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January 22, 2026Metallurgical and Materials Transactions A2 citationsOpen Access

Dissolution and Creep Deformation Behavior Near the Solvus Temperature of the ^ -Ni₂ (Cr, Mo, W) Phase in HAYNES® 244®

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VTVictoria TuckerTMThomas MannIBIan Bowley

Key Points

  • The research aims to investigate the creep deformation mechanisms of HAYNES 244 alloy near the solvus temperature of the gamma prime prime prime phase.
  • Conducted creep testing around the solvus temperature of the gamma prime prime prime phase.
  • Investigated phase stability and precipitation effects at elevated temperatures.
  • Analyzed different deformation mechanisms at varying temperatures.
  • Observed a transition from twinning to dislocation shearing as temperature increases.
  • Noted grain boundary dislocation pile-up after complete dissolution of the gamma prime prime prime phase.
  • Mixed twinning and dislocation shearing occurred in low volume fractions of the phase near the solvus.

Abstract

Abstract HAYNES ® 244 ® alloy is a high-strength, low coefficient of thermal expansion (CTE) Ni-based superalloy designed for use up to 760 ^ ∘ C. This alloy offers an improvement in maximum temperature operation and mechanical properties such as tensile strength and creep life over the previous generation of low CTE alloy, HAYNES ® 242 ®. Uniquely, it is strengthened through a body-centered orthorhombic (BCO) intermetallic phase, ^ γ ″ ′, a Ni ₂ 2 (Cr, Mo, W) precipitate. The additions of tungsten in the 244 alloy improve the thermal stability of the strengthening domains, compared to the 242 alloy, impeding diffusional effects of dislocation motion at elevated temperatures. To probe the possible deformation mechanisms that occur during high-temperature creep, creep testing in the vicinity of the ^ γ ″ ′ solvus was conducted to understand the interplay of ^ γ ″ ′ phase stability, precipitation of the μ phase above 760 ^ ∘ C, and the active creep deformation mechanisms. These mechanisms change from deformation twinning at the lower tested temperatures, to perfect dislocation shearing and noticeable grain boundary dislocation pile-up after the ^ γ ″ ′ has completely dissolved. During the intermediate temperature testing near the solvus, but where the ^ γ ″ ′ phase still remains in low volume fractions, a mixed twinning and dislocation shearing mechanism was observed. This manuscript elucidates the implications of mixed character creep deformation during high-temperature testing.

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Cite This Study

Tucker et al. (2026) studied this question.

synapsesocial.com/papers/6971be6b642b1836717e313fhttps://doi.org/10.1007/s11661-025-08076-w
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