Effects of microstructural variability on thermo-mechanical properties of a woven ceramic matrix composite
Author(s) -
Marlana B. Goldsmith,
Bhavani V. Sankar,
Raphael T. Haftka,
Robert K. Goldberg
Publication year - 2014
Publication title -
journal of composite materials
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.608
H-Index - 91
eISSN - 1530-793X
pISSN - 0021-9983
DOI - 10.1177/0021998313519151
Subject(s) - materials science , representative elementary volume , composite material , composite number , finite element method , ceramic matrix composite , ceramic , material properties , matrix (chemical analysis) , structural engineering , microstructure , engineering
The objectives of this paper include identifying important architectural parameters that describe the SiC/SiC five-harness satin weave composite and characterizing the statistical distributions and correlations of those parameters from photomicrographs of various cross sections. In addition, realistic artificial cross sections of a 2D representative volume element (RVE) are generated reflecting the variability found in the photomicrographs and include explicitly modeled voids (something not routinely done for woven CMCs). These models are used to make preliminary observation of the effects of architectural variability on the thermo-mechanical properties (material constants). Lastly, information is obtained on the sensitivity of linear thermo-mechanical properties to architectural variations. Two-dimensional finite element analysis is used in combination with a response surface and it is shown that the present method is effective in determining the effects of architectural variability on thermo-mechanical properties and their variability.
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