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Investigation of Advanced Processed Single-Crystal Turbine Blade AlloysThis investigation studied the influence of thermal processing and microstructure on the mechanical properties of the single-crystal, nickel-based superalloys PWA 1482 and PWA 1484. The objective of the program was to develop an improved single-crystal turbine blade alloy that is specifically tailored for use in hydrogen fueled rocket engine turbopumps. High-gradient casting, hot isostatic pressing (HIP), and alternate heat treatment (HT) processing parameters were developed to produce pore-free, eutectic-free microstructures with different (gamma)' precipitate morphologies. Test materials were cast in high thermal gradient solidification (greater than 30 C/cm (137 F/in.)) casting furnaces for reduced dendrite arm spacing, improved chemical homogeneity, and reduced interdendritic pore size. The HIP processing was conducted in 40 cm (15.7 in.) diameter production furnaces using a set of parameters selected from a trial matrix study. Metallography was conducted on test samples taken from each respective trial run to characterize the as-HIP microstructure. Post-HIP alternate HT processes were developed for each of the two alloys. The goal of the alternate HT processing was to fully solution the eutectic gamma/(gamma)' phase islands and to develop a series of modified (gamma)' morphologies for subsequent characterization testing. This was accomplished by slow cooling through the (gamma)' solvus at controlled rates to precipitate volume fractions of large (gamma)'. Post-solution alternate HT parameters were established for each alloy providing additional volume fractions of finer precipitates. Screening tests included tensile, high-cycle fatigue (HCF), smooth and notched low-cycle fatigue (LCF), creep, and fatigue crack growth evaluations performed in air and high pressure (34.5 MPa (5 ksi)) hydrogen at room and elevated temperature. Under the most severe embrittling conditions (HCF and smooth and notched LCF in 34.5 MPa (5 ksi) hydrogen at 20 C (68 F), screening test results showed increases in fatigue life typically on the order of 1OX, when compared to the current Space Shuttle Main Engine (SSME) Alternate Turbopump (AT) blade alloy (PWA 1480).
Document ID
19960017548
Acquisition Source
Marshall Space Flight Center
Document Type
Contractor Report (CR)
Authors
Peters, B. J.
(United Technologies Corp. West Palm Beach, FL United States)
Biondo, C. M.
(United Technologies Corp. West Palm Beach,FL United States)
DeLuca, D. P.
(United Technologies Corp. West Palm Beach,FL United States)
Date Acquired
September 6, 2013
Publication Date
December 1, 1995
Subject Category
Metallic Materials
Report/Patent Number
FR-24007
NAS 1.26:199837
NASA-CR-199837
Report Number: FR-24007
Report Number: NAS 1.26:199837
Report Number: NASA-CR-199837
Accession Number
96N23130
Funding Number(s)
CONTRACT_GRANT: NAS8-39050
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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