4.7 Article

Effect of Zr addition on the local structure and mechanical properties of Ti-Ta-Nb-Zr refractory high-entropy alloys

Journal

JOURNAL OF MATERIALS RESEARCH AND TECHNOLOGY-JMR&T
Volume 19, Issue -, Pages 4428-4438

Publisher

ELSEVIER
DOI: 10.1016/j.jmrt.2022.06.160

Keywords

Refractory high-entropy alloy; Microstructure; Local lattice distortion; Solid-solution strengthening; First-principles calculations

Funding

  1. National Natural Science Foundation of China [52001271]
  2. Taishan Scholars Program of Shandong Province [tsqn202103052]
  3. Top Discipline in Materials Science of Shandong Province
  4. Natural Science Foundation of Shandong Province [ZR2021QE110]
  5. National Science Foundation [DMR-1611180, 1809640]
  6. US Army Research Office [W911NF-13-1-0438, W911NF-19-2-0049]

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Solid solution strengthening is the major mechanism for high strength in single-phase body-centered cubic refractory high-entropy alloys (RHEAS). Local lattice distortion (LLD) is considered as one of the core effects of HEAs and is believed to play a deterministic role in solid solution strengthening for RHEAS. However, this study shows that modulus mismatch dominates solid solution strengthening, even in severely distorted Zr-containing RHEAS. Additionally, an unexpected finding is that increasing Zr content accelerates grain growth, contrary to the sluggish diffusion effect proposed for HEAs.
Solid solution strengthening is the major strengthening mechanism that accounts for the high strength of single-phase body-centered cubic (BCC) refractory high-entropy alloys (RHEAS). Local lattice distortion (LLD), often regarded as one of the core effects of HEAs, is generally believed to be deterministic in solid solution strengthening for RHEAS since the loosely packed BCC crystal structure can accommodate significant LLD. To systematically investigate the effect of LLD on solid solution strengthening, the present study deliberately introduced different degrees of LLD in the experimentally fabricated BCC Ti65-xTa25Nb10Zrx(x = 0, 5, 10, 15, and 20) RHEAS by varying the Zr content. Subsequently, by combining experimental analysis, first-principles calculations, and theoretical modeling, it is found that yield strength, hardness, atomic radii, and LLD increase with the increase of Zr content. Moreover, through quantitative solid-solution strengthening analysis, it is demonstrated that the modulus mismatch dominates solid solution strengthening over LLD even for severely distorted Zr-containing RHEAS, contrary to the generally accepted assumption that solid solution strengthening is mainly from LLD effect. What's even more surprising is that the increase of Zr content accelerates grain growth, opposite to the sluggish diffusion effect proposed for HEAs. Our results shall guide the elemental selection for the design of high-strength RHEAS eradicating the random sampling in the endless compositional pool. (C) 2022 The Author(s). Published by Elsevier B.V.

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