High-Temperature Mechanical Hysteresis in Ceramic-Matrix Composites
First Statement of Responsibility
Longbiao Li.
.PUBLICATION, DISTRIBUTION, ETC
Place of Publication, Distribution, etc.
Weinheim, Germany :
Name of Publisher, Distributor, etc.
Wiley-VCH,
Date of Publication, Distribution, etc.
2023
PHYSICAL DESCRIPTION
Specific Material Designation and Extent of Item
221p.
NOTES PERTAINING TO BINDING AND AVAILABILITY
Text of Note
Available to OhioLINK libraries.
INTERNAL BIBLIOGRAPHIES/INDEXES NOTE
Text of Note
Includes bibliographical references and index.
CONTENTS NOTE
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First Matrix Cracking of Ceramic-Matrix Composites at Elevated Temperature -- Matrix Multiple Cracking Evolution of Fiber-Reinforced Ceramic-Matrix Composites at Elevated Temperature -- Time-Dependent Tensile Behavior of Ceramic-Matrix Composites -- Fatigue Behavior of Ceramic-Matrix Composites at Elevated Temperature -- Stress Rupture of Ceramic-Matrix Composites at Elevated Temperature -- Vibration Damping of Ceramic-Matrix Composites at Elevated Temperature.
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SUMMARY OR ABSTRACT
Text of Note
Due to their high temperature resistance, strength and rigidity, relatively light weight, and corrosion resistance, ceramic-matrix composites (CMCs) are widely used across the aerospace and energy industries. As these advanced composites of ceramics and various fibers become increasingly important in the development of new materials, understanding the high-temperature mechanical behavior and failure mechanisms of CMCs is essential to ensure the reliability and safety of practical applications. High Temperature Mechanical Behavior of Ceramic-Matrix Composites examines the behavior of CMCs at elevated temperature - outlining the latest developments in the field and presenting the results of recent research on different CMC characteristics, material properties, damage states, and temperatures. This up-to-date resource investigates the high-temperature behavior of CMCs in relation to first matrix cracking, matrix multiple cracking, tensile damage and fracture, fatigue hysteresis loops, stress-rupture, vibration damping, and more.