The Effect of Heat Treatment and Acetylation on Formaldehyde Emission in Cellulose: A Molecular Dynamics Simulation Study
Abstract
:1. Introduction
2. Experimental
2.1. Model Construction Parameter Setting
2.2. Parameter Setting
3. Results
3.1. System Equilibrium
3.2. Mean Square Displacement Calculation
3.3. Interaction Energy
3.4. Mechanical Performance Analysis
4. Discussion
5. Conclusions
- (1)
- With the increase in temperature, the diffusion coefficient of formaldehyde molecules in the model increased continuously but reached a peak of around 483 K and 493 K. On the one hand, it showed that the temperature helped to increase the diffusion movement of molecules, and on the other hand, it indicated that the acetylation led to the change of physical properties of cellulose, which created a better environment for the release of formaldehyde in wood;
- (2)
- The interaction energy of formaldehyde with both cellulose and cellulose–acetate was calculated to be negative, which represents the existence of their binding interaction, and the interaction energy of cellulose–acetate–formaldehyde model was lower than that of the cellulose–formaldehyde model, which represents that the binding interaction between formaldehyde and cellulose–acetate is weaker in the cellulose–formaldehyde model and formaldehyde molecules are more easily diffused rather than attracted by cellulose–acetate after acetylation, which proves that the acetylation modification of wood can better promote the release of formaldehyde;
- (3)
- The mechanical property data of the cellulose-amorphous zone produced irregular fluctuations in response to changes in temperature, and the decreases in the modulus of elasticity and Poisson’s ratio indicate that the temperature reduced the stiffness of the wood but increased the ductility of the wood. At the same time, the mechanical property values of the cellulose acetate–formaldehyde model were substantially lower than those of the normal cellulose model, indicating that the wood after acetylation was higher in ductility than the wood after heat treatment only, which may be an important hint for some processors who need high ductility properties of wood. Additionally, the study provides wood companies with an idea of how to detect formaldehyde emissions when pretreating wood. Wood modification methods exist in a variety of ways, and some novel wood modification methods may not be applicable to old formaldehyde detection methods in the future, while software simulations demonstrate a low-cost method for estimating formaldehyde emissions from wood.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Temperature (K) | Model (Kcal/mol) | Eab (Kcal/mol) | Ea (Kcal/mol) | Eb (Kcal/mol) | Einter (Kcal/mol) |
---|---|---|---|---|---|
298 K | a | 787.0598 | 36.1044 | 967.7645 | −216.8092 |
b | −101.4967 | 56.2139 | 17.8178 | −175.5284 | |
453 K | a | 1029.2168 | 62.3439 | 1150.0686 | −183.1956 |
b | 233.6271 | 79.5291 | 323.1206 | −169.0225 | |
463 K | a | 971.1494 | 57.2065 | 1088.2146 | −174.2716 |
b | 234.4420 | 78.1113 | 312.1924 | −155.8617 | |
473 K | a | 1026.9366 | 45.2065 | 1161.0271 | −179.2969 |
b | 327.7988 | 73.3346 | 404.8575 | −150.3933 | |
483 K | a | 1111.4648 | 56.3503 | 1224.6424 | −169.5279 |
b | 356.5479 | 75.3426 | 431.9402 | −150.7349 | |
493 K | a | 1086.3209 | 70.2814 | 1189.2733 | −173.2338 |
b | 332.3600 | 66.0030 | 419.6570 | −153.3000 |
Pressure (MPa) | Model | λ | μ | K | G | E | K/G | |
---|---|---|---|---|---|---|---|---|
298 K | a | 13.84 | 9.25 | 13.92 | 9.25 | 24.06 | 0.30 | 1.50 |
b | 3.71 | 1.73 | 4.10 | 1.73 | 4.64 | 0.34 | 2.37 | |
453 K | a | 14.30 | 5.58 | 14.42 | 5.58 | 15.17 | 0.36 | 2.58 |
b | 4.74 | 2.44 | 5.01 | 2.44 | 6.48 | 0.33 | 2.06 | |
463 K | a | 12.55 | 5.80 | 12.67 | 5.80 | 15.57 | 0.34 | 2.18 |
b | 4.45 | 1.47 | 4.90 | 1.47 | 4.05 | 0.38 | 3.33 | |
473 K | a | 16.67 | 5.55 | 16.79 | 5.55 | 15.25 | 0.38 | 3.03 |
b | 3.87 | 1.54 | 4.30 | 1.54 | 4.18 | 0.36 | 2.79 | |
483 K | a | 18.19 | 5.12 | 18.32 | 5.12 | 14.25 | 0.39 | 3.58 |
b | 4.62 | 2.80 | 4.86 | 2.80 | 7.34 | 0.31 | 1.74 | |
493 K | a | 12.11 | 4.86 | 12.24 | 4.86 | 13.20 | 0.36 | 2.52 |
b | 5.54 | 1.64 | 5.95 | 1.64 | 4.55 | 0.39 | 3.63 |
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Li, N.; Hua, Y.; Wang, J.; Li, J.; Wang, W. The Effect of Heat Treatment and Acetylation on Formaldehyde Emission in Cellulose: A Molecular Dynamics Simulation Study. Forests 2023, 14, 839. https://doi.org/10.3390/f14040839
Li N, Hua Y, Wang J, Li J, Wang W. The Effect of Heat Treatment and Acetylation on Formaldehyde Emission in Cellulose: A Molecular Dynamics Simulation Study. Forests. 2023; 14(4):839. https://doi.org/10.3390/f14040839
Chicago/Turabian StyleLi, Ning, Youna Hua, Jia Wang, Juncheng Li, and Wei Wang. 2023. "The Effect of Heat Treatment and Acetylation on Formaldehyde Emission in Cellulose: A Molecular Dynamics Simulation Study" Forests 14, no. 4: 839. https://doi.org/10.3390/f14040839
APA StyleLi, N., Hua, Y., Wang, J., Li, J., & Wang, W. (2023). The Effect of Heat Treatment and Acetylation on Formaldehyde Emission in Cellulose: A Molecular Dynamics Simulation Study. Forests, 14(4), 839. https://doi.org/10.3390/f14040839