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Effect of electron beam welding on the microstructures and mechanical properties of thick TC4-DT alloy
Affiliation:1. Department of Mechanical Engineering, Tsinghua University, Beijing 100084, China;2. State Key Laboratory of Tribology, Tsinghua University, Beijing 100084, China;3. Key Laboratory for Advanced Materials Processing Technology, Ministry of Education, China;4. Capital Aerospace Machinery Company, Beijing 100076, China;5. China Academy of Launch Vehicle Technology, Beijing 100076, China;1. Institute of Metal Research, Chinese Academy of Sciences, Shenyang 110016, China;2. School of Materials Science and Engineering, University of Science and Technology of China, Hefei 230026, China;3. Beijing Aeronautical Manufacturing Technology Research Institute, Beijing 100024, China
Abstract:Electron beam welding (EBW) was applied to 50 mm thick damage-tolerant Ti–6Al–4V (TC4-DT) alloy, and microstructure, microhardness and tensile properties of the defect-free welded joints were examined. The results indicated that the microstructure of the base metal is composed of primary α phases and the lamellar (α + β) bimodal structure. For the EBW joint, martensite basketweave microstructure is formed in fusion zone (FZ). Moreover, the heat affected zone (HAZ) near FZ consists of acicular martensite and a small portion of primary α phase. The HAZ near base metal consists of primary α phase and transformed β containing aciculate α. It is found that the boundary of the two portions of the HAZ was dependent on the β phase transus temperature during weld cooling. Microhardness values for FZ and HAZ are higher than that of base metal, and there are the peak values for the HAZ near the weld metal. The fracture locations of all the EBW tensile specimens are in base metal, and the ultimate tensile strength of the joints may reach about 95% of the base metal. In addition, with the depth increasing along the weld thick direction, the grain size of the FZ decreases and microhardness increases.
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