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Effect of Heat Treatment on Mechanical Properties of Pure Titanium by Additive Manufacturing
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1.Institute of Mechanical Engineering,Shandong University of Technology,Zi’bo;2.Shandong Xinhua Medical Devices Co,Ltd,Zi’bo

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    Abstract:

    Selective laser melting (SLM) can directly produce personalized medical implants with complex shapes based on CAD models. The paper presents an investigate on the evolution of microstructure and mechanical properties of biological pure titanium (TA1) from SLM to subsequent heat treatment. The results show that the SLMed TA1 alloy possess needle-like martensite a′ and retained prior-β columnar morphology along the building direction. After heat treatment, recrystallized equiaxed a grains are formed and the reduced porosity was found due to pores volume decrease or pores closure. In addition, the precipitations of fine TiFe and TiO2 were observed along grain boundary or within grains in the samples treated by vacuum annealing at 800 ℃. They precipitate selectivity along the grain boundaries with different character. The subsequent heat treatments, especially vacuum annealing, significantly improve the mechanical properties of the SLMed TA1 samples, which is ascribed to combined effects of porosity decrease and the precipitation of TiFe/TiO2 phase upon annealing.

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[Shen Falei, Xia Weilong, Lou Dianjun, Guo Nana, Li Haoqing, Liu Shuyu, Fang Xiaoying. Effect of Heat Treatment on Mechanical Properties of Pure Titanium by Additive Manufacturing[J]. Rare Metal Materials and Engineering,2022,51(1):232~240.]
DOI:10.12442/j. issn.1002-185X.20210039

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History
  • Received:January 13,2021
  • Revised:March 25,2021
  • Adopted:April 15,2021
  • Online: February 09,2022
  • Published: January 28,2022