The Effect of Complex Emulsifier on the Structure of Tung Oil and Phenolic Amides Containing Microcapsules and Its Anti-Fouling and Anti-Corrosion Performances
Abstract
:1. Introduction
2. Materials and Methods
2.1. Raw Materials
2.2. Preparation of MC(T) and MC(P and T)
2.3. Characterization of MC(T) and MC(P and T)
2.4. Preparation of the Coating Samples
2.5. Characterization of Coating Samples
3. Results and Discussion
3.1. Emulsification System
3.2. Characterizations of Synthesized MC(P and T)
3.3. Characterization of Self-Healing Coating
3.3.1. Microstructure of Coating with MC(P and T)
3.3.2. Bonding Strength of Coating with MC(P and T)
3.3.3. EIS of Coating with MC(P and T)
3.3.4. Neutral Salt Test of Coating with MC(P and T)
3.3.5. Anti-Fouling of Coatings with MC(P and T)
4. Conclusions
- The complex emulsifier of SDBS/PVA had the best emulsifying effect among the six emulsifiers, which could achieve the narrowest particle size distribution of the microcapsules (from 24.07 to 71.33 µm) with 75% core content.
- The addition of 10–15 wt% of microcapsules in the epoxy coating could provide enough healing agent to repair the damage, which made coatings have better anti-corrosion and anti-fouling effects, and the amide included in the healing area was sufficient for preventing 90% of diatoms and 80% of mussel foot silk from adhering to the scratching.
- The anti-corrosion and anti-fouling integration of the self-healing coating was realized, which provides a practical direction for future engineering applications, but the addition of microcapsules will reduce the bonding strength of the coating. The future research direction is to solve the problem of how to ensure the bonding strength of the coating while adding microcapsules.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Time (h) Samples | 24 | 48 | 72 | 96 | 168 |
---|---|---|---|---|---|
0% | 1.47 × 105 | 1.11 × 105 | 1.75 × 105 | 1.30 × 105 | 1.17 × 105 |
5% | 3.39 × 105 | 3.12 × 105 | 3.63 × 105 | 2.86 × 105 | 2.54 × 105 |
10% | 3.69 × 105 | 3.62 × 105 | 3.32 × 105 | 3.23 × 105 | 2.93 × 105 |
15% | 4.26 × 105 | 3.67 × 105 | 3.63 × 105 | 2.97 × 105 | 2.75 × 105 |
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Ma, Y.; Jiang, D.; Yang, Y.; Ma, L.; Zhou, J.; Huang, G. The Effect of Complex Emulsifier on the Structure of Tung Oil and Phenolic Amides Containing Microcapsules and Its Anti-Fouling and Anti-Corrosion Performances. Coatings 2022, 12, 447. https://doi.org/10.3390/coatings12040447
Ma Y, Jiang D, Yang Y, Ma L, Zhou J, Huang G. The Effect of Complex Emulsifier on the Structure of Tung Oil and Phenolic Amides Containing Microcapsules and Its Anti-Fouling and Anti-Corrosion Performances. Coatings. 2022; 12(4):447. https://doi.org/10.3390/coatings12040447
Chicago/Turabian StyleMa, Yingxiang, Dan Jiang, Yuping Yang, Li Ma, Jian Zhou, and Guosheng Huang. 2022. "The Effect of Complex Emulsifier on the Structure of Tung Oil and Phenolic Amides Containing Microcapsules and Its Anti-Fouling and Anti-Corrosion Performances" Coatings 12, no. 4: 447. https://doi.org/10.3390/coatings12040447
APA StyleMa, Y., Jiang, D., Yang, Y., Ma, L., Zhou, J., & Huang, G. (2022). The Effect of Complex Emulsifier on the Structure of Tung Oil and Phenolic Amides Containing Microcapsules and Its Anti-Fouling and Anti-Corrosion Performances. Coatings, 12(4), 447. https://doi.org/10.3390/coatings12040447