 ± 0.83 | 2028.2 ± 8.3 |
Figure 3Stress-strain curves of WCPF/PLA composites.
Figure 4SEM images of fracture surface of WCPF/PLA composites.
Figure 5DSC curves of WCPF/PLA composites.
Figure 6TG curves of WCPF/PLA composites prepared under different conditions. (a) The details of initial weight loss stage, (b) The details of the end of decomposition.
Figure 7XRD patterns of WCPF and WCPF/PLA composites.