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Oxidation of TaSi2-Containing ZrB2-SiC Ultra-High Temperature MaterialsHot pressed coupons of composition ZrB2-20 v% SiC-5 v% TaSi2 and ZrB2-20 v% SiC-20 v% TaSi2 were oxidized in stagnant air at temperatures of 1627 and 1927C for one, five and ten 10-minute cycles. The oxidation reactions were characterized by weight change kinetics, x-ray diffraction, and SEM/EDS. Detailed WDS/microprobe quantitative analyses of the oxidation products were conducted for the ZrB2-20 v% SiC-20 v% TaSi2 sample oxidized for five 10-minute cycles at 1927C. Oxidation kinetics and product formation were compared to ZrB2-20 v% SiC with no TaSi2 additions. It was found that the 20 v% TaSi2 composition exhibited improved oxidation resistance relative to the material with no TaSi2 additions at 1627C. However, for exposures at 1927C less oxidation resistance and extensive liquid phase formation were observed compared to the material with no TaSi2 additions. Attempts to limit the liquid phase formation by reducing the TaSi2 content to 5 v% were unsuccessful. In addition, the enhanced oxidation resistance at 1627C due to 20 v% TaSi2 additions was not achieved at the 5 v% addition level. The observed oxidation product evolution is discussed in terms of thermodynamics and phase equilibria for the TaSi2-containing ZrB2-SiC material system. TaSi2-additions to ZrB2-SiC at any level are not recommended for ultra-high temperature (>1900C) applications due to excessive liquid phase formation.
Document ID
20100042270
Acquisition Source
Glenn Research Center
Document Type
Reprint (Version printed in journal)
Authors
Opila, Elizabeth J.
(NASA Glenn Research Center Cleveland, OH, United States)
Smith, Jim
(NASA Glenn Research Center Cleveland, OH, United States)
Levine, Stanley R.
(NASA Glenn Research Center Cleveland, OH, United States)
Lorincz, Jonathan
(CONTECH Construction Products, Inc. Englewood, OH, United States)
Reigel, Marissa
(Savannah River Nuclear Solutions Aiken, SC, United States)
Date Acquired
August 25, 2013
Publication Date
January 1, 2010
Publication Information
Publication: The Open Aerospace Engineering Journal
Publisher: Betham Open
Volume: 3
Subject Category
Chemistry And Materials (General)
Report/Patent Number
E-17513
Report Number: E-17513
Funding Number(s)
WBS: WBS 599489..02.07.03.02.04.01
Distribution Limits
Public
Copyright
Public Use Permitted.
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