4.5 Article

Influence of the Evolution of 9CrMoCoB Steel Precipitates on the Microstructure and Mechanical Properties during High-Temperature Aging

Journal

JOURNAL OF MATERIALS ENGINEERING AND PERFORMANCE
Volume 30, Issue 12, Pages 9029-9037

Publisher

SPRINGER
DOI: 10.1007/s11665-021-06128-x

Keywords

9CrMoCoB steel; grain boundary; high-temperature aging; mechanical properties; precipitate

Funding

  1. Liaoning Province Doctoral Research Startup Fund Project [2019BS-168]
  2. China Post-doctoral Science Foundation [2019M661122]
  3. Key Research and Development Program of Shaanxi [2019GY-178, 2020GY-251, 2019GY-151]
  4. National Natural Science Foundation of China [51901193]
  5. Science and Technology Plan Project of Weiyang District in Xi'an City [201905]
  6. Science and Technology Project of Xi [2020KJRC0141]

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After high-temperature aging, the room-temperature and high-temperature strength of 9CrMoCoB steel decreased, mainly due to precipitates coarsening.
In this study, the short-term aging was carried out to reveal the evolution of precipitates and mechanical properties of heat resistant 9CrMoCoB steel during the early creep, replacing the conventional creeping. The tempered martensite lath structure (TMLS) and precipitates were observed in the as-aged 9CrMoCoB steel. TMLS in the matrix underwent a transition to the polygonal ferrite after aging only for 300 h. In comparison, the mean diameter of the precipitates increased from 183 to 267 nm after aging at 650 degrees C for 300 h. Also, the mean diameter of the precipitates increased from 183 to 302 nm at 700 degrees C. The room-temperature and high-temperature strength of 9CrMoCoB steel decreased after high-temperature aging, which may be mainly due to precipitates coarsening. Many M23C6 phases precipitate in the prior austenite grain boundary (PAGB) and lath boundary. After aging 100 h, TMLS transformed into polygonal ferrite, and the size of the precipitate at the subgrain boundary was about 100 nm, while after 300 h of high-temperature aging, large precipitates appear (400 nm) in the matrix. After 200 h of high-temperature aging, the obvious growth of precipitates on the PAGB and lath boundary weakens the pinning effect on the PAGB and martensite lath boundary and accelerates the transformation of microstructure and mechanical properties.

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