Microstructure and Fatigue Performance of Ti6Al4V Produced by Laser Powder Bed Fusion after Post-Heat Treatment

Author:

Yang Yulong123ORCID,Zhao Meng4,Wang Hong1,Zhou Kai123,He Yangdong1,Mao Yuyi5,Xie Deqiao6ORCID,Lv Fei17,Shen Lida1ORCID

Affiliation:

1. College of Mechanical and Electrical Engineering, Nanjing University of Aeronautics and Astronautics, Nanjing 210016, China

2. JITRI Institute of Precision Manufacturing, Nanjing 211806, China

3. Nanjing Hangpu Machinery Technology Co., Ltd., Nanjing 211806, China

4. FalconTech Co., Ltd., Wuxi 214028, China

5. National Center of Inspection on Additive Manufacturing Products Quality (JIANGSU), Wuxi 214028, China

6. College of Energy and Power Engineering, Nanjing University of Aeronautics and Astronautics, Nanjing 210016, China

7. Laboratory of High Power Fiber Laser Technology, Shanghai Institute of Optics and Fine Mechanics, The Chinese Academy of Sciences, Shanghai 201800, China

Abstract

With the development of additive manufacturing (AM), the Ti-6Al-4V alloy manufactured by laser powder bed fusion (LPBF) is becoming more widely studied. Fatigue fracture is the main failure mode of such components. During LPBF processing, porosity defects are unavoidable, which hinders the exploration of the relationship between fatigue performance and microstructure. In this study, a laser remelting method was used to reduce porosity defects inside the Ti-6Al-4V alloy. Three annealing treatments (AT) and three solution-aging treatments (SAT) were used to study the effect of the two-phase zone (α + β) microstructure on fatigue life and fatigue crack growth behavior. Fatigue life and crack growth rate (CGR) curves were obtained, and fatigue fracture surface and crack growth fracture surface were analyzed. The results show that microstructure influences fatigue life but has little effect on CGR. Compared with the as-built specimen, the fatigue life of the AT and SAT specimens increased significantly at 850℃ by 101 and 63.7 times, respectively. The thickness of the α lath and the location of crack nucleation together affect the fatigue life. In the stable growth stage, the layered microstructure of α colonies is the most resistant to crack growth.

Funder

the National Natural Science Foundation of China

the Key Research and Development Program of Jiangsu Provincial Department of Science and Technology of China

the China Post Doctoral Fund

Publisher

MDPI AG

Subject

Fluid Flow and Transfer Processes,Computer Science Applications,Process Chemistry and Technology,General Engineering,Instrumentation,General Materials Science

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