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January 10, 2014SHILAP Revista de lepidopterología1,008 citationsOpen Access

Exploration and Development of High Entropy Alloys for Structural Applications

DMD.B. MiracleJMJonathan D. MillerOSO.N. Senkov

Key Points

  • To establish a comprehensive design and evaluation strategy for high-entropy alloys tailored to structural use in the transportation and energy sectors across diverse temperature regimes.
  • Defined structural target properties across low (≤150 °C), medium (≤450 °C), and high (≥1,100 °C) temperature tiers using element palettes.
  • Applied thermodynamic CALPHAD modeling to assess configurational entropy effects on phase equilibria and the delay or suppression of compound formation.
  • Formulated a three-stage screening methodology combining high-throughput computational predictions with compositional gradient materials libraries.
  • Established that high-entropy alloy criteria accommodate both single-phase solid solutions and secondary intermetallic phases incorporated for particulate hardening.
  • Generated thermodynamic estimates characterizing how configurational entropy suppresses or delays brittle compound formation during synthesis.
  • Identified existing technical capabilities alongside critical missing components, specifically high-throughput tensile testing and microstructure gradient libraries.

Abstract

We develop a strategy to design and evaluate high-entropy alloys (HEAs) for structural use in the transportation and energy industries. We give HEA goal properties for low (≤150 °C), medium (≤450 °C) and high (≥1,100 °C) use temperatures. A systematic design approach uses palettes of elements chosen to meet target properties of each HEA family and gives methods to build HEAs from these palettes. We show that intermetallic phases are consistent with HEA definitions, and the strategy developed here includes both single-phase, solid solution HEAs and HEAs with intentional addition of a 2nd phase for particulate hardening. A thermodynamic estimate of the effectiveness of configurational entropy to suppress or delay compound formation is given. A 3-stage approach is given to systematically screen and evaluate a vast number of HEAs by integrating high-throughput computations and experiments. CALPHAD methods are used to predict phase equilibria, and high-throughput experiments on materials libraries with controlled composition and microstructure gradients are suggested. Much of this evaluation can be done now, but key components (materials libraries with microstructure gradients and high-throughput tensile testing) are currently missing. Suggestions for future HEA efforts are given.

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Cite This Study

Miracle et al. (2014) studied this question.

synapsesocial.com/papers/69d68c59e76a53de2732f681https://doi.org/10.3390/e16010494
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