Contents | 6 |
1Introduction to Electron Beam Curing of Composites | 8 |
1.1Principles of the Technique | 8 |
1.2Chemical Aspects of the Curing Reaction | 9 |
1.2.1Free Radical Polymerization | 10 |
1.2.2Cationic Polymerization | 11 |
1.2.3Network Formation | 13 |
1.3Parameters Affecting Electron Beam Curing | 14 |
1.3.1Impurities | 14 |
1.3.2Irradiation Dose | 15 |
1.3.3Initiator Content | 16 |
1.3.4Thermal history | 16 |
1.3.5Irradiation Energy | 18 |
1.4Electron Beam Curing Facilities | 20 |
1.5Safety Issues | 22 |
2Aspects of Electron Beam Curable Materials | 24 |
2.1Initiators | 24 |
2.1.1Onium Salt Initiators | 27 |
2.1.1.1Iodonium Salt Initiators | 27 |
2.1.1.2Sulfonium Salt Initiators | 33 |
2.1.1.3Other Onium Salt Initiators and Related Compounds | 41 |
2.1.2Metal Complex Initiators | 44 |
2.1.2.1Cyclopentadienyl Iron(II) Arene Complex Initiators | 44 |
2.1.2.2Silver Alkene Complex Initiators | 46 |
2.2Neat Resins | 48 |
2.2.1Free Radical Polymerizable Resins | 48 |
2.2.2Cationically Polymerizable Resins | 50 |
2.3Toughened Resins | 52 |
2.3.1Liquid Reactive Rubber | 54 |
2.3.2Core-Shell Rubber Particles | 55 |
2.3.3Thermoplastics | 63 |
2.3.4Block Co-polymers | 74 |
2.3.5Inorganic Nanoparticles | 79 |
2.3.6Hyperbranched Polymers | 83 |
2.4Interfacial Properties Between Fibers and Matrix | 84 |
2.4.1Fiber Surface Treatment and Use of Sizings | 85 |
2.4.2Processing Conditions | 86 |
2.5Residual Stresses | 87 |
2.6Effect of Post-Curing | 88 |
3Electron Beam Curing Applied to Composite Molding Technologies | 92 |
3.1Layer-by-Layer Assembly | 92 |
3.2Prepregging | 94 |
3.3Vacuum Bagging | 95 |
3.4Pultrusion | 96 |
3.5Filament Winding | 96 |
3.6Resin Transfer Molding (RTM) and Vacuum Assisted RTM (VARTM) | 97 |
3.7Lost Core Molding | 98 |
4Current Limitations and Potentials for Electron Beam Curing | 100 |
4.1Cost Analysis of Electron Beam Curing Processes | 100 |
4.2Comparison Between Thermal and Electron Beam Cured Materials in Terms of Properties | 102 |
4.3Summary of Potential Applications for Electron Beam Curing | 105 |
5Research Trends and Projects in the Field of Electron Beam Curing | 108 |
6Examples of Electron Beam Curing Applications | 112 |
6.1Automotive | 112 |
6.1.1Composite Concept Vehicle, Daimler-Chrysler | 112 |
6.1.2Composite Armored Vehicle, US Army | 112 |
6.2Aircraft Industry | 114 |
6.2.1Patch Repairs for Civil and Military Applications | 114 |
6.2.2T-38 Talon, US Air Force | 116 |
6.2.3F/A-18 Hornet, Northrop Grumman | 117 |
6.3Space Applications | 118 |
6.3.1Space Shuttle Venture Star, Lockheed and NASA | 118 |
6.3.2Satellite’s Flywheel, AFS Trinity and NASA | 120 |
6.3.3Satellite’s Reflector Dish, Acsion and CASA (Spanish space agency) | 121 |
References | 122 |
Appendix 1: Key Players in Electron Beam Curing | 130 |
Appendix 2: List of Commercially Available Materials for Electron Beam Curing | 132 |
Subject Index | 134 |