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A 3D printable alloy designed for extreme environments

Author

Listed:
  • Timothy M. Smith

    (NASA Glenn Research Center)

  • Christopher A. Kantzos

    (NASA Glenn Research Center)

  • Nikolai A. Zarkevich

    (NASA Ames Research Center)

  • Bryan J. Harder

    (NASA Glenn Research Center)

  • Milan Heczko

    (The Ohio State University)

  • Paul R. Gradl

    (NASA Marshall Space Flight Center)

  • Aaron C. Thompson

    (HX5 LLC)

  • Michael J. Mills

    (The Ohio State University)

  • Timothy P. Gabb

    (NASA Glenn Research Center)

  • John W. Lawson

    (NASA Ames Research Center)

Abstract

Multiprincipal-element alloys are an enabling class of materials owing to their impressive mechanical and oxidation-resistant properties, especially in extreme environments1,2. Here we develop a new oxide-dispersion-strengthened NiCoCr-based alloy using a model-driven alloy design approach and laser-based additive manufacturing. This oxide-dispersion-strengthened alloy, called GRX-810, uses laser powder bed fusion to disperse nanoscale Y2O3 particles throughout the microstructure without the use of resource-intensive processing steps such as mechanical or in situ alloying3,4. We show the successful incorporation and dispersion of nanoscale oxides throughout the GRX-810 build volume via high-resolution characterization of its microstructure. The mechanical results of GRX-810 show a twofold improvement in strength, over 1,000-fold better creep performance and twofold improvement in oxidation resistance compared with the traditional polycrystalline wrought Ni-based alloys used extensively in additive manufacturing at 1,093 °C5,6. The success of this alloy highlights how model-driven alloy designs can provide superior compositions using far fewer resources compared with the ‘trial-and-error’ methods of the past. These results showcase how future alloy development that leverages dispersion strengthening combined with additive manufacturing processing can accelerate the discovery of revolutionary materials.

Suggested Citation

  • Timothy M. Smith & Christopher A. Kantzos & Nikolai A. Zarkevich & Bryan J. Harder & Milan Heczko & Paul R. Gradl & Aaron C. Thompson & Michael J. Mills & Timothy P. Gabb & John W. Lawson, 2023. "A 3D printable alloy designed for extreme environments," Nature, Nature, vol. 617(7961), pages 513-518, May.
  • Handle: RePEc:nat:nature:v:617:y:2023:i:7961:d:10.1038_s41586-023-05893-0
    DOI: 10.1038/s41586-023-05893-0
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