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January 24, 2026Materials Testing0 citationsOpen Access

Effect of austenitizing heat treatment on microhardness and corrosion resistance of 1.4116 martensitic stainless steel

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MAMeryem AltayHAHakan AydınEPEnes Pirge

Key Points

  • This research aims to determine the optimal heat treatment parameters for achieving high hardness and corrosion resistance in 1.4116 martensitic stainless steel.
  • Experimental investigation of temperature and time parameters in austenitizing heat treatment
  • Examination of temperature ranges from 1,000 °C to 1,120 °C and durations of 180s, 210s, and 260s
  • Microstructure analysis to assess the ratios of martensite, carbide, and retained austenite
  • At 1,080 °C, complete austenite transformation and significant carbide dissolution were achieved, resulting in maximum hardness.
  • Higher treatment temperatures led to grain coarsening and reduced hardness due to retained austenite.
  • Longer durations decreased retained austenite and increased hardness, while also improving corrosion resistance.
  • Samples with higher hardness showed lower corrosion resistance, but increased treatment duration improved resistance.

Abstract

Abstract Martensitic stainless steels are utilized in applications requiring high hardness, low wear, and elevated corrosion resistance. Owing to their high alloying element content, they can be hardened through heat treatment. To achieve the desired mechanical properties and corrosion resistance, heat treatment parameters must be appropriately selected; the ratios of martensite, carbide, and retained austenite in the microstructure should be balanced. In this study, temperature and time parameters in the austenitizing heat treatment of 1.4116 (X50CrMoV15) martensitic stainless steel, commonly used in the knife manufacturing industry, were experimentally investigated to obtain an optimal microstructure, maximum hardness, and high corrosion resistance. Temperature values of 1,000 °C, 1,020 °C, 1,040 °C, 1,080 °C, 1,100 °C, and 1,120 °C, as well as durations of 180 s, 210 s, and 260 s, were examined. At lower temperatures, insufficient hardness was achieved due to incomplete austenite transformation and partial dissolution of carbides. At higher temperatures, grain coarsening and retained austenite formation led to a decrease in hardness. At the optimal temperature of 1,080 °C, significant carbide dissolution occurred, complete austenite transformation was achieved, and high-carbon martensite was formed, resulting in maximum hardness. In the time-based experiments, an increase in duration led to a reduction in retained austenite in the microstructure and an increase in hardness. From a corrosion resistance perspective, samples with higher hardness exhibited lower corrosion resistance; however, with increasing duration, corrosion resistance improved due to the activation of diffusion mechanisms.

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Cite This Study

Altay et al. (2026) studied this question.

synapsesocial.com/papers/6974602bbb9d90c67120a0dchttps://doi.org/10.1515/mt-2025-0261
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