Study on Modification of Poplar Wood via Composite Impregnation with Silica Sol/Melamine–Glyoxal Resin
Abstract
:1. Introduction
2. Materials and Methods
2.1. Sample Preparation
2.1.1. Materials
2.1.2. Preparation of Modified Silica Sols
2.1.3. Preparation of Silica Sol/MG Resin Composite Modifier
2.1.4. Preparation of Silica Sol/MG Resin-Modified Poplar
2.2. Testing Instruments
2.3. Performance Testing and Characterization
2.3.1. Weight Percent Gain
2.3.2. Density, Water Absorption (WA), and Dimensional Stability Tests
2.3.3. Mechanical Performance Testing
2.3.4. SEM Inspection
2.3.5. TG-DTG Testing
2.3.6. FT-IR Detection
2.3.7. XPS Detection
3. Results and Discussion
3.1. Comparative Analysis of Physical and Mechanical Properties of Poplar and Modified Poplar
3.2. Effect of Silica Sol/MG Resin Modification on the Micromorphology of Poplar Wood
3.3. Effect of Silica Sol/MG Resin Modification on the Thermal Stability of Poplar
3.4. Effect of Silica Sol/MG Resin Modification on the Chemical Structure of Poplar
3.4.1. FT-IR Analysis
3.4.2. XPS Analysis
4. Conclusions
- (1)
- Comparative analysis of the properties between poplar and modified poplar revealed improvements in the physical and mechanical properties of silica sol/MG resin-modified poplar compared to the unmodified poplar. Moreover, the mechanical properties displayed a consistent linear growth trend. Compared with the poplar, the density of silica sol/MG resin-modified poplar increased, and the water absorption rate decreased. In addition, the MOR, MOE, hardness, and impact toughness increased by 49.25%, 59.46%, 47.93%, and 62.73%, respectively. Combining the impact damage cross-sectional profiles of the poplar and the silica sol/MG resin-modified poplar, it can be concluded that the impact toughness of the wood improved the most after the composite impregnation modification;
- (2)
- SEM observation showed that the cell cavities, cell interstices, and cell wall pores of the modified poplar were covered and filled by the compound modifier, and the filling effect was good;
- (3)
- The results of TG-DTG analysis showed that the maximum pyrolysis temperature of the modified poplar was 345.2 °C, which increased by 7.1 °C compared with the poplar, and the residual char rate of poplar wood increased from 21.99% to 27.30%, indicating that the impregnation treatment improved the thermal stability of the wood;
- (4)
- FT-IR and XPS results showed that the silica sol/MG resin composite modifier was physically filled into the wood and chemically bonded with the main components of the wood cell wall. The increased oxygen-containing functional groups in the modified wood and the appearance of Si-O-C bond peaks confirmed that the silica sol/MG resin composite modifier was chemically cross-linked with the internal wood components. It was further validated by the increase in oxygen-containing functional groups and the appearance of Si-O-C bond peaks in the modified poplar, confirming the chemical cross-linking with the internal wood groups. The penetration of the silica sol/MG resin modifier into the wood and the cross-linking and curing increase the structural resistance of the wood to external forces, thus improving the dimensional stability and mechanical properties of poplar wood.
Author Contributions
Funding
Institutional Review Board Statement
Data Availability Statement
Conflicts of Interest
References
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Reagent Name | Specification | Manufacturers |
---|---|---|
Melamine | Analysis of pure | Tianjin Guangfu Fine Chemical Research Institute, Tianjin, China |
Glyoxal | 40 wt%, Industrial grade | Tianjin Comio Chemical Reagent Co., Tianjin, China |
Sodium hydroxide | Analysis of pure | Tianjin Damao Chemical Reagent Factory, Tianjin, China |
Anhydrous ethanol | Industrial grade | Tianjin Damao Chemical Reagent Factory, Tianjin, China |
Distilled water | - | Laboratory Homemade, Jilin, China |
Silicone sol | Solid content 30%, average particle size 8–15 nm | Jinan Yinfeng Silicon Products Co., Jinan, China |
Silane coupling agent KH-560 | 97% | Shandong Yousuo Chemical Technology Co., Linyi, China |
Instrument Name | Model | Manufacturers |
---|---|---|
Push table saw | MJ6132B | Foshan Shunde District Xinma Woodworking Machinery Equipment Co., Foshan, China |
Electric heating blast drying oven | DHG-9075-III | Shanghai Yiheng Technology Co., Shanghai, China |
Universal mechanical testing machine | DWD-100E | Jinan experimental group limited times group, Jinan, China |
Ultrasonic cleaner | DSA50-JY2 | Hangzhou Desen Ultrasonic Equipment Co., Hangzhou, China |
Impact testing machine | JB-300B | Jinan pilot gold group Co., Jinan, China |
Vacuum pressurized impregnation tanks | VPI250 | Shenyang Weike Vacuum Technology Co., Shenyang, China |
Electronic analytical balance | FA2004 | Tianjin Tianma Hengji instrument Co., Tianjin, China |
Vernier calipers | 01120028 | Shanghai Taikai Gauges Co., Shanghai, China |
Fourier Transform Infrared spectrometer | WQF-510A | Beijing Ruili Analytical Instrument Co., Beijing, China |
Thermogravimetric analyzer | TG 209 F3 | Germany Netzsch Instrument Manufacturing Co., Selb, Germany |
X-ray photoelectron spectrum analyzer | ESCALAB250Xi | Thermo USA Ltd., Waltham, MA, USA |
Environmental scanning electron microscope | Quanta200 | Phillip (PEI), Amsterdam, The Netherlands |
Specimen | Density/g cm−3 | WPG/% | WA/% | ASE/% |
---|---|---|---|---|
Poplar | 0.42 | - | 130.28 | - |
Modified poplar | 0.53 | 50.00 | 51.38 | 42.03 |
Sample | C1/% C-C/C-H | C2/% C-O | C3/% O-C-O/C=O | C4/% O-C=O |
---|---|---|---|---|
Poplar | 67.06 | 18.47 | 10.69 | 3.78 |
Modified poplar | 60.83 | 19.59 | 11.00 | 8.58 |
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Liu, M.; Li, X.; Qin, Z.; Liu, W.; Li, C.; Le, L. Study on Modification of Poplar Wood via Composite Impregnation with Silica Sol/Melamine–Glyoxal Resin. Polymers 2023, 15, 4247. https://doi.org/10.3390/polym15214247
Liu M, Li X, Qin Z, Liu W, Li C, Le L. Study on Modification of Poplar Wood via Composite Impregnation with Silica Sol/Melamine–Glyoxal Resin. Polymers. 2023; 15(21):4247. https://doi.org/10.3390/polym15214247
Chicago/Turabian StyleLiu, Mingli, Xiangrui Li, Zexiu Qin, Wenbo Liu, Chunfeng Li, and Lei Le. 2023. "Study on Modification of Poplar Wood via Composite Impregnation with Silica Sol/Melamine–Glyoxal Resin" Polymers 15, no. 21: 4247. https://doi.org/10.3390/polym15214247
APA StyleLiu, M., Li, X., Qin, Z., Liu, W., Li, C., & Le, L. (2023). Study on Modification of Poplar Wood via Composite Impregnation with Silica Sol/Melamine–Glyoxal Resin. Polymers, 15(21), 4247. https://doi.org/10.3390/polym15214247