Preface | p. xi |
List of Authors | p. xiii |
Structure and Properties | |
Polymer Structure and Morphology | p. 3 |
Introduction | p. 4 |
Conformation of Macromolecules | p. 5 |
Polymeric Liquid Structures | p. 13 |
Morphology in the Glassy State | p. 32 |
Summary and Conclusions | p. 42 |
References | p. 43 |
Structure and Morphology of Semicrystalline Polymers | p. 47 |
Amorphous Versus Crystalline State | p. 47 |
The Amorphous State | p. 48 |
The Crystalline State | p. 49 |
Experimental Evidence of Crystallinity in Polymers | p. 51 |
Basic Morphologies in Semicrystalline Polymers | p. 55 |
Morphologies Obtained in Polymer Processing | p. 62 |
Conclusions | p. 65 |
References | p. 65 |
Modern Structural Characterization Techniques Using Synchrotron Radiation to Study Structure Development | p. 69 |
Introduction | p. 69 |
The Early Stages of Crystallization | p. 71 |
Reaction-Induced Microphase Separation in Polyurethanes | p. 79 |
Conclusions | p. 89 |
References | p. 90 |
Crystallization Mechanisms and Relevant Theories | p. 93 |
Introduction | p. 93 |
Elements of Crystallization and Melting Thermodynamics | p. 94 |
Nucleation of Polymer Crystals | p. 96 |
Growth of Polymer Crystals | p. 101 |
Morphology-Based Models | p. 107 |
Concluding Remarks | p. 109 |
References | p. 111 |
Overall Crystallization Kinetics; Application to Transcrystallinity | p. 113 |
Introduction | p. 113 |
Classical Theories of Overall Crystallization Kinetics | p. 115 |
Improvement of the Classical Theories [16] | p. 128 |
Application to Transcrystallinity | p. 133 |
Conclusions | p. 139 |
References | p. 139 |
Structure-Microhardness Correlation of Polymers and Blends | p. 145 |
Introduction | p. 145 |
Basic Aspects of Indentation | p. 146 |
Correlation of Microhardness to Macroscopic Mechanical Properties | p. 147 |
Hardness Calculations | p. 148 |
Microhardness of Polymer Glasses | p. 149 |
Development of Structure | p. 149 |
Detection of Physical Transitions | p. 152 |
Hardness of Semicrystalline Polymers | p. 153 |
Polymorphic Changes | p. 154 |
Hardness Predictions of Lamellar Crystals | p. 155 |
Generalized Tabor Relation | p. 157 |
Polymer Blends | p. 157 |
Outlook | p. 159 |
Acknowledgments | p. 160 |
References | p. 160 |
Fracture and Fatigue Behaviour of Semicrystalline Polymers as a Function of Microstructural and Molecular Parameters | p. 163 |
Introduction | p. 163 |
Determination of the Fracture and Fatigue Behaviour by Fracture Mechanics | p. 165 |
Effects of Microstructural Parameters | p. 167 |
Effects of Crystalline and Molecular Variables | p. 170 |
Outlook | p. 175 |
Acknowledgements | p. 176 |
References | p. 176 |
Structure Development During Processing | |
Rheology and Structure Development | p. 183 |
Introduction | p. 183 |
Polymer Melt Flow and Rheology During Processing | p. 183 |
Structure Development in Glassy Thermoplastics During Processing | p. 186 |
Orientation Development in Crystallizing Thermoplastics During Processing | p. 188 |
Modelling Structure Development in Thick Sections | p. 191 |
References | p. 192 |
Structure and Property Development During the Melt Spinning of Synthetic Fibres | p. 195 |
Introduction | p. 195 |
A Simple Mathematical Model of the Process | p. 197 |
Some Key Experimental Observations | p. 201 |
Acknowledgements | p. 217 |
References | p. 217 |
Real-Time Monitoring of Fast Birefringence Changes During Crystallization of Preoriented Poly(Ethylene Terephthalate) and Poly(Lactic Acid) Films | p. 221 |
Introduction | p. 221 |
Experimental Procedures | p. 223 |
Effect of Heat Setting Temperature and Draw Ratio on the Birefringence of PET Films | p. 226 |
Mechanical, Thermal and Structural Properties of Linear and Branched PLA Films | p. 228 |
On-Line Determination of Birefringence by Spectral Birefringence Technique in Films of Linear and Branched PLA | p. 231 |
Conclusions | p. 232 |
References | p. 232 |
Post Processing Behaviour of a Semicrystalline Polymer | p. 235 |
Introduction | p. 235 |
Experimental | p. 237 |
Data Analysis | p. 240 |
Results | p. 244 |
Acknowledgements | p. 253 |
References | p. 253 |
Processing-Structure-Properties Relationships in Injection Moulded Parts | p. 255 |
Introduction | p. 256 |
Structure Development During Injection Moulding | p. 257 |
Thermomechanical Indices | p. 260 |
Experimental | p. 261 |
Results and Discussion | p. 264 |
Conclusions | p. 274 |
Acknowledgements | p. 274 |
References | p. 275 |
Physical Properties Enhancements by Composition and Microstructure Control | p. 279 |
Introduction | p. 279 |
Physical Properties Enhancement by Shear-Controlled Orientation in Injection Moulding or Extrusion | p. 283 |
Concluding Remarks | p. 291 |
Acknowledgements | p. 291 |
References | p. 291 |
Structure Development in Blends and Composites | |
Flow-Induced Mixing and Demixing in Polymer Blends | p. 295 |
Introduction | p. 295 |
Theoretical Background | p. 296 |
Blends Containing Homopolymers Only | p. 299 |
Blends Containing Copolymers | p. 302 |
Conclusions | p. 307 |
Acknowledgements | p. 308 |
References | p. 309 |
Microfibrillar Reinforced Composites - Another Approach to Polymer Blends Processing | p. 311 |
What is a Microfibrillar Reinforced Composite (MFC)? | p. 311 |
Manufacturing and Some Peculiarities of MFC | p. 312 |
Structure Development During MFC Manufacturing | p. 315 |
Effect of the MFC Morphology on the Mechanical Properties | p. 316 |
Conclusions and Outlook | p. 323 |
Acknowledgements | p. 324 |
References | p. 324 |
Processing and Properties of Polymer Microlayered Systems | p. 327 |
Intoduction | p. 327 |
Microlayer Process | p. 328 |
Examples of Microlayered Systems | p. 333 |
Acknowledgements | p. 342 |
References | p. 343 |
Modelling of Short Fibre-Reinforced Thermoplastics' Flows in Polymer Processing | p. 345 |
Introduction | p. 345 |
Fibre Orientation Kinetics | p. 346 |
Constitutive Equation for the Stress | p. 350 |
Application to Polymer Processing | p. 353 |
Conclusions | p. 359 |
References | p. 360 |
Outlook: Future Trends in Polymer Processing | p. 365 |
Author Index | p. 367 |
Subject Index | p. 371 |
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