1.

Record Nr.

UNINA9910410046403321

Autore

Li Longbiao

Titolo

Time-Dependent Mechanical Behavior of Ceramic-Matrix Composites at Elevated Temperatures / / by Longbiao Li

Pubbl/distr/stampa

Singapore : , : Springer Singapore : , : Imprint : Springer, , 2020

ISBN

981-15-3274-5

Edizione

[1st ed. 2020.]

Descrizione fisica

1 online resource (373 pages)

Collana

Advanced Ceramics and Composites, , 2662-9305 ; ; 1

Disciplina

620.14

Soggetti

Ceramics

Glass

Composites (Materials)

Composite materials

Mechanics

Mechanics, Applied

Materials science

Aerospace engineering

Astronautics

Engines

Machinery

Ceramics, Glass, Composites, Natural Materials

Solid Mechanics

Characterization and Evaluation of Materials

Aerospace Technology and Astronautics

Engine Technology

Lingua di pubblicazione

Inglese

Formato

Materiale a stampa

Livello bibliografico

Monografia

Nota di contenuto

Time-dependent first matrix cracking stress of ceramic-matrix composites at elevated temperatures -- Time-dependent matrix multiple cracking of ceramic-matrix composites at elevated temperatures -- Time-dependent tensile strength of ceramic-matrix composites at elevated temperatures -- Time-dependent tensile behavior of ceramic-matrix composites at elevated temperatures --



Time-dependent fatigue behavior of ceramic-matrix composites at elevated temperatures.

Sommario/riassunto

This book investigates the time-dependent behavior of fiber-reinforced ceramic-matrix composites (CMCs) at elevated temperatures. The author combines the time-dependent damage mechanisms of interface and fiber oxidation and fracture with the micromechanical approach to establish the relationships between the first matrix cracking stress, matrix multiple cracking evolution, tensile strength, tensile stress-strain curves and tensile fatigue of fiber-reinforced CMCs and time. Then, using damage models of energy balance, the fracture mechanics approach, critical matrix strain energy criterion, Global Load Sharing criterion, and hysteresis loops he determines the first matrix cracking stress, interface debonded length, matrix cracking density, fibers failure probability, tensile strength, tensile stress-strain curves and fatigue hysteresis loops. Lastly, he predicts the time-dependent mechanical behavior of different fiber-reinforced CMCs, i.e., C/SiC and SiC/SiC, using the developed approaches, in order to reduce the failure risk during the operation of aero engines. The book is intended for undergraduate and graduate students who are interested in the mechanical behavior of CMCs, researchers investigating the damage evolution of CMCs at elevated temperatures, and designers responsible for hot-section CMC components in aero engines. .