Perspectives on Developing Burn Resistant Titanium Based Coatings—An Opportunity for Cold Spraying

Author:

Liang Sihan123,Tang Junlei2ORCID,Wang Yingying1,Duan Tigang3ORCID,Normand Bernard4ORCID,Chen Tongzhou5

Affiliation:

1. Key Laboratory of Optoelectronic Chemical Materials and Devices, Ministry of Education, Jianghan University, Wuhan 430030, China

2. School of Chemistry and Chemical Engineering, Southwest Petroleum University, Chengdu 610500, China

3. State Key Laboratory for Marine Corrosion and Protection, Luoyang Ship Material Research Institute (LSMRI), Qingdao 266237, China

4. INSA Lyon, Université de Lyon, MATEIS UMR CNRS 5510, Bat L. de Vinci, 21 Avenue Jean Capelle, 69621 Villeurbanne, France

5. Wuhan Research Institute of Materials Protection, Wuhan 430030, China

Abstract

Titanium alloys are crucial lightweight materials; however, they are susceptible to spontaneous combustion under high-temperature and high-pressure conditions, limiting their widespread use in aerospace engines. Improving the burn resistance of Ti alloys is essential for the structural safety and lightweight of aerospace equipment. Burn-resistant Ti alloys, such as Ti-V-Cr and Ti-Cu, however, face limitations such as high cost and low specific strength. Surface coatings provide a cost-effective solution while maintaining the high specific strength and good processability of the base material. Conventional surface treatments, such as laser cladding, result in defects and deformation of thin-walled parts. Cold spray technology offers a promising solution, as it uses kinetic energy to deposit coatings at low temperatures, avoiding defects and deformation. In this paper, we review the current research on burn-resistant surface technologies of Ti alloys and propose a new method of bimetallic coating by cold spraying and low-temperature heat treatment, which has the potential to solve the problem of spontaneous combustion of aerospace engine parts. The strategy presented can also guide the development of high-performance intermetallic compound-strengthened metal matrix composite coatings.

Funder

Science Center for Gas Turbine Project

National Natural Science Foundation of Chain

Project Funding to the Key R&D Program of Science and Technology Department of Sichuan Province

Publisher

MDPI AG

Subject

General Materials Science

Reference85 articles.

1. Titanium Alloys for Aerospace Applications;Peters;Adv. Eng. Mater.,2003

2. Hot Workability of Burn Resistant Ti-35V-15Cr-0.3Si-0.1C Alloy;Zhang;Mater. Sci. Technol.,2016

3. A Review on Combustion Behavior and Mechanism of Ti Alloys for Advanced Aero-Engine;Shao;J. Alloys Compd.,2023

4. Effects of the Alloying Element Cr on the Burning Behavior of Titanium Alloys;Zhao;J. Alloys Compd.,1999

5. Zhao, Y., Zhu, K., Li, Y., Liu, C., Feng, L., and Wu, H. (2008). One Kind β Type a Low Cost Titanium Alloy. (CN106507830B).

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