Corrosion Prevention in Aerospace Industries

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Corrosion Prevention in Aerospace Industries

Pakanati Siva Prasad, Juan David Matallana Guerrero, Anjali Kumari

Corrosion poses a significant threat to aerospace components, compromising their integrity and safety. This chapter explores corrosion monitoring techniques and prevention strategies in aerospace industries, focusing on aluminum (Al), Al-alloys, manganese (Mn) alloys, and titanium (Ti)-based alloys. Various methods, including coatings, inhibitors, and anodization, are discussed for preventing corrosion-induced damage. Additionally, innovative alloys, advanced protection technologies, and the shift towards composite materials in aerospace component fabrication are highlighted. The integration of these techniques and materials ensures the longevity, security, and dependability of aerospace components, safeguarding against financial losses, environmental disasters, and human life losses.

Keywords
Corrosion Prevention, Aerospace, Corrosion Monitoring, Intergranular Corrosion, Stress Corrosion Cracking, Surface Treatments

Published online 1/5/2026, 21 pages

Citation: Pakanati Siva Prasad, Juan David Matallana Guerrero, Anjali Kumari, Corrosion Prevention in Aerospace Industries, Materials Research Foundations, Vol. 188, pp 228-248, 2026

DOI: https://doi.org/10.21741/9781644903919-12

Part of the book on Advances in Corrosion Science and Surface Engineering

References
[1] H. Zhu and J. Li, “Advancements in corrosion protection for aerospace aluminum alloys through surface treatment,” Int J Electrochem Sci, vol. 19, no. 2, p. 100487, Feb. 2024. https://doi.org/10.1016/J.IJOES.2024.100487
[2] L. Li, M. Chakik, and R. Prakash, “A Review of Corrosion in Aircraft Structures and Graphene-Based Sensors for Advanced Corrosion Monitoring,” Sensors 2021, Vol. 21, Page 2908, vol. 21, no. 9, p. 2908, Apr. 2021. https://doi.org/10.3390/S21092908
[3] J. Demo and F. Friedersdorf, “Aircraft corrosion monitoring and data visualization techniques for condition based maintenance,” IEEE Aerospace Conference Proceedings, vol. 2015-June, Jun. 2015. https://doi.org/10.1109/AERO.2015.7119048
[4] M. E. Hoffman and P. C. Hoffman, “Corrosion and fatigue research — structural issues and relevance to naval aviation,” Int J Fatigue, vol. 23, pp. 1–10, Jan. 2001. https://doi.org/10.1016/S0142-1123(01)00115-3
[5] M. P. Martínez-Viademonte, S. T. Abrahami, T. Hack, M. Burchardt, and H. Terryn, “A Review on Anodizing of Aerospace Aluminum Alloys for Corrosion Protection,” Coatings 2020, Vol. 10, Page 1106, vol. 10, no. 11, p. 1106, Nov. 2020. https://doi.org/10.3390/COATINGS10111106
[6] T. Dursun and C. Soutis, “Recent developments in advanced aircraft aluminium alloys,” Materials & Design (1980-2015), vol. 56, pp. 862–871, Apr. 2014. https://doi.org/10.1016/J.MATDES.2013.12.002
[7] R. Asmatulu, “Nanocoatings for corrosion protection of aerospace alloys,” Corrosion Protection and Control Using Nanomaterials, pp. 357–374, Jan. 2012. https://doi.org/10.1533/9780857095800.2.357
