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April 24, 2026Metals0 citationsOpen Access

Effect of Dynamic Recrystallization Response on Ductility Dip Cracking Susceptibility in Welds of High-Chromium Nickel-Based Alloys

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ASAnil SinghABAndreas BezoldMMMichael J. Mills

Key Points

  • This research aims to quantify the relationship between dynamic recrystallization and ductility dip cracking susceptibility in high-chromium nickel-based welds.
  • Investigated dynamic recrystallization behavior under controlled thermo-mechanical conditions using Gleeble 3800TM.
  • Assessed ductility dip cracking susceptibility through strain-to-fracture testing at elevated temperatures.
  • Analyzed recrystallization and microstructure using electron backscatter diffraction and transmission electron microscopy.
  • Higher dynamic recrystallization responses were observed in weld metals with strong carbide formers.
  • FM-52i exhibited the most grain refinement at 51.22% reduction in average grain surface area.
  • All tested weld metals showed reduced ductility dip cracking susceptibility with increased recrystallization and decreased grain surface area.

Abstract

Ductility dip cracking (DDC) remains a persistent challenge in multipass welds of high-chromium nickel-based alloys used in the nuclear power generation industry. While dynamic recrystallization (DRX) has been observed to arrest DDC crack growth and has been associated with weld regions that experience less DDC, there exists no quantitative relationship between the extent of recrystallization in a microstructure and DDC susceptibility. This research examines the influence of intragranular carbides on DRX behavior and establishes an experimental relationship between DDC susceptibility and extent of recrystallization in high-chromium nickel-based weld metals, novel contributions for this alloy system. In this work, the DRX behavior of the weld metal of high-chromium nickel-based filler metals (FM-52, FM-52M, FM-52i, and FM-52xl) was investigated under controlled thermo-mechanical conditions, and its effect on DDC susceptibility was established. Weld metal specimens were subjected to uniaxial deformation at 1100 °C to a true strain of 2% at strain rates of 10−3/s and 10−4/s using a Gleeble 3800TM. Recrystallization was quantified using electron backscatter diffraction (EBSD) via grain orientation spread (GOS) analysis and dislocation–precipitate interactions were examined using transmission electron microscopy (TEM). Strain-to-fracture (STF) testing at 950 °C was employed to assess DDC susceptibility as a function of the extent of recrystallization and grain surface area. All tested weld metals exhibited increased recrystallization and grain refinement, as the strain rate decreased from 10−3/s to 10−4 s. The FM-52i weld metal specimens exhibited the highest grain refinement under high temperature deformation, followed by the FM-52xl, FM-52, and FM-52M weld metals with a percent reduction in average grain surface area of 51.22%, 41.66%, 35.48%, and 24.40%, respectively. The FM-52i weld metal specimens also exhibited the highest recrystallization response, followed by FM-52M, FM-52xl, and FM-52 weld metals at 75%, 40%, 39% and 21% recrystallized, respectively. Weld metals containing strong carbide formers experienced higher recrystallization responses than those without due to precipitate–carbide interactions. All tested weld metals experienced drastic reductions in DDC response with increasing extent of recrystallization and decreasing average grain surface areas. DRX in STF specimens was observed to facilitate uniform plastic strain accumulation, lowering overall DDC susceptibility compared to non-recrystallized specimens.

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Cite This Study

Singh et al. (2026) studied this question.

synapsesocial.com/papers/69eb09c9553a5433e34b40dbhttps://doi.org/10.3390/met16040453
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