Preparation of a Gradient Anti-Oxidation Coating for Aircraft C/C Composite Brake Disc and Its High-Temperature In Situ Self-Healing Performance
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials and Reagents
2.2. Specimen Preparation
2.3. Oxidation Tests
2.4. Characterization
3. Results and Discussion
3.1. Microstructures of the Coating
3.2. Oxidation Behaviors of the Coating
3.3. Microstructures of the Coating after Oxidation
3.4. The Anti-Oxidation Mechanism of the Coating
3.5. 1:1 Dynamic Simulation Test of Aircraft Brake Discs
4. Conclusions
- An anti-oxidation gradient coating for aircraft C/C composite brake discs was prepared. The coating is uniform and dense, has a high bonding strength, and has good anti-oxidation and thermal shock resistance. After oxidation at 700 °C for 15 h in air, the oxidation weight loss rate of the sample was −0.17%. After 50 instances of thermal cycling in air at 900 °C, the oxidation weight loss rate of the sample was −0.06%.
- The corresponding oxidation curve of the coating in the oxidation process can be divided into three stages, namely, the coating dehydration period, the stable period, and the weight gain period. In the oxidation process, tetraethyl orthosilicate in the coating can be hydrolyzed into SiO2 and form a good combination with the substrate. B4C can oxidize to form glassy B2O3, which, together with SiO2 in the coating component, forms a dense borosilicate glass. It can effectively fill cracks and pores, thereby preventing the invasion of oxygen and reducing the volatilization of the coating.
- We conducted a 1:1 dynamic simulation test on a C/C composite brake disc coated with gradient coating. The brake disc exhibited a good appearance after the test, without oxidation or damage. This shows that the gradient coating can meet the requirements for aircraft use. The preparation process of the coating is simple and low-cost and can meet the demands of mass production.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Category | Key Technical Indicators | Suppliers | ||
---|---|---|---|---|
Granularity/Purity | Mass Fraction | |||
Layer I | B4C | (8 to 10) μm | 10–15% | Mudanjiang Boron Carbide Abrasives Co., Ltd. (Mudanjiang City, China) |
Si (OC2H5)4 | Analytically pure | 30–35% | Sinopharm Chemical Reagent Co., Ltd. (Shanghai, China) | |
Layer II | SiO2 | (0.15 to 0.25) μm | 5–10% | Shanghai TOPKEN Building Material Co., Ltd. (Shanghai, China) |
B2O3 | 98% or higher | 10–15% | Sinopharm Chemical Reagent Co., Ltd. | |
Na2B4O7.10H2O | 99.5% or higher | 10–15% | Sinopharm Chemical Reagent Co., Ltd. |
Sample No. | Weight Loss Ratio | Sample No. | Weight Loss Ratio |
---|---|---|---|
(1) | −0.11% | (7) | −0.19% |
(2) | −0.31% | (8) | −0.35% |
(3) | −0.06% | (9) | −0.48% |
(4) | −0.41% | (10) | −0.49% |
(5) | −0.31% | (11) | −0.06% |
(6) | −0.25% | (12) | −0.47% |
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Zheng, D.; Yin, H. Preparation of a Gradient Anti-Oxidation Coating for Aircraft C/C Composite Brake Disc and Its High-Temperature In Situ Self-Healing Performance. Materials 2024, 17, 2344. https://doi.org/10.3390/ma17102344
Zheng D, Yin H. Preparation of a Gradient Anti-Oxidation Coating for Aircraft C/C Composite Brake Disc and Its High-Temperature In Situ Self-Healing Performance. Materials. 2024; 17(10):2344. https://doi.org/10.3390/ma17102344
Chicago/Turabian StyleZheng, Dan, and Haiqing Yin. 2024. "Preparation of a Gradient Anti-Oxidation Coating for Aircraft C/C Composite Brake Disc and Its High-Temperature In Situ Self-Healing Performance" Materials 17, no. 10: 2344. https://doi.org/10.3390/ma17102344
APA StyleZheng, D., & Yin, H. (2024). Preparation of a Gradient Anti-Oxidation Coating for Aircraft C/C Composite Brake Disc and Its High-Temperature In Situ Self-Healing Performance. Materials, 17(10), 2344. https://doi.org/10.3390/ma17102344