[8] S. Gialanella and A. Malandruccolo, “Alloys for Aircraft Structures,” Topics in Mining, Metallurgy and Materials Engineering, pp. 41–127, 2020. https://doi.org/10.1007/978-3-030-24440-8_3/FIGURES/50
[9] J. R. Davis, “ASM Specialty Handbook: Al and Al alloys,” p. 784, 1993, Accessed: Mar. 26, 2024. [Online]. Available: https://www.asminternational.org/asm-specialty-handbook-aluminum-and-aluminum-alloys/results/-/journal_content/56/06610G/PUBLICATION/
[10] Y. Chen and R. Xing, “Corrosion protection of aluminum alloy skin for long-term parking aircraft,” in IOP Conference Series: Earth and Environmental Science, IOP Publishing Ltd, Jan. 2021. https://doi.org/10.1088/1755-1315/631/1/012035
[11] G. S. Malhi et al., “Corrosion in Aircraft Components: Types, Impacts and Protection Measures,” Corrosion in Aircraft Components: Types, Impacts and Protection Measures Article in International Journal of Advanced Science and Technology, vol. 29, no. 10S, pp. 4891–4896, 2020, [Online]. Available: https://www.researchgate.net/publication/342153745
[12] S. J. Findlay and N. D. Harrison, “Why aircraft fail,” Materials Today, vol. 5, no. 11, pp. 18–25, Nov. 2002. https://doi.org/10.1016/S1369-7021(02)01138-0
[13] “Aircraft Corrosion – Filiform, Pitting & Corrosion Types.” Accessed: Mar. 26, 2024. [Online]. Available: https://blog.eplane.com/aircraft-corrosion-filiform-pitting-other-corrosion-types/
[14] Zaki. Ahmad, “Principles of corrosion engineering and corrosion control,” p. 656, 2006.
[15] “Complete Guide to Aircraft Corrosion Types | Mid-America Areotech.” Accessed: Mar. 26, 2024. [Online]. Available: https://www.maaero.com/a-complete-guide-to-the-types-of-corrosion-in-aircraft/
[16] M. Czaban, “Aircraft corrosion – Review of corrosion processes and its effects in selected cases,” Fatigue of Aircraft Structures, vol. 2018, no. 10, pp. 5–20, Dec. 2018. https://doi.org/10.2478/FAS-2018-0001
[17] S. G. Pantelakis, P. G. Daglaras, and C. A. Apostolopoulos, “Tensile and energy density properties of 2024, 6013, 8090 and 2091 aircraft aluminum alloy after corrosion exposure,” Theoretical and Applied Fracture Mechanics, vol. 33, no. 2, pp. 117–134, May 2000. https://doi.org/10.1016/S0167-8442(00)00007-0
[18] “Stress-Corrosion Cracking of Titanium Alloys,” Stress-Corrosion Cracking, pp. 271–302, Dec. 2017. https://doi.org/10.31399/ASM.TB.SCCMPE2.T55090271
[19] E. L. Colvin, “Aluminum Alloys: Corrosion,” Encyclopedia of Materials: Science and Technology, pp. 107–110, Jan. 2001. https://doi.org/10.1016/B0-08-043152-6/00022-X
[20] R. J. H. Wanhill and R. T. Byrnes, “Stress Corrosion Cracking in Aircraft Structures,” in Aerospace Materials and Material Technologies , Springer, Singapore, 2017, pp. 387–410. https://doi.org/10.1007/978-981-10-2143-5_19
[21] R. J. H. Wanhill, R. T. Byrnes, and C. L. Smith, “Stress corrosion cracking (SCC) in aerospace vehicles,” Stress corrosion cracking: Theory and practice, pp. 608–650, Jan. 2011. https://doi.org/10.1533/9780857093769.4.608
[22] C. Vargel, “Filiform corrosion,” Corrosion of Aluminium, pp. 247–265, Jan. 2020. https://doi.org/10.1016/B978-0-08-099925-8.00019-3
[23] Einer Bardal, Corrosion and Protection. London: Springer, 2004. https://doi.org/https://doi.org/10.1007/b97510
