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April 1, 2026Advanced Engineering Materials0 citations

The Unique Influence of Boron Microalloying on Tensile Properties in a Ni‐Co‐Cr‐Based Superalloy

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SLShihua LiuXGXianjun GuanLZLe Zhao

Key Points

  • This work aims to explore how boron microalloying affects the tensile properties and fracture behaviors of a Ni-Co-Cr-based superalloy across various temperatures.
  • Conducted tensile performance tests at temperatures from room temperature to 1000°C.
  • Performed microstructure characterization of alloys with and without boron microalloying.
  • Analyzed mechanical behavior, including ultimate tensile strength and yield strength changes at different temperatures.
  • Ultimate tensile strength declines gradually below 600°C but sharply above this temperature.
  • Yield strength decreases slowly below 900°C and drops abruptly beyond it.
  • Boron microalloying improves yield strength below 700°C but reduces work hardening and ultimate tensile strength.
  • Between 700°C and 850°C, boron effects on strength are negligible but ductility improves due to stronger grain boundaries.
  • Above 900°C, boron increases strain localization while slightly reducing yield strength.

Abstract

This work systematically investigated the tensile deformation and fracture behaviors of a Ni‐Co‐Cr‐based superalloy in the temperature range from room temperature to 1000°C through tensile performance tests at different temperatures and corresponding microstructure characterization on the alloys with and without boron (B) microalloying, revealing the effects and mechanisms of B microalloying at different temperatures. The mechanical behavior of the alloy shows distinct thermal sensitivity. Ultimate tensile strength (UTS) declines gradually below 600°C but sharply above this threshold. Yield strength (YS) decreases slowly below 900°C and drops abruptly beyond it. Below 700°C, B microalloying marginally improves YS but hinders work hardening, reducing UTS. Between 700°C and 850°C, B has a negligible effect on strength but enhances ductility by strengthening grain boundaries. Above 900°C, B exacerbates strain localization and slightly reduces YS. B microalloying induces a transition in deformation mechanisms from planar to wavy slip at low temperatures, thereby inhibiting dislocation multiplication and reducing strain hardening effects. Therefore, the role of B microalloying shifts from promoting ductility at intermediate temperatures to exerting a detrimental effect at ultrahigh temperatures.

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Cite This Study

Liu et al. (2026) studied this question.

synapsesocial.com/papers/69cd7ab35652765b073a8113https://doi.org/10.1002/adem.202502305
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