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Mechanical Behavior of Gamma-Met PX under Uniaxial Loading at Elevated Temperatures and High Strain RatesGamma titanium aluminides have received considerable attention over the last decade. These alloys are known to have low density, good high temperature strength retention and good oxidation and corrosion resistance. However, poor ductility and low fracture toughness have been the key limiting factors in the full utilization of these alloys. More recently, a new generation of gamma titanium aluminide alloys, commonly referred to as Gamma-met PX, has been developed by GKSS, Germany. These alloys have been observed to have superior strength and better oxidation resistance at elevated temperatures when compared with conventional gamma titanium aluminides. The present paper discusses results of a study to understand the uniaxial mechanical behavior in both compression and tension of Gamma-Met PX at elevated temperatures and high strain rates. The compression and tensile tests are conducted using a modified split-Hopkinson bar apparatus at test temperatures ranging from room temperature to 900 C and strain rates of up to 3500/s. Under uniaxial compression, in the temperature range from room to 600 C, the flow stress is observed to be nearly independent of test temperature. However, at temperatures higher than 600 C thermal softening is observed at all strain rates with the rate of thermal softening increasing dramatically between 800 C and 900 C. The room temperature tensile tests show negligible strain-rate dependence on both yield stress and flow stress. With an increase in test temperature from room to 900 C the material shows a drop in both yield and flow stress at all levels of plastic strain. However, the measured flow stress is still higher when compared to nickel based super-alloys and other gamma titanium aluminides under similar test conditions. Also, no anomaly in yield stress is observed up to 900 C.
Document ID
20050060704
Acquisition Source
Glenn Research Center
Document Type
Preprint (Draft being sent to journal)
Authors
Shazly, Mostafa
(Case Western Reserve Univ. Cleveland, OH, United States)
Prakash, Vikas
(Case Western Reserve Univ. Cleveland, OH, United States)
Draper, Susan
(NASA Glenn Research Center Cleveland, OH, United States)
Date Acquired
September 7, 2013
Publication Date
January 1, 2005
Subject Category
Metals And Metallic Materials
Report/Patent Number
E-14659
Report Number: E-14659
Funding Number(s)
CONTRACT_GRANT: NSF CMS-00-79458
WBS: WBS 22-708-24-01
CONTRACT_GRANT: NAG3-2677
CONTRACT_GRANT: NSF CMS-99-08189
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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