The Effect of Hardwood Veneer Densification on Plywood Density, Surface Hardness, and Screw Withdrawal Capacity
Abstract
:1. Introduction
2. Materials and Methods
2.1. Veneer Preparation
2.2. Veneer Densification
2.3. Plywood Manufacturing
2.4. Density Determination
2.5. Brinell Hardness Determination
2.6. Screw Withdrawal Capacity and Load Determination
2.7. Statistical Analysis
3. Results and Discussion
3.1. Density of Plywood
3.2. Brinell Hardness of Plywood
3.3. Screw Withdrawal Load and Capacity of Plywood
3.4. Density-Specific Mechanical Properties
4. Conclusions
- Densifying low-value wood veneers and incorporating them into the plywood lay-up significantly increases the overall density of the plywood. However, only black alder AVD plywood gained higher density than birch UN plywood.
- A statistically significant positive correlation (r = 0.776 and p < 0.05) between plywood density and screw withdrawal capacity was noted, which stayed the same with all the plywood types within the different wood species. These data support the hypothesis that increased plywood density with only surface veneers densified will lead to significant screw withdrawal capacity improvement. Nonetheless, the screw withdrawal capacity of birch UN plywood remained highest, together with black alder AVD plywood.
- Having more densified layers in plywood significantly contributed to the screw withdrawal capacity. This improvement can be attributed to the compressed fibres and compact structure of the densified wood, which enhance the connection between the screw threads and the wood.
- The surface hardness of the plywood was significantly influenced by the plywood face veneer layer density. The densities of the remaining plywood veneer layers did not show any significant contribution to the surface hardness.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Veneer Thickness (mm) | ||
---|---|---|
Wood Species | 1.5 | 3.0 |
Birch | 150 s | |
Black alder | 160 s | 390 s |
Aspen | 170 s | 420 s |
Plywood Type | Abbreviation | Lay-Up |
---|---|---|
Undensified | UN | N1.5-N1.5-N1.5-N1.5-N1.5-N1.5-N1.5 |
Face veneer densified | FVD | D3.0→1.5-N1.5-N1.5-N1.5-N1.5-N1.5-D3.0→1.5 |
All veneers densified | AVD | D3.0→1.5-D3.0→1.5-D3.0→1.5-D3.0→1.5-D3.0→1.5-D3.0→1.5-D3.0→1.5 |
Wood Species | Plywood Type | Glue Consumption g·m−2 |
---|---|---|
Birch | UN | 160 (±10.6) |
Black alder | UN FVD AVD | 173 (±7.5) 160 (±7.2) 133 (±2.2) |
Aspen | UN FVD AVD | 165 (±10.9) 159 (±19.3) 136 (±7.2) |
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Kallakas, H.; Akkurt, T.; Scharf, A.; Mühls, F.; Rohumaa, A.; Kers, J. The Effect of Hardwood Veneer Densification on Plywood Density, Surface Hardness, and Screw Withdrawal Capacity. Forests 2024, 15, 1275. https://doi.org/10.3390/f15071275
Kallakas H, Akkurt T, Scharf A, Mühls F, Rohumaa A, Kers J. The Effect of Hardwood Veneer Densification on Plywood Density, Surface Hardness, and Screw Withdrawal Capacity. Forests. 2024; 15(7):1275. https://doi.org/10.3390/f15071275
Chicago/Turabian StyleKallakas, Heikko, Tolgay Akkurt, Alexander Scharf, Fred Mühls, Anti Rohumaa, and Jaan Kers. 2024. "The Effect of Hardwood Veneer Densification on Plywood Density, Surface Hardness, and Screw Withdrawal Capacity" Forests 15, no. 7: 1275. https://doi.org/10.3390/f15071275
APA StyleKallakas, H., Akkurt, T., Scharf, A., Mühls, F., Rohumaa, A., & Kers, J. (2024). The Effect of Hardwood Veneer Densification on Plywood Density, Surface Hardness, and Screw Withdrawal Capacity. Forests, 15(7), 1275. https://doi.org/10.3390/f15071275