Cover image for Materials Lifetime Science and Engineering.
Materials Lifetime Science and Engineering.
Title:
Materials Lifetime Science and Engineering.
Author:
The Minerals, Metals & Materials Society (TMS).
ISBN:
9781118788134
Edition:
1st ed.
Physical Description:
1 online resource (272 pages)
Contents:
Cover -- Title Page -- Copyright Page -- TABLE OF CONTENTS -- PREFACE -- Session I -- Linkage Between Safe-Life and Crack Growth Approaches for Fatigue Life Prediction -- A Mechanistic Based Study of Fatigue Crack Propagation in the Single Crystal Nickel Base Superalloy CMSX-2 -- Thermographic Detection of Fatigue Damage in Hastelloy® C-2000® Superalloy -- Elevated-Temperature Crack-Growth Behavior of Nickel-Base Hastelloy® X Alloy -- Creep-Fatigue Life Prediction of Cr-Mo Steel Alloys -- Effect of Microstructure on the Very High Cycle Fatigue of Alloy at Room and Cryogenic Temperatures -- Session II -- Determining Worst-Case Fatigue Thresholds for Grain-Bridging Ceramics -- Localized Deformation Around Indentations and the Effects of Hydrogen on Dislocation Cross-Slip -- Rotating-Beam Fatigue Properties and Effect of Ni Element Additive in Bulk Glassy Zr50Cu40Al10 Alloys -- A Mechanism for Fatigue Crack Initiation in Pure Metal -- Analysis of Plastic Deformation Behavior During Equal Channel Angular Pressing -- Evaluating the Induced Strain During Equal Channel Angular Processing -- Session III -- On the Development of Life Prediction Methodologies for the Failure of Human Teeth -- Predicting Material Consumption by Cyclic Oxidation Spalling Models -- Corrosion Damage Functions -- Prediction of High Temperature Cyclic Oxidation Kinetics with a Simple Statistical Spalling Model -- Influence of Environment on Creep Properties of MC2 Single Crystal Superalloy at 1050°C and 1150°C -- Influence of Environment on Mechanical Behavior of Alloy 718 at 650°C -- Session IV -- Life Prediction Strategies for Land-Based Gas Turbine Blades -- Fatigue Fracture Mechanism and Fatigue Life Assessment of Aluminum Castings -- Fatigue and Fretting Fatigue of Biomaterial, Ti-29Nb-13Ta-4.6Zr, in Air and Simulated Body Environment.

Effect of Alpha Grain size on Low-Temperature Fatigue Properties of Ti-5%Al-2.5%Sn Eli Alloy -- Addendum -- The Behavior of Hastelloy® C-2000® Alloy Under Strain-Controlled Fatigue Loading -- Subject Index -- Author Index.
Abstract:
Materials Lifetime Science and Engineering.
Local Note:
Electronic reproduction. Ann Arbor, Michigan : ProQuest Ebook Central, 2017. Available via World Wide Web. Access may be limited to ProQuest Ebook Central affiliated libraries.
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