[24] “Factors That Affect Your Aircrafts Corrosion.” Accessed: Mar. 26, 2024. [Online]. Available: https://www.acornwelding.com/blog/post/factors-affect-aircrafts-corrosion/
[25] P. R. Roberge, Corrosion Inspection and Monitoring. 2006. https://doi.org/10.1002/9780470099766
[26] S. Benavides, “Corrosion control in the aerospace industry,” Corrosion control in the aerospace industry, pp. 1–312, 2009. https://doi.org/10.1533/9781845695538
[27] L. Yang, Techniques for corrosion monitoring, no. september 2016. 2008.
[28] R. Asmatulu, Nanocoatings for corrosion protection of aerospace alloys. Woodhead Publishing Limited, 2012. https://doi.org/10.1533/9780857095800.2.357
[29] K. R. Larsen, “A new approach to corrosion-resistant aerospace designs,” Mater Perform, vol. 56, no. 4, pp. 17–21, 2017.
[30] J. W. Gooch and J. K. Daher, Electromagnetic shielding and corrosion protection for aerospace vehicles. 2007. https://doi.org/10.1007/978-0-387-46096-3
[31] R. S. Dwyer-Joyce, “The Application of Ultrasonic NDT Techniques in Tribology,” http://dx.doi.org/10.1243/135065005X9763, vol. 219, no. 5, pp. 347–366, May 2005. https://doi.org/10.1243/135065005X9763
[32] C. H. Chen, Ultrasonic and advanced methods for nondestructive testing and material characterization. 2007. https://doi.org/10.1142/6327
[33] M. P. Martínez-Viademonte, S. T. Abrahami, T. Hack, M. Burchardt, and H. Terryn, “A review on anodizing of aerospace aluminum alloys for corrosion protection,” Coatings, vol. 10, no. 11, pp. 1–30, 2020. https://doi.org/10.3390/coatings10111106
[34] S. S. Li et al., “Development and applications of aluminum alloys for aerospace industry,” Journal of Materials Research and Technology, vol. 27, pp. 944–983, Nov. 2023. https://doi.org/10.1016/J.JMRT.2023.09.274
[35] K. Xhanari and M. Finšgar, “Organic corrosion inhibitors for aluminum and its alloys in chloride and alkaline solutions: A review,” Arabian Journal of Chemistry, vol. 12, no. 8, pp. 4646–4663, Dec. 2019. https://doi.org/10.1016/J.ARABJC.2016.08.009
[36] R. L. Twite and G. P. Bierwagen, “Review of alternatives to chromate for corrosion protection of aluminum aerospace alloys,” Prog Org Coat, vol. 33, no. 2, pp. 91–100, 1998. https://doi.org/10.1016/S0300-9440(98)00015-0
[37] W. Kaysser, “Surface modifications in aerospace applications,” Surface Engineering, vol. 17, no. 4, pp. 305–312, 2001. https://doi.org/10.1179/026708401101517926
[38] F. Andreatta and L. Fedrizzi, Corrosion inhibitors, vol. 233. 2016. https://doi.org/10.1007/978-94-017-7540-3_4
[39] M. Abdallah, O. A. Hazazi, A. Fawzy, S. El-Shafei, and A. S. Fouda, “Influence of N-thiazolyl-2-cyanoacetamide derivatives on the corrosion of aluminum in 0.01 M sodium hydroxide,” Protection of Metals and Physical Chemistry of Surfaces, vol. 50, no. 5, pp. 659–666, Sep. 2014. https://doi.org/10.1134/S2070205114050025/METRICS
[40] S. Rajendran, C. Thangavelu, A. Angamuthu, and S. Jayakumar, “Inhibition of corrosion of aluminium in alkaline medium by glutaric acid in conjunction with zinc sulphate and diethylene triamine penta (Methylene phosphonic acid),” Arch Appl Sci Res, 2013.
