Acta Metallurgica Sinica (English Letters) ›› 2021, Vol. 34 ›› Issue (6): 872-884.DOI: 10.1007/s40195-020-01139-4

Previous Articles    

Correlation Between Phase Stability and Tensile Properties of the Ni-Based Superalloy MAR-M247

Linxu Li1,2, Xiufang Gong1, Changshuai Wang3(), Yunsheng Wu3, Hongyao Yu4,5, Haijun Su2(), Lanzhang Zhou3   

  1. 1State Key Laboratory of Long-Life High Temperature Materials, Dong Fang Turbine Co., Ltd, Deyang, 618000, China
    2State Key Laboratory of Solidification Processing, Northwestern Polytechnical University, Xi’an, 710072, China
    3Institute of Metal Research, Chinese Academy of Sciences, Shenyang, 110016, China
    4Beijing Key Laboratory of Advanced High Temperature Materials, Beijing, 100081, China
    5Beijing CISRI-GAONA Materials and Technology CO., LTD, Beijing, 100081, China
  • Received:2020-06-09 Revised:2020-07-14 Accepted:2020-07-23 Online:2021-06-10 Published:2021-05-31
  • Contact: Changshuai Wang,Haijun Su
  • About author:Haijun Su,shjnpu@nwpu.edu.cn
    Changshuai Wang,cswang@imr.ac.cn;

Abstract:

Phase stability and its effect on tensile properties of MAR-M247 alloy have been investigated during thermal exposure at 800-900 °C for up to 10,000 h. Detailed investigations reveal that the larger secondary γ′ phase has no obvious growth, but the smaller tertiary γ′ phase obviously coarsens and the coalescence occurs during thermal exposure at 850 °C and below. γ′ coarsening behavior is consistent with the description of Ostwald ripening theory before γ′ coalescence. Hf-rich blocky MC carbide shows excellent thermal stability, but Ta-rich script-type MC carbide gradually degenerates via reaction, MC + γ → M23C6 + γ′ and finally forms γ׳ film around MC and M23C6 carbides. With increasing thermal exposure time, the tensile strength decreases. The ductility first increases and then decreases during exposure at 800 °C, but it decreases continuously at 900 °C. In addition, the ductility keeps almost constant when the exposure time is longer than 5000 h.

Key words: Ni-based superalloy, Phase stability, Tensile properties, Fractural behavior