A High-Performance and Low-Cost Soy Flour Adhesive with a Hydroxymethyl Melamine Prepolymer
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Preparation of HMP
2.3. Preparation of SF Adhesives
2.4. Preparation of Three-Plywood Samples
2.5. Characterization of Adhesive Samples
2.5.1. Shear Strength Measurement of Plywood
2.5.2. Residual Rate Test
2.5.3. Fourier Transform Infrared (FTIR) Spectroscopy
2.5.4. Thermogravimetry (TGA) Test
2.5.5. Scanning Electron Microscopy (SEM) Analysis
3. Results and Discussion
3.1. FTIR Spectra of M and HMP
3.2. Tensile/Shear Strength Measurement
3.3. Residual Rate
3.4. FTIR Spectroscopic Analysis
3.5. Thermogravimetric (TG) Analysis
3.6. SEM Analysis of Adhesives
4. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Sample | SF Adhesive Formulations | |||||
---|---|---|---|---|---|---|
SF (g) | WF (g) | Water (g) | HMP (g) | PAE (g) | ||
H | HMP adhesive | - | 20 | 40 | 40 | - |
0 | SF adhesive | 25 | - | 75 | - | - |
1 | SF/3% HMP adhesive | 25 | - | 69 | 3 | - |
2 | SF/6% HMP adhesive | 25 | - | 66 | 6 | - |
3 | SF/9% HMP adhesive | 25 | - | 63 | 9 | - |
4 | SF/12% HMP adhesive | 25 | - | 60 | 12 | - |
5 | SF/15% HMP adhesive | 25 | - | 57 | 15 | - |
6 | SF/18% HMP adhesive | 25 | - | 54 | 18 | - |
7 | SF/21% HMP adhesive | 25 | - | 51 | 21 | - |
8 | SF/24% HMP adhesive | 25 | - | 48 | 24 | - |
8 | SF/24% HMP adhesive | 25 | - | 48 | 24 | - |
P | SF/PAE adhesive | 25 | - | 25 | - | 50 (12.5%) |
Sample | SPI Adhesive Formulations | |||
---|---|---|---|---|
SPI (g) | Water (g) | HMP (g) | ||
0 | SPI adhesive | 13.3 | 86.7 | - |
a | SPI/3% HMP adhesive | 13.3 | 83.7 | 3 |
b | SPI/6% HMP adhesive | 13.3 | 80.7 | 6 |
c | SPI/9% HMP adhesive | 13.3 | 77.7 | 9 |
d | SPI/12% HMP adhesive | 13.3 | 74.7 | 12 |
Main Stages | Temperature Range | Changes in Thermal Degradation of the SF Adhesive |
---|---|---|
First stage | 50–200 °C | A post-reaction stage, which is attributed to the possible reaction of the system under thermal action and produced vapor and gases, leading to a mass loss in the adhesive. The adhesive showed no degradation of the soy protein and other major components. |
Second stage | 200–270 °C | An initial degradation stage, which is mainly considered to the weight loss of the degradation of small molecules and the break of some unstable chemical bonds. |
Third stage | 270–360 °C | The degradation of the skeleton structure of the adhesive, which results from the thermal degradation of the cross-linked network structure in the adhesives. |
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Zhang, M.; Zhang, Y.; Chen, M.; Gao, Q.; Li, J. A High-Performance and Low-Cost Soy Flour Adhesive with a Hydroxymethyl Melamine Prepolymer. Polymers 2018, 10, 909. https://doi.org/10.3390/polym10080909
Zhang M, Zhang Y, Chen M, Gao Q, Li J. A High-Performance and Low-Cost Soy Flour Adhesive with a Hydroxymethyl Melamine Prepolymer. Polymers. 2018; 10(8):909. https://doi.org/10.3390/polym10080909
Chicago/Turabian StyleZhang, Meng, Yi Zhang, Mingsong Chen, Qiang Gao, and Jianzhang Li. 2018. "A High-Performance and Low-Cost Soy Flour Adhesive with a Hydroxymethyl Melamine Prepolymer" Polymers 10, no. 8: 909. https://doi.org/10.3390/polym10080909
APA StyleZhang, M., Zhang, Y., Chen, M., Gao, Q., & Li, J. (2018). A High-Performance and Low-Cost Soy Flour Adhesive with a Hydroxymethyl Melamine Prepolymer. Polymers, 10(8), 909. https://doi.org/10.3390/polym10080909