[41] V. V. Dhayabaran, J. P. Merlin, I. S. Lydia, R. Shanthi, and R. Sivaraj, “Inhibition of corrosion of aluminium in presence of fluorescein in basic medium,” Ionics (Kiel), vol. 10, no. 3–4, pp. 288–290, 2004. https://doi.org/10.1007/BF02382831/METRICS
[42] R. Soni, R. Verma, R. Kumar Garg, and V. Sharma, “A critical review of recent advances in the aerospace materials,” Mater Today Proc, no. August, 2023. https://doi.org/10.1016/j.matpr.2023.08.108
[43] X. Zhang, Y. Chen, and J. Hu, “Recent advances in the development of aerospace materials,” Progress in Aerospace Sciences, vol. 97, no. August 2017, pp. 22–34, 2018. https://doi.org/10.1016/j.paerosci.2018.01.001
[44] J. C. Williams and R. R. Boyer, “Opportunities and Issues in the Application of Titanium Alloys for Aerospace Components,” Metals 2020, Vol. 10, Page 705, vol. 10, no. 6, p. 705, May 2020. https://doi.org/10.3390/MET10060705
[45] M. Chandrasekaran and Y. M. S. John, “Effect of materials and temperature on the forward extrusion of magnesium alloys,” Materials Science and Engineering: A, vol. 381, no. 1–2, pp. 308–319, Sep. 2004. https://doi.org/10.1016/J.MSEA.2004.04.057
[46] A. S. Warren, “Developments and challenges for aluminum–A boeing perspective,” Materials forum, vol. 28, pp. 24–31, 2004, Accessed: Apr. 09, 2024. [Online]. Available: http://www.icaa-conference.net/ICAA9/data/papers/INV%203.pdf
[47] S. C. Tjong, “Recent progress in the development and properties of novel metal matrix nanocomposites reinforced with carbon nanotubes and graphene nanosheets,” Materials Science and Engineering R: Reports, vol. 74, no. 10, pp. 281–350, 2013. https://doi.org/10.1016/j.mser.2013.08.001
[48] S. L. Soo, R. Hood, D. K. Aspinwall, W. E. Voice, and C. Sage, “Machinability and surface integrity of RR1000 nickel based superalloy,” CIRP Ann Manuf Technol, vol. 60, no. 1, pp. 89–92, 2011. https://doi.org/10.1016/j.cirp.2011.03.094
[49] S. Q. A. Rizvi, “Chapter 12 | Additives and Additive Chemistry,” Fuels and Lubricants Handbook: Technology, Properties, Performance, and Testing, 2nd Edition, pp. 351–512, Nov. 2019. https://doi.org/10.1520/MNL3720150036
[50] S. Benavides, “Corrosion in the aerospace industry,” Corrosion control in the aerospace industry, pp. 1–14, Jan. 2009. https://doi.org/10.1533/9781845695538.1
[51] J. K. Lomness and L. M. Calle, “Comparison of the Chromium Distribution in New Super Koropon Primer to 30 Year Old Super Koropon Using Focused Ion Beam/Scanning Electron Microscopy,” 2020.
[52] Protective coating of carbon steel, stainless steel, and aluminium on launch structures, facilities, and ground support equipment. 2016.
[53] S. G. Pantelakis, A. N. Chamos, and A. T. Kermanidis, “A critical consideration for the use of Al-cladding for protecting aircraft aluminum alloy 2024 against corrosion,” Theoretical and Applied Fracture Mechanics, vol. 57, no. 1, pp. 36–42, 2012. https://doi.org/10.1016/j.tafmec.2011.12.006
[54] J. Yu and X. Li, “Modelling of the precipitated phases and properties of Al-Zn-Mg-Cu alloys,” J Phase Equilibria Diffus, vol. 32, no. 4, pp. 350–360, 2011. https://doi.org/10.1007/s11669-011-9911-0
[55] T. Dursun and C. Soutis, “Recent developments in advanced aircraft aluminium alloys,” Mater Des, vol. 56, pp. 862–871, 2014. https://doi.org/10.1016/j.matdes.2013.12.002
