Nuclear Materials under Irradiation (eBook, ePUB)
Redaktion: Bouffard, Serge; Moncoffre, Nathalie
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Nuclear Materials under Irradiation (eBook, ePUB)
Redaktion: Bouffard, Serge; Moncoffre, Nathalie
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At every stage of the fuel cycle, the materials used are at the heart of nuclear energy safety issues. These materials, which range from steel to polymers, including ceramics, glass, concrete and graphite, are submitted to extreme stresses combining mechanical, thermal and irradiation constraints. The objective of this book is to provide a basis for the research of nuclear materials subjected to irradiation, with the desire to contextualize them in the industrial environment. Therefore, most of the chapters are co-authored and contain a mix of basic and applied research. The reader will find…mehr
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- Produktdetails
- Verlag: Wiley
- Seitenzahl: 320
- Erscheinungstermin: 28. November 2023
- Englisch
- ISBN-13: 9781394256280
- Artikelnr.: 69569386
- Verlag: Wiley
- Seitenzahl: 320
- Erscheinungstermin: 28. November 2023
- Englisch
- ISBN-13: 9781394256280
- Artikelnr.: 69569386
- Herstellerkennzeichnung Die Herstellerinformationen sind derzeit nicht verfügbar.
irradiation 161 5.3.2 Effects of
decays 163 5.3.3 Accumulation of helium 165 5.3.4 Summary of knowledge in closed system 166 5.4 Open system: alteration of glass by water under irradiation 167 5.4.1 General information on the behavior of glass under water - methodology 167 5.4.2 Taking irradiation into account in this multi-phase system 170 5.4.3 Irradiation and initial alteration rate 170 5.4.4 Irradiation and residual alteration rate 172 5.4.5 Summary on the behavior of glass under water and under irradiation 174 5.5 Summary and prospects 175 5.6 Acknowledgements 176 5.7 References 176 Chapter 6 Radiolysis of Porous Materials and Radiolysis at Interfaces 181 Sophie Le Caër and Jean-Philippe Renault 6.1 Introduction 181 6.2 General information on radiolysis 182 6.2.1 A few definitions 182 6.2.2 Radiolysis of liquid water 183 6.3 Main porous materials of interest 185 6.4 Dosimetry in heterogeneous media 186 6.5 Production of dihydrogen by radiolysis of water in a confined medium 187 6.5.1 Methods for calculating the yield of dihydrogen production 187 6.5.2 Reaction mechanisms 189 6.5.3 Different parameters influencing the production of dihydrogen under irradiation 190 6.6 Understanding transient phenomena 191 6.6.1 Study of a short-lived species, the hydroxyl radical 191 6.6.2 Confinement effect on the reactions taking place and their rate constants 193 6.7 Conclusion: what about the effects of radiolytic species on materials? 196 6.8 References 197 Chapter 7 Concrete and Cement Materials under Irradiation 201 Pascal Bouniol 7.1 Introduction 201 7.2 Radiation shielding concrete 202 7.2.1 Overview 202 7.2.2 Effects of irradiation on the cement matrix 203 7.2.3 Effects of irradiation on aggregates 204 7.2.4 Prediction of concrete damage 206 7.3 Waste conditioning matrices 207 7.3.1 Overview 207 7.3.2 Radiolysis of the cement matrix 207 7.3.3 Phenomenological couplings 210 7.4 Conclusion 211 7.5 References 212 Chapter 8 Organic Materials 215 Emmanuel Balanzat and Muriel Ferry 8.1 Introduction 215 8.2 Technological context 217 8.2.1 Organic materials of the nuclear industry 217 8.2.2 Polymers in the reactor building 220 8.2.3 Nuclear waste 222 8.3 Radiation exposure 224 8.3.1 The LET effect 224 8.3.2 ß/
irradiation 225 8.3.3
irradiation 225 8.3.4 Thermal neutrons 227 8.3.5 Other projectiles 227 8.4 Irradiated polymers: phenomenology 228 8.4.1 Resistance of polymers to irradiation 228 8.4.2 Changes induced by irradiation 230 8.5 Radiolysis in anoxic polymers: fundamental effects 231 8.5.1 Polymer radiolysis: introduction 231 8.5.2 A textbook case: polyethylene 233 8.6 The radio-oxidation of polymers 236 8.6.1 Mechanism of radio-oxidation 236 8.6.2 Chemical and physical influences of the dose rate 239 8.6.3
irradiation 241 8.7 Conclusion and perspectives 243 8.8 References 243 Chapter 9 Irradiation Tools 251 Serge Bouffard and Nathalie Moncoffre 9.1 Why experiment with accelerators? 251 9.2 Irradiation conditions in nuclear energy 252 9.2.1 Characteristics of these particles 252 9.2.2 How is irradiation simulated in a nuclear environment? 253 9.3 Tools for simulation 256 9.3.1 Research reactors 256 9.3.2 Accelerators 258 9.3.3 Use of radioactive elements 264 9.4 Some major irradiation research centers 264 9.5 Conclusion 267 9.6 References 267 Chapter 10 Characterization of Irradiation Damage 269 Aurélie Gentils, Stéphanie Jublot-Leclerc and Patrick Simon 10.1 Introduction 269 10.2 Characterization of point defects 270 10.2.1 Positron annihilation spectroscopy 270 10.2.2 Raman scattering 271 10.2.3 Other techniques 274 10.3 Characterization of the global disorder and elastic strain 275 10.3.1 Raman spectroscopy 275 10.3.2 Ion beam analysis 277 10.3.3 X-ray diffraction 280 10.4 Imaging of extended defects and cavities 282 10.5 Elemental analysis 284 10.6 In situ microstructural characterization of materials subjected to irradiation 286 10.7 Conclusion and perspectives 288 10.8 References 289 List of Authors 293 Index 295
irradiation 161 5.3.2 Effects of
decays 163 5.3.3 Accumulation of helium 165 5.3.4 Summary of knowledge in closed system 166 5.4 Open system: alteration of glass by water under irradiation 167 5.4.1 General information on the behavior of glass under water - methodology 167 5.4.2 Taking irradiation into account in this multi-phase system 170 5.4.3 Irradiation and initial alteration rate 170 5.4.4 Irradiation and residual alteration rate 172 5.4.5 Summary on the behavior of glass under water and under irradiation 174 5.5 Summary and prospects 175 5.6 Acknowledgements 176 5.7 References 176 Chapter 6 Radiolysis of Porous Materials and Radiolysis at Interfaces 181 Sophie Le Caër and Jean-Philippe Renault 6.1 Introduction 181 6.2 General information on radiolysis 182 6.2.1 A few definitions 182 6.2.2 Radiolysis of liquid water 183 6.3 Main porous materials of interest 185 6.4 Dosimetry in heterogeneous media 186 6.5 Production of dihydrogen by radiolysis of water in a confined medium 187 6.5.1 Methods for calculating the yield of dihydrogen production 187 6.5.2 Reaction mechanