Fabrication of Wood-Rubber Composites Using Rubber Compound as a Bonding Agent Instead of Adhesives
Abstract
:1. Introduction
2. Experimental
2.1. Materials
2.2. Sample Preparation
- The sheets of RC were cut into small pieces (about 5 mm3) in order to mix them evenly. The small RC pieces were premixed at a mixing temperature of 60 °C for 3 min in the twin rotor mixer (XH-409, Zhuosheng Mechanical Equipment Co., Ltd., Dongguan, China). Then WF was gradually added to the mixer and continued to blend for 5 min.
- The tabletting process of the mixture was carried out using a two-roll laboratory mill (XH-401A, Zhuosheng Mechanical Equipment Co., Ltd., Dongguan, China) for 3 min. The two-roll miller is consisted of two parallel rolls. The speed ratio between the rolls was 1.2 and gap was 2 mm.
- After the sheets from the two-roll mill were conditioned in a closed container at a temperature of 23 ± 2 °C for 24 h, the vulcanization was carried out in a plate vulcanizing machine (XH-406B, Zhuosheng Mechanical Equipment Co., Ltd., Dongguan, China) at 160 °C under a pressure of 15 MPa for the optimum curing time (t90), which was also called vulcanization molding time.
- Finally, WRCs were successfully prepared and fetched out from the disassembled mold.
2.3. WRC Characterizations
3. Results and Discussion
3.1. Effect of Wood Fiber Content
3.2. Effect of Rotational Speed of Shearing Rotor in Internal Mixer
3.3. Effect of Filled Coefficient in Internal Mixer
3.4. Nonlinear Regression
3.5. Optimization
3.6. Micro-Morphology of the WRCs
3.7. Cure Characteristics of WRCs
3.8. Water Absorption
4. Conclusions
Acknowledgments
Author Contributions
Conflicts of Interest
References
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Fiber Contents (%) | Volume Fraction (%) | Tensile Strength (MPa) (Ts) | Elongation at Break (%) (Eb) | Hardness (Shore A) (Ha) | Rebound Resilience (%) (Rr) | Toughness Tests |
---|---|---|---|---|---|---|
0 | 0 | 16.4 (1.1) a 1 | 634.1 (19.7) a | 60.0 (0) f | 48.0 (0) a | No cracks |
10 | 17 | 10.3 (0.5) b | 440.7 (12.8) b | 70.2 (0.1) e | 44.4 (0.5) b | No cracks |
20 | 33 | 7.1 (0.2) c | 330.1 (13.2) c | 79.3 (0.1) d | 42.1 (0.3) c | No cracks |
30 | 50 | 6.2 (0.3) d | 293.6 (8.1) d | 88.3 (0.2) c | 40.0 (0.1) d | No cracks |
40 | 67 | 5.1 (0.4) e | 110.8 (5.7) e | 93.2 (0.3) b | 34.3 (1.1) e | Fine cracks |
50 | 83 | 4.0 (0.1) f | 31.3 (9.2) f | 95.0 (0.1) a | 26.1 (0.4) f | Heavy cracks |
Rotational Speed (rpm) | Tensile Strength (MPa) | Elongation at Break (%) | Hardness (Shore A) | Rebound Resilience (%) |
---|---|---|---|---|
15 | 4.8 (0.4) c 1 | 210.4 (13.5) d | 83.4 (1.2) c | 39.4 (0.7) c |
20 | 5.3 (0.1) b | 245.5 (15.2) c | 85.5 (1.1) b | 40.9 (0.5) ab |
25 | 6.2 (0.3) a | 270.8 (8.1) b | 88.3 (0.2) a | 41.1 (0.3) a |
35 | 6.1 (0.4) a | 289.3 (5.9) a | 89.2 (2.6) a | 39.9 (1.5) bc |
45 | 5.0 (0.2) b | 245.2 (4.2) c | 84.0 (2.1) bc | 38.2 (0.7) d |
Filled Coefficient | Tensile Strength (MPa) | Elongation at Break (%) | Hardness (Shore A) | Rebound Resilience (%) |
---|---|---|---|---|
0.55 | 3.2 (0.4) c 1 | 136.5 (14.3) d | 79.5 (0.4) d | 34.2 (0.8) b |
0.60 | 4.8 (0.5) b | 215.3 (10.6) b | 82.7 (0.6) c | 38.5 (0.2) a |
0.65 | 5.9 (0.2) a | 285.2 (7.5) a | 86.2 (0.3) a | 38.9 (0.4) a |
0.70 | 6.3 (0.6) a | 276.5 (15.1) a | 84.5 (0.5) b | 38.4 (1.1) a |
0.75 | 4.5 (0.1) b | 194.8 (19.5) c | 75.0 (0.6) e | 24.6 (0.7) c |
Sample Code | ML/(N.m) | MH/(N.m) | ts2/min | t90/min |
---|---|---|---|---|
F0 | 0.68 (0.24) 1 | 2.11 (0.21) | 1.97 (0.05) | 4.77 (0.21) |
F1 | 0.70 (0.11) | 2.17 (0.07) | 1.52 (0.21) | 3.12 (0.08) |
F2 | 0.79 (0.06) | 2.35 (0.13) | 1.70 (0.12) | 3.65 (0.13) |
F3 | 0.92 (0.32) | 2.78 (0.15) | 1.57 (0.09) | 3.97 (0.14) |
F4 | 0.55 (0.13) | 1.56 (0.04) | 2.33 (0.11) | 4.35 (0.04) |
F5 | 0.46 (0.17) | 0.49 (0.16) | 0 (0) | 5.87 (0.18) |
Wa (%) | F0 | F1 | F2 | F3 | F4 | F5 |
---|---|---|---|---|---|---|
Value | 1.01 (0.10) 1 | 1.18 (0.08) | 1.32 (0.05) | 1.52 (0.02) | 2.59 (0.04) | 2.77 (0.07) |
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Shao, D.; Xu, M.; Cai, L.; Shi, S.Q. Fabrication of Wood-Rubber Composites Using Rubber Compound as a Bonding Agent Instead of Adhesives. Materials 2016, 9, 469. https://doi.org/10.3390/ma9060469
Shao D, Xu M, Cai L, Shi SQ. Fabrication of Wood-Rubber Composites Using Rubber Compound as a Bonding Agent Instead of Adhesives. Materials. 2016; 9(6):469. https://doi.org/10.3390/ma9060469
Chicago/Turabian StyleShao, Dongwei, Min Xu, Liping Cai, and Sheldon Q. Shi. 2016. "Fabrication of Wood-Rubber Composites Using Rubber Compound as a Bonding Agent Instead of Adhesives" Materials 9, no. 6: 469. https://doi.org/10.3390/ma9060469
APA StyleShao, D., Xu, M., Cai, L., & Shi, S. Q. (2016). Fabrication of Wood-Rubber Composites Using Rubber Compound as a Bonding Agent Instead of Adhesives. Materials, 9(6), 469. https://doi.org/10.3390/ma9060469