[56] D. K. Koli, G. Agnihotri, and R. Purohit, “Advanced Aluminium Matrix Composites: The Critical Need of Automotive and Aerospace Engineering Fields,” Mater Today Proc, vol. 2, no. 4–5, pp. 3032–3041, 2015. https://doi.org/10.1016/j.matpr.2015.07.290
[57] W. W. Jian et al., “Ultrastrong Mg Alloy via Nano-spaced Stacking Faults,” Mater Res Lett, vol. 1, no. 2, pp. 61–66, 2013. https://doi.org/10.1080/21663831.2013.765927
[58] Y. Chen, Z. Xu, C. Smith, and J. Sankar, “Recent advances on the development of magnesium alloys for biodegradable implants,” Acta Biomater, vol. 10, no. 11, pp. 4561–4573, Nov. 2014. https://doi.org/10.1016/J.ACTBIO.2014.07.005
[59] S. Jayalakshmi, S. V. Kailas, and S. Seshan, “Tensile behaviour of squeeze cast AM100 magnesium alloy and its Al2O3 fibre reinforced composites,” Compos Part A Appl Sci Manuf, vol. 33, no. 8, pp. 1135–1140, Aug. 2002. https://doi.org/10.1016/S1359-835X(02)00049-0
[60] C. Y. H. Lim, S. C. Lim, and M. Gupta, “Wear behaviour of SiCp-reinforced magnesium matrix composites,” Wear, vol. 255, no. 1–6, pp. 629–637, Aug. 2003. https://doi.org/10.1016/S0043-1648(03)00121-2
[61] Q. C. Jiang, H. Y. Wang, B. X. Ma, Y. Wang, and F. Zhao, “Fabrication of B4C particulate reinforced magnesium matrix composite by powder metallurgy,” J Alloys Compd, vol. 386, no. 1–2, pp. 177–181, Jan. 2005. https://doi.org/10.1016/J.JALLCOM.2004.06.015
[62] Ikuhiro INAGAKI, Yoshihisa SHIRAI, Tsutomu TAKECHI, and Nozomu ARIYASU, “Application and Features of Titanium for the Aerospace Industry,” Nippon Steel & Sumitomo Metal, vol. 106, no. 106, pp. 22–27, 2014.
[63] K. Zhu, Y. J. Xu, T. Jing, and H. L. Hou, “Fracture behavior of a composite composed by Ti-aluminide multi-layered and continuous-SiCf-reinforced Ti-matrix,” Rare Metals, vol. 36, no. 12, pp. 925–933, 2017. https://doi.org/10.1007/s12598-017-0883-z
[64] R. Chaudhari and R. Bauri, “A novel functionally gradient Ti/TiB/TiC hybrid composite with wear resistant surface layer,” J Alloys Compd, vol. 744, pp. 438–444, 2018. https://doi.org/10.1016/j.jallcom.2018.02.058
[65] N. Mazlan, S.M.Sapuan, and R. A. Ilyas, Advanced Composites in Aerospace Engineering Applications, Springer Cham, 2022. https://doi.org/10.1007/978-3-030-88192-4
[66] S. Vigneshwaran et al., “Recent advancement in the natural fiber polymer composites: A comprehensive review,” J Clean Prod, vol. 277, p. 124109, 2020. https://doi.org/10.1016/j.jclepro.2020.124109
[67] S. Waghmare, S. Shelare, K. Aglawe, and P. Khope, “A mini review on fibre reinforced polymer composites,” Mater Today Proc, vol. 54, pp. 682–689, 2022. https://doi.org/10.1016/j.matpr.2021.10.379
[68] F. G. Alabtah, E. Mahdi, and F. F. Eliyan, “The use of fiber reinforced polymeric composites in pipelines: A review,” Compos Struct, vol. 276, no. August, p. 114595, 2021. https://doi.org/10.1016/j.compstruct.2021.114595
[69] S. Navaratnam, K. Selvaranjan, D. Jayasooriya, P. Rajeev, and J. Sanjayan, “Applications of natural and synthetic fiber reinforced polymer in infrastructure: A suitability assessment,” Journal of Building Engineering, vol. 66, no. January, p. 105835, 2023. https://doi.org/10.1016/j.jobe.2023.105835