Microstructure and Oxidation Behavior of C‐HRA‐5 Austenitic Heat‐Resistant Steel in Air at the Temperature Range of 650–750 °C

Author:

Jia Jianwen12,Li Hui1,Du Huayun123,Ren Juanna4,Liang Huimin1,Hou Lifeng12,Wei Huan12,Hou Hua3,Liu Xiaoda12,Wei Yinghui12,Guo Zhanhu5ORCID

Affiliation:

1. College of Materials Science and Engineering Taiyuan University of Technology Taiyuan 030024 China

2. Shanxi Engineering Technology Research Center of Corrosion and Protection for Metallic Materials Taiyuan 030024 China

3. Shanxi‐Zheda Institute of Advanced Materials and Chemical Engineering Taiyuan 030024 China

4. College of Materials Science and Engineering Taiyuan University of Science and Technology Taiyuan 030024 China

5. Department of Mechanical and Civil Engineering Northumbria University Newcastle upon Tyne NE1 8ST UK

Abstract

This study investigates the oxidation behavior and microstructure characterization of C‐HRA‐5 (i.e., a new austenitic heat‐resistant steel) in the air at temperatures ranging from 650 to 750 °C over a 1000‐hour duration. The oxidation behavior and mechanism are analyzed using gravimetric evaluation, thermodynamic analysis, microscopic morphology, and microstructure characterization. The results indicate that the oxidation behavior follows a parabolic law at each temperature. With increasing temperature, the oxide film gradually grows and transforms from small lump particles to strips and needles, eventually covering the entire substrate surface over time. Moreover, long‐term oxidation exposure promotes the formation of various phases, including M23C6, σ, MX, Z, nanosized Cu‐rich, and Laves phases, within the metallic substrate. Considering potential applications in new‐generation power plants, this study provides a solid foundation to disclose the possible oxidation of C‐HRA‐5 austenitic heat‐resistant steel at high temperatures.

Publisher

Wiley

Subject

Condensed Matter Physics,General Materials Science

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