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May 13, 2026Materials1 citationsOpen Access

Investigation of the Effect of Preliminary Mechanical Treatment on the Mechanical Properties of 12Kh18N10T Stainless Steel After Ion-Plasma Nitriding

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ZAZarina AringozhinaBRBauyrzhan RakhadilovAAArnur Askhatov

Key Points

  • The aim is to examine how preliminary severe plastic deformation affects ion-plasma nitriding efficiency and nitrided layer formation in stainless steel.
  • Samples underwent vibro-impact ball mechanical treatment (VIMT) and ultrasonic nanocrystalline surface modification (UNSM) before ion-plasma nitriding (IPN) at 500 °C for 10 h.
  • Phase composition, microstructure, and mechanical properties were analyzed using X-ray diffraction (XRD), scanning electron microscopy (SEM), and other analyses.
  • UNSM-treated samples had a nitrogen concentration of 15.56 wt.% in the near-surface region, showing greater nitrogen diffusion than VIMT-treated samples.
  • Microhardness significantly increased post-nitriding for both treatments, with UNSM + IPN samples exhibiting superior scratch resistance and lower surface roughness compared to VIMT + IPN.

Abstract

This study investigates the influence of preliminary severe plastic deformation on the efficiency of ion-plasma nitriding (IPN) and the formation of a nitrided layer in 12Kh18N10T austenitic stainless steel. Two types of surface mechanical treatment were compared: vibro-impact ball mechanical treatment (VIMT) and ultrasonic nanocrystalline surface modification (UNSM). After the preliminary treatments, the samples were subjected to ion-plasma nitriding at 500 °C for 10 h using ammonia (NH3) as the working gas. The phase composition, microstructure, elemental distribution, surface roughness, microhardness, and scratch resistance were analyzed using X-ray diffraction (XRD), scanning electron microscopy (SEM) with energy-dispersive X-ray spectroscopy (EDS) analysis, profilometry, instrumented indentation, and progressive scratch testing. The results show that both types of preliminary treatment promote the formation of a nitrogen-enriched diffusion layer. The UNSM-treated samples exhibited more pronounced peak broadening and shifting in XRD patterns, indicating a higher level of lattice distortion and nitrogen supersaturation. The maximum nitrogen concentration in the near-surface region reached 15.56 wt.%. Microhardness increased significantly after nitriding for both treatments. Under the selected processing conditions, the UNSM + IPN samples demonstrated a thicker diffusion layer, lower surface roughness, and higher critical loads in scratch testing, indicating improved resistance to surface damage compared with VIMT + IPN samples. The obtained results highlight the important role of the defect structure formed during preliminary treatment in controlling nitrogen diffusion and the resulting mechanical and tribological properties of ion-plasma nitrided austenitic stainless steel.

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Cite This Study

Aringozhina et al. (2026) studied this question.

synapsesocial.com/papers/6a0414f679e20c90b4444cf8https://doi.org/10.3390/ma19101960
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