Mechanical Properties of Cold Sprayed Aluminium 2024 and 7075 Coatings for Repairs
Abstract
:1. Introduction
2. Repair Candidate and Technical Data Requirements
- EASA CS25.603—Materials: Assurance of material sources and handling,
- EASA CS25.605—Fabrication methods: Assurance of fabrication process and controls, and
- EASA CS25.613—Material design values: Determination of statistically significant design values that considers variability introduced in material and fabrication.
3. Material and Repair Process
4. Cold Spray Process
5. Experiment for Material Design Value
5.1. Test Methodology
5.2. Coating Specimen Preparation
5.2.1. Microstructure Test (ASTM E3)
5.2.2. Tensile Test (ASTM E8)
5.2.3. Tensile Adhesion Test (ASTM C633)
5.2.4. Bearing Test (ASTM E238)
5.2.5. Bending Test (ASTM E290)
6. Results and Discussion
6.1. Microstructure Analysis
6.2. Tensile Strength
6.3. Tensile Adhesive Bond Strength
6.4. Bearing Test
6.5. Bending Test
7. Conclusions
- -
- The average percentage of coating porosity measured was 1.148% for Al-2024 and 0.006% for Al-7075. Tensile strength was found to be of an average of 247 MPa (elongation 0.77%) for Al-2024 and 264 MPa (elongation 0.87%) for Al-7075. These values were compared with the AMS 4037 and AMS 4045 values for Al-2024 T3 and Al-7075 T6 sheets, which are 269 MPa (elongation 10%) and 469 MPa (elongation 8%), respectively. Al-2024 was able to provide an average tensile adhesion bond strength of 72 MPa, while Al-7075 had an average of 49 MPa.
- -
- The Al-2024 test specimens gave a bearing offset yield strength of 519 MPa, while the Al-7075 gave 678 MPa. The Al-2024 test specimens gave a peak load strength before failure of 634 MPa, while the Al-7075 gave 763 MPa. The cold-sprayed specimens were not heat treated to the T3 and T6 conditions stated in the AMS specifications. Thus, the readings obtained were assessed to be adequate for oversized hole diameter restoration when the cold-sprayed coatings are heat treated per AMS 4037 and AMS 4045.
- -
- It was observed that there is a general trend of decreasing coating flexibility (angle before coating failure) with increasing coating thickness. There was also an observation that the substrate thickness could influence the coating flexibility, with a thicker substrate causing thin coatings to fail at lower bend angles.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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No. | Reference Standard | Material Property to Be Determined |
---|---|---|
1 | ASTM E3 | Inherent flaws and defects within the cold-sprayed coating |
2 | ASTM E8 | Tensile strength of cold-sprayed material |
3 | ASTM C633 | Peel strength of the cold-sprayed coating |
4 | ASTM E290 | Deformation and bending strength of the cold-sprayed coating |
5 | ASTM E238 | Fastener bearing strength of the cold-sprayed coating |
Alu | Minimum Bearing Strength MPa (ksi) (Ref. MMPDS-01) | CS Offset Yield Stress MPa (ksi) | CS Peak Stress MPa (ksi) |
---|---|---|---|
2024 | 503 (73) | 519 ± 60 (75 ± 9) | 634 ± 48 (92 ± 7) |
7075 | 710 (103) | 678 ± 19 (98 ± 3) | 763 ± 25 (111 ± 4) |
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Bi, J.K.; Loke, Z.C.K.; Lim, C.K.R.; Teng, K.H.T.; Koh, P.K. Mechanical Properties of Cold Sprayed Aluminium 2024 and 7075 Coatings for Repairs. Aerospace 2022, 9, 65. https://doi.org/10.3390/aerospace9020065
Bi JK, Loke ZCK, Lim CKR, Teng KHT, Koh PK. Mechanical Properties of Cold Sprayed Aluminium 2024 and 7075 Coatings for Repairs. Aerospace. 2022; 9(2):65. https://doi.org/10.3390/aerospace9020065
Chicago/Turabian StyleBi, Jiawei Kelvin, Zhi Cheng Kelvin Loke, Chi Keong Reuben Lim, Kok Hoon Tony Teng, and Pak Keng Koh. 2022. "Mechanical Properties of Cold Sprayed Aluminium 2024 and 7075 Coatings for Repairs" Aerospace 9, no. 2: 65. https://doi.org/10.3390/aerospace9020065
APA StyleBi, J. K., Loke, Z. C. K., Lim, C. K. R., Teng, K. H. T., & Koh, P. K. (2022). Mechanical Properties of Cold Sprayed Aluminium 2024 and 7075 Coatings for Repairs. Aerospace, 9(2), 65. https://doi.org/10.3390/aerospace9020065