BUBBLE DEFECTS AND CONTROL OF THERMAL CURING OF WATERBORNE RESIN COATINGS
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Published:2024
Issue:4
Volume:28
Page:55-67
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ISSN:1093-3611
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Container-title:High Temperature Material Processes An International Quarterly of High-Technology Plasma Processes
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language:en
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Short-container-title:High Temp Mat Proc
Author:
Zhai Y.,Zhu X.,Chen H.,Teng G.,Feng Z.,Qian P.,Wang J.
Abstract
To solve the problem of bubble retention leading to a decrease in the performance of waterborne resin coatings during thermal curing, a rapid thermal curing coating based on an aqueous epoxy-modified acrylic resin containing an amino resin cross linker was synthesized through solution copolymerization. Using a synchronous thermal analyzer, the mass loss and heat flow during the thermal curing
process of the coating was measured. In addition, an in situ thermal curing visualization system was used to observe the curing behavior at the easy-open end notches under different heating rates. The results indicated that the curing process is divided into an initial rapid heating stage and a subsequent slower heating stage by the boiling point of water, with a critical temperature range of 126-150°C. The visualization experiments showed that when the temperature reached 100°C, the water quickly evaporated to form bubbles. Increasing the heating rate before this temperature caused the bubbles to rapidly
escape. Therefore, an optimal heating profile with a rapid initial heating rate of 3.13°C/s, followed by
a slower heating rate of 0.52°C/s in the next stage, is proposed. This discovery is of great significance
for optimizing the thermal curing process of waterborne coatings on metal substrates, including those
used for easy-open ends.
Reference21 articles.
1. Barquero, A., Llorente, O., Minudri, D., Paulis, M., and Leiza, J.R., Synthesis of Waterborne Anticorrosive Coatings Based on the Incorporation of Phosphate Groups to Polyurethane-Acrylate Hybrids, Macromol. React. Eng., vol. 17, no. 4, Article ID 2300015, 2023. DOI: 10.1002/mren.202300015 2. Barros, J.J.P., dos Santos Silva, I.D., Jaques, N.G., and Wellen, R.M.R., Approaches on the Non-Isothermal Curing Kinetics of Epoxy/PCL Blends, J. Mater. Res. Technol., vol. 9, no. 6, pp. 13539-13554, 2020. DOI: 10.1016/j.jmrt.2020.09.081 3. Canamero-Martinez, P., Fernandez-Garcia, M., and de la Fuente, J.L., Rheological Cure Characterization of a Polyfunctional Epoxy Acrylic Resin, React. Funct. Polym., vol. 70, no. 10, pp. 761-766, 2010. DOI: 10.1016/j.reactfunctpolym.2010.07.010 4. Faccini, M., Bautista, L., Soldi, L., Escobar, A.M., Altavilla, M., Calvet, M., Domenech, A., and Dominguez, E., Environmentally Friendly Anticorrosive Polymeric Coatings, Appl. Sci., vol. 11, no. 8, Article ID 3446, 2021. DOI: 10.3390/app11083446 5. Gong, Z., Zhao, W., Fu, Z., and Chen, L., Preparation of Organosilicon Modified Cationic Acrylic Resin and Its Application in Cathodic Electrodeposition Coatings, Prot. Met. Phys. Chem. Surf., vol. 59, no. 3, pp. 440-444, 2023. DOI: 10.1134/S207020512370048X
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