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Thermal Residual Stress in Environmental Barrier Coated Silicon Nitride - ModeledWhen exposed to combustion environments containing moisture both un-reinforced and fiber reinforced silicon based ceramic materials tend to undergo surface recession. To avoid surface recession environmental barrier coating systems are required. However, due to differences in the elastic and thermal properties of the substrate and the environmental barrier coating, thermal residual stresses can be generated in the coated substrate. Depending on their magnitude and nature thermal residual stresses can have significant influence on the strength and fracture behavior of coated substrates. To determine the maximum residual stresses developed during deposition of the coatings, a finite element model (FEM) was developed. Using this model, the thermal residual stresses were predicted in silicon nitride substrates coated with three environmental coating systems namely barium strontium aluminum silicate (BSAS), rare earth mono silicate (REMS) and earth mono di-silicate (REDS). A parametric study was also conducted to determine the influence of coating layer thickness and material parameters on thermal residual stress. Results indicate that z-direction stresses in all three systems are small and negligible, but maximum in-plane stresses can be significant depending on the composition of the constituent layer and the distance from the substrate. The BSAS and REDS systems show much lower thermal residual stresses than REMS system. Parametric analysis indicates that in each system, the thermal residual stresses can be decreased with decreasing the modulus and thickness of the coating.
Document ID
20090013863
Acquisition Source
Glenn Research Center
Document Type
Conference Paper
Authors
Ali, Abdul-Aziz
(Cleveland State Univ. Cleveland, OH, United States)
Bhatt, Ramakrishna T.
(Army Research Lab. Cleveland, OH, United States)
Date Acquired
August 24, 2013
Publication Date
January 18, 2009
Subject Category
Mechanical Engineering
Report/Patent Number
E-16967
Report Number: E-16967
Meeting Information
Meeting: The American Ceramic Society 33rd International Conference and Exposition on Advanced Ceramics and Composites
Location: Daytona Beach, FL
Country: United States
Start Date: January 18, 2009
End Date: January 23, 2009
Sponsors: American Ceramic Society
Funding Number(s)
WBS: WBS 877868.02.07.03.05.03
Distribution Limits
Public
Copyright
Public Use Permitted.
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