Computational design of a novel medium-carbon, low-alloy steel microalloyed with niobium

  • Vahid Javaheri*
  • , Tuomo Nyyssönen
  • , Bjørnar Grande
  • , David Porter
  • *Corresponding author for this work

    Research output: Contribution to journalArticleScientificpeer-review

    28 Citations (Scopus)

    Abstract

    The design of a new steel with specific properties is always challenging owing to the complex interactions of many variables. In this work, this challenge is dealt with by combining metallurgical principles with computational thermodynamics and kinetics to design a novel steel composition suitable for thermomechanical processing and induction heat treatment to achieve a hardness level in excess of 600 HV with the potential for good fracture toughness. CALPHAD-based packages for the thermodynamics and kinetics of phase transformations and diffusion, namely Thermo-Calc® and JMatPro®, have been combined with an interdendritic segregation tool (IDS) to optimize the contents of chromium, molybdenum and niobium in a proposed medium-carbon low-manganese steel composition. Important factors taken into account in the modeling and optimization were hardenability and as-quenched hardness, grain refinement and alloying cost. For further investigations and verification, the designed composition, i.e., in wt.% 0.40C, 0.20Si, 0.25Mn, 0.90Cr, 0.50Mo, was cast with two nominal levels of Nb: 0 and 0.012 wt.%. The results showed that an addition of Nb decreases the austenite grain size during casting and after slab reheating prior to hot rolling. Validation experiments showed that the predicted properties, i.e., hardness, hardenability and level of segregation, for the designed composition were realistic. It is also demonstrated that the applied procedure could be useful in reducing the number of experiments required for developing compositions for other new steels.

    Original languageEnglish
    Pages (from-to)2978-2992
    Number of pages15
    JournalJournal of Materials Engineering and Performance
    Volume27
    Issue number6
    DOIs
    Publication statusPublished - Jun 2018
    Publication typeA1 Journal article-refereed

    Keywords

    • CALPHAD
    • computational design
    • homogenization
    • IDS
    • JMatPro
    • microsegregation
    • prior austenite grain size
    • Thermo-Calc
    • wear resistance steel

    Publication forum classification

    • Publication forum level 1

    ASJC Scopus subject areas

    • General Materials Science
    • Mechanics of Materials
    • Mechanical Engineering

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