EFFECT OF OXIDE ON SOLID PARTICLE EROSION BEHAVIOR OF AISI 410 MARTENSITIC STAINLESS STEEL

Authors

  • Watcharapong Rungphetwong Department of Materials and production technology engineering, Faculty of engineering, King Mongkut’s University of Technology North Bangkok, Bangkok, Thailand.
  • Mack Boonpensin Department of Materials and production technology engineering, Faculty of engineering, King Mongkut’s University of Technology North Bangkok, Bangkok, Thailand.
  • Piyorose Promdirek Department of Materials and production technology engineering, Faculty of engineering, King Mongkut’s University of Technology North Bangkok, Bangkok, Thailand.
  • Pornsak Thasanaraphan Material Properties Analysis and Development Centre, Thailand Institute of Scientific and TechnologicalResearch, Pathumthani, Thailand.

Keywords:

Solid Particle Erosion, Martensitic, AISI 410, Oxidation

Abstract

The objective of this research is to study the effect of oxide scale on the solid particles erosion behavior of AISI 410 martensitic stainless steel (12%Cr, 0.15%C) which was used as a wearing plate in the Coal-fired Power plant due to high strength and oxidation resistance properties. Solid particle erosion tests were investigated with several parameters such as velocities and impact angles for bare and oxidized samples. The erosion behavior of oxidized samples with the simulated atmosphere (1%SO2, 20%H2O, 20%CO2, 10%O2, N2%) at 600C for 100 h was compared with bare samples at room temperature. The results showed that the oxide led to a decreasing erosion rate for all impact velocities. Moreover, the surface morphology was finally examined by SEM. The erosion behavior of MSS was further discussed in this research.

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Published

2026-08-28

How to Cite

Rungphetwong, W., Boonpensin, M., Promdirek, P., & Thasanaraphan, P. (2026). EFFECT OF OXIDE ON SOLID PARTICLE EROSION BEHAVIOR OF AISI 410 MARTENSITIC STAINLESS STEEL. Suranaree Journal of Science and Technology, 29(1), 010088(1–7). retrieved from https://ph04.tci-thaijo.org/index.php/SUJST/article/view/15035

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Research Article