LEADER 05509nam 22007333u 450 001 9910830727403321 005 20210106233555.0 010 $a1-118-61678-2 010 $a1-299-31529-1 010 $a1-118-61674-X 035 $a(CKB)2560000000100610 035 $a(EBL)1143610 035 $a(OCoLC)830161688 035 $a(SSID)ssj0000833199 035 $a(PQKBManifestationID)11462173 035 $a(PQKBTitleCode)TC0000833199 035 $a(PQKBWorkID)10935412 035 $a(PQKB)11629960 035 $a(MiAaPQ)EBC1143610 035 $a(PPN)248333151 035 $a(EXLCZ)992560000000100610 100 $a20131014d2013|||| u|| | 101 0 $aeng 135 $aur|n|---||||| 181 $ctxt 182 $cc 183 $acr 200 10$aFatigue of Materials and Structures$b[internet resource] $eApplication to Damage and Design 210 $aHoboken $cWiley$d2013 215 $a1 online resource (320 p.) 225 1 $aISTE 300 $aDescription based upon print version of record. 311 $a1-84821-267-4 327 $aCover; Fatigue of Materials and Structures; Title Page; Copyright Page; Table of Contents; Foreword; Chapter 1. High Temperature Fatigue; 1.1. Introduction and overview; 1.1.1. Introductory remarks; 1.1.2. A little history; 1.1.3. High temperature testing closed-loop control and extensometry; 1.1.4. Damage mechanisms and interactions in high-temperature fatigue; 1.1.5. Organization of this chapter; 1.1.6. Goals; 1.2. 9 to 12% Cr steels; 1.2.1. Introduction; 1.2.2. Microstructures of 9-12% Cr steels; 1.2.3. Mechanical behavior; 1.2.4. Damage; 1.2.5. Damage model and life prediction 327 $a1.3. Austenitic stainless steels1.3.1. Introduction; 1.3.2. Mechanical behavior and microstructure; 1.3.3. Life and damage; 1.3.4. Physically-based damage modeling of creep-fatigue interactions; 1.4. Fatigue of superalloys; 1.4.1. Microstructure and processing of superalloys; 1.4.2. Deformation mechanisms; 1.4.3. Cyclic deformation and microstructure; 1.4.4. High-temperature low-cycle fatigue; 1.4.5. Fatigue crack propagation (FCP) of superalloys; 1.4.6. Concluding remarks on Ni-base alloys; 1.5. Lifespan prediction in high-temperature fatigue; 1.5.1. Introduction 327 $a1.5.2. Physically-based models1.5.3. Phenomenological models; 1.6. Conclusions; 1.7. Acknowledgments; 1.8. Bibliography; Chapter 2. Analysis of Elasto-plastic Strains and Stresses Near Notches Subjected to Monotonic and Cyclic Multiaxial Loading Paths; 2.1. Introduction; 2.2. Multiaxial fatigue parameters; 2.2.1. Equivalent parameter methods; 2.2.2. Critical plane methods; 2.2.3. Mean stress effects in multiaxial fatigue; 2.2.4. Predictive capabilities of multiaxial parameter W*; 2.3. Elasto-plastic notch-tip stress-strain calculation methods 327 $a2.3.1. Uniaxial strain or plane strain states at the notch tip2.3.2. Multiaxial stress states; 2.4. Comparison of notch stress-strain calculations with numerical data; 2.4.1. Monotonic proportional loading; 2.4.2. Monotonic non-proportional loading; 2.4.3. Proportional multiaxial cyclic loading; 2.5. Conclusion; 2.6. Bibliography; 2.7. Symbols; Chapter 3. Fatigue of Composite Materials; 3.1. Introduction; 3.2. Drastic differences between the fatigue of composites and metals; 3.2.1. Damage at the microscopic level; 3.2.2. Role of plasticity and nonlinear behavior 327 $a3.2.3. Shape of the endurance curves of composite materials3.2.4. Role of the fibers and the matrix; 3.3. Notch effect on fatigue strength; 3.4. Effect of a stress on composite fatigue; 3.4.1. Fatigue under compression; 3.4.2. Fatigue under bending conditions; 3.4.3. Effect of tensile over-loading; 3.5. Fatigue after impact; 3.6. Fatigue damage criteria; 3.6.1. Variation of rigidity; 3.6.2. Variation of residual strength after fatigue; 3.7. Conclusion; 3.8. Bibliography; Chapter 4. Fatigue of Polymers and Elastomers; 4.1. Introduction; 4.2. Life of polymers 327 $a4.3. Crack propagation within polymers 330 $aThe design of mechanical structures with improved and predictable durability cannot be achieved without a thorough understanding of the mechanisms of fatigue damage and more specifically the relationships between the microstructure of materials and their fatigue properties. Written by leading experts in the field, this book (which is complementary to Fatigue of Materials and Structures: Application to Damage and Design, also edited by Claude Bathias and Andre? Pineau), provides an authoritative, comprehensive and unified treatment of the mechanics and micromechanisms of fatigue in metals, polym 410 0$aISTE 606 $aMaterials$xFatigue 606 $aMaterials$xMechanical properties 606 $aMicrostructure 606 $aChemical & Materials Engineering$2HILCC 606 $aEngineering & Applied Sciences$2HILCC 606 $aMaterials Science$2HILCC 615 0$aMaterials$xFatigue 615 0$aMaterials$xMechanical properties 615 0$aMicrostructure 615 7$aChemical & Materials Engineering 615 7$aEngineering & Applied Sciences 615 7$aMaterials Science 676 $a620.1126 700 $aBathias$b Claude$01606476 701 $aPineau$b Andr?$01606477 712 02$aDawsonera 801 0$bAU-PeEL 801 1$bAU-PeEL 801 2$bAU-PeEL 906 $aBOOK 912 $a9910830727403321 996 $aFatigue of Materials and Structures$93932282 997 $aUNINA