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Steam oxidation and microstructural evolution of rare earth silicate environmental barrier coatings

  • Mackenzie Ridley
  • , Kenneth Kane
  • , Michael Lance
  • , Cory Parker
  • , Yi Feng Su
  • , Sanjay Sampath
  • , Eugenio Garcia
  • , Marshall Sweet
  • , Molly O'Connor
  • , Bruce Pint
  • Oak Ridge National Laboratory
  • Stony Brook University
  • Praxair

Research output: Contribution to journalArticlepeer-review

48 Scopus citations

Abstract

A primary failure mode for environmental barrier coatings (EBCs) on SiC ceramic matrix composites (CMCs) is the oxidation of the intermediate Si-bond coating, where the formation of SiO2 at the bond coating–EBC interface results in debonding and spallation. This work compares the microstructure evolution and steam oxidation kinetics of the Si-bond coating beneath yttrium/ytterbium disilicate ((Y/Yb)DS) and ytterbium disilicate/monosilicate (YbDS/YbMS) EBCs to better understand the impact of EBC composition on oxidation kinetics. After 500 1-h cycles at 1350°C, (Y/Yb)DS displayed a decreasing concentration of the monosilicate minor phase and increasing concentration of porosity as furnace cycling time increased, whereas the YbDS/YbMS EBC displayed negligible microstructural evolution. For both EBC systems, thermally grown oxide growth rates in steam were found to increase by approximately an order magnitude compared to dry air oxidation. The (Y/Yb)DS EBC displayed a reduced steam oxidation rate compared to YbDS/YbMS.

Original languageEnglish
Pages (from-to)613-620
Number of pages8
JournalAdvanced Ceramic Materials
Volume106
Issue number1
DOIs
StatePublished - Jan 2023

Keywords

  • Raman spectroscopy
  • environmental barrier coatings (EBC)
  • oxidation

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