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A Dispersion-Strengthened Low-Density Niobium Alloy and Its Elevated Temperature Mechanical PerformanceIn response to the elevated-temperature and weight-reduction demands of modern aerospace applications, a novel oxide-dispersion-strengthened low-density niobium alloy (LDNb-ODS) was fabricated using laser powder bed fusion (L-PBF). To overcome powder procurement barriers, L-PBF feedstock was produced by blending commercial Nb521, Ti64, and Cr powder with Y2O3 nanoparticles via resonant acoustic mixing. Following L-PBF and a 1400°C vacuum heat treatment, the alloy achieved a density of 6.73 g/cc and a fine mean grain size of 4.62 µm stabilized by uniform ~30 nm yttria dispersoids. Microstructural analysis revealed a chemically inhomogeneous build with lack-of-fusion defects and a titanium (Ti) shift from a nominal 31.5 wt% in the starting powder blend to 24.8 wt% in the printed part due to preferential Ti loss during printing. Elevated-temperature tensile testing demonstrated that LDNb-ODS maintained a superior specific yield strength of 60-85 MPa/(g/cc) up to 800°C, outperforming nickel-based alloys Ni625, Ni230, and GRX-810. Between 870°C and 950°C, its specific strength surpassed both Ni718 and Ni625. In rapid stress-rupture testing at 1093°C and 20.7 MPa, uncoated LDNb-ODS survived 21.4 hours (a tenfold increase over legacy C-103) while an R512E silicide coating extended rupture life to 84.8 hours, confirming that oxidation accelerates low-stress failure. These findings demonstrate that additive manufacturing of LDNb-ODS provides a viable, lightweight alternative to nickel-based superalloys for high-temperature (>850°C) aerospace components.
Document ID
20260007877
Acquisition Source
Glenn Research Center
Document Type
Technical Memorandum (TM)
Authors
Eric Brizes
(Glenn Research Center Cleveland, United States)
Timothy Smith
(Glenn Research Center Cleveland, United States)
Christopher Kantzos
(Glenn Research Center Cleveland, United States)
Justin Milner
(Glenn Research Center Cleveland, United States)
Rebekah Webster
(Glenn Research Center Cleveland, United States)
Aurelia Moriyama-Gurish
(Yale University New Haven, United States)
Doyle Weishar
(University of Virginia Charlottesville, United States)
Date Acquired
August 17, 2026
Publication Date
September 1, 2026
Publication Information
Publisher: National Aeronautics and Space Administration
Subject Category
Metals and Metallic Materials
Report/Patent Number
NASA/TM-20260007877
E-20457
Funding Number(s)
WBS: 470111.10.26.22.04
Distribution Limits
Public
Copyright
Use by or on behalf of the US Gov. Permitted.
Technical Review
Single Expert
Keywords
Low Density Niobium Alloy
Additive Manufacturing
Laser Powder Bed Fusion
Oxide Dispersion Strengthening
Mechanical Properties
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