Tensile and uniaxial/multiaxial fatigue behavior of ceramic matrix composites at ambient and elevated temperatures

Increasing use of fiber reinforced ceramic matrix composites (CMC's) materials is needed, especially for hostile environments such as elevated temperatures. However, some fundamental issues regarding how these materials should be made for optimized performance are far from being settled. This s...

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Main Author: Liao, Kin
Other Authors: Materials Engineering Science
Format: Others
Language:en
Published: Virginia Tech 2014
Subjects:
Online Access:http://hdl.handle.net/10919/40047
http://scholar.lib.vt.edu/theses/available/etd-10202005-102839/
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spelling ndltd-VTETD-oai-vtechworks.lib.vt.edu-10919-400472021-04-24T05:40:00Z Tensile and uniaxial/multiaxial fatigue behavior of ceramic matrix composites at ambient and elevated temperatures Liao, Kin Materials Engineering Science LD5655.V856 1994.L54 Ceramic-matrix composites -- Fatigue Increasing use of fiber reinforced ceramic matrix composites (CMC's) materials is needed, especially for hostile environments such as elevated temperatures. However, some fundamental issues regarding how these materials should be made for optimized performance are far from being settled. This study focuses on the modeling of the tensile behavior of unidirectional CMC using statistical methods and micro-mechanical analysis, based on laboratory observations. The model can be used to examine the effect of performance-influencing parameters on the strength of unidirectional CMC, thus shed light on how such material should be put together. The tensile strength model was then modified such that the behavior of unidirectioal CMC under cyclic tensile load can be studied. Results from the tensile strength model suggest that the Weibull modulus, <i>m</i>, of the strength of the reinforcing fibers and the fiber/matrix interfacial shear stress both have significant effect on the strength and toughness of the unidirectional composite: a higher <i>m</i> value and a lower interfacial shear stress result in a lower strength; a lower value of <i>m</i> and a higher interfacial shear stress results in a higher strength but lower toughness. Calculations from the tensile fatigue model suggest that a lower <i>m</i> value results in a longer fatigue life. Ph. D. 2014-03-14T21:21:52Z 2014-03-14T21:21:52Z 1994-10-05 2005-10-20 2005-10-20 2005-10-20 Dissertation Text etd-10202005-102839 http://hdl.handle.net/10919/40047 http://scholar.lib.vt.edu/theses/available/etd-10202005-102839/ en OCLC# 32793754 LD5655.V856_1994.L54.pdf In Copyright http://rightsstatements.org/vocab/InC/1.0/ xi, 141 leaves BTD application/pdf application/pdf Virginia Tech
collection NDLTD
language en
format Others
sources NDLTD
topic LD5655.V856 1994.L54
Ceramic-matrix composites -- Fatigue
spellingShingle LD5655.V856 1994.L54
Ceramic-matrix composites -- Fatigue
Liao, Kin
Tensile and uniaxial/multiaxial fatigue behavior of ceramic matrix composites at ambient and elevated temperatures
description Increasing use of fiber reinforced ceramic matrix composites (CMC's) materials is needed, especially for hostile environments such as elevated temperatures. However, some fundamental issues regarding how these materials should be made for optimized performance are far from being settled. This study focuses on the modeling of the tensile behavior of unidirectional CMC using statistical methods and micro-mechanical analysis, based on laboratory observations. The model can be used to examine the effect of performance-influencing parameters on the strength of unidirectional CMC, thus shed light on how such material should be put together. The tensile strength model was then modified such that the behavior of unidirectioal CMC under cyclic tensile load can be studied. Results from the tensile strength model suggest that the Weibull modulus, <i>m</i>, of the strength of the reinforcing fibers and the fiber/matrix interfacial shear stress both have significant effect on the strength and toughness of the unidirectional composite: a higher <i>m</i> value and a lower interfacial shear stress result in a lower strength; a lower value of <i>m</i> and a higher interfacial shear stress results in a higher strength but lower toughness. Calculations from the tensile fatigue model suggest that a lower <i>m</i> value results in a longer fatigue life. === Ph. D.
author2 Materials Engineering Science
author_facet Materials Engineering Science
Liao, Kin
author Liao, Kin
author_sort Liao, Kin
title Tensile and uniaxial/multiaxial fatigue behavior of ceramic matrix composites at ambient and elevated temperatures
title_short Tensile and uniaxial/multiaxial fatigue behavior of ceramic matrix composites at ambient and elevated temperatures
title_full Tensile and uniaxial/multiaxial fatigue behavior of ceramic matrix composites at ambient and elevated temperatures
title_fullStr Tensile and uniaxial/multiaxial fatigue behavior of ceramic matrix composites at ambient and elevated temperatures
title_full_unstemmed Tensile and uniaxial/multiaxial fatigue behavior of ceramic matrix composites at ambient and elevated temperatures
title_sort tensile and uniaxial/multiaxial fatigue behavior of ceramic matrix composites at ambient and elevated temperatures
publisher Virginia Tech
publishDate 2014
url http://hdl.handle.net/10919/40047
http://scholar.lib.vt.edu/theses/available/etd-10202005-102839/
work_keys_str_mv AT liaokin tensileanduniaxialmultiaxialfatiguebehaviorofceramicmatrixcompositesatambientandelevatedtemperatures
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