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1 | (20) |
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1 | (4) |
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1.2 The Ideal Strength and Mechanisms of Failure |
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5 | (4) |
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9 | (12) |
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17 | (4) |
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2 Stress, Strain, and the Basic Equations of Solid Mechanics |
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21 | (42) |
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21 | (1) |
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22 | (6) |
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28 | (5) |
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2.4 Requirements for a Solution |
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33 | (1) |
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34 | (2) |
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36 | (6) |
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42 | (7) |
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2.8 Creep and Viscous Behavior |
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49 | (1) |
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2.9 Plane Stress and Plane Strain |
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50 | (3) |
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53 | (10) |
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60 | (3) |
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3 Some Solutions That Are Useful in Fracture Prediction |
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63 | (32) |
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63 | (1) |
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3.2 State of Stress Near the Tip of the Crack |
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64 | (3) |
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3.3 Determination of the Stresses for Mode I and Mode II Loading |
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67 | (7) |
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3.4 Determination of the Stresses for a Mode III Crack |
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74 | (1) |
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3.5 Determination of the Stresses Around a Circular Hole |
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75 | (3) |
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3.6 Determination of Stresses Around an Elliptical Crack |
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78 | (2) |
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3.7 Elastic--Plastic Solutions |
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80 | (5) |
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3.8 Solutions for Notched Bars |
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85 | (10) |
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91 | (2) |
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93 | (2) |
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4 The Basis of Linear Elastic Fracture Mechanics |
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95 | (38) |
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95 | (1) |
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96 | (11) |
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4.3 Stress Intensity Approach |
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107 | (13) |
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4.4 The Equivalence of Energy and Stress Intensity Approaches |
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120 | (2) |
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4.5 Displacements Due to Cracks |
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122 | (3) |
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125 | (8) |
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128 | (2) |
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130 | (3) |
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5 Some Applications of Linear Elastic Fracture Mechanics |
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133 | (36) |
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133 | (2) |
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5.2 Estimates of Plastic Zone Size and Correction Factors |
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135 | (11) |
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141 | (2) |
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143 | (3) |
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5.3 Experimental Evidence of Plastic Zones |
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146 | (1) |
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5.4 The Plane Stress--Plane Strain Transition |
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147 | (1) |
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5.5 Elliptical or "Thumbnail" Cracks |
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148 | (3) |
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5.6 Slow Crack Growth by Fatigue and Stress Corrosion Cracking |
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151 | (3) |
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5.7 Slow Growth, Pop-In, and Rate Effects |
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154 | (6) |
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5.8 Test Techniques and Experimental Data |
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160 | (9) |
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166 | (2) |
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168 | (1) |
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6 Fracture Prediction Beyond the Linear Elastic Range |
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169 | (32) |
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169 | (1) |
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6.2 The Transition Temperature |
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170 | (9) |
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6.3 The Combination of Transition Temperature and Linear Elastic Fracture Mechanics |
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179 | (4) |
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6.4 Crack Opening Displacement |
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183 | (5) |
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188 | (13) |
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198 | (1) |
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199 | (2) |
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7 Cleavage and Ductile Fracture Mechanisms: The Microstructural Basis of Fracture Toughness |
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201 | (14) |
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201 | (3) |
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204 | (1) |
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7.3 Cleavage of Notched and Cracked Members |
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205 | (3) |
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7.4 Ductile Fracture of Notched or Cracked Members |
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208 | (7) |
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212 | (3) |
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8 The Fracture of Brittle Solids |
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215 | |
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215 | (2) |
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8.2 Failure Under Tensile States of Stress |
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217 | (6) |
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8.3 Estimation of Parameters |
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223 | (4) |
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8.4 Some Applications of the Weibull Distribution |
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227 | (4) |
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229 | (2) |
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8.5 The Location of Fracture in Brittle Solids |
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231 | (3) |
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8.6 A More Rigorous Derivation of the Weibull Distribution |
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234 | (2) |
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8.7 Composite Using Strong Fibers and Whiskers |
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236 | (6) |
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Parallel Elements in Series |
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239 | (3) |
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8.8 Brittle Solids Under Compressive and Multiaxial Stresses |
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242 | |
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245 | (4) |
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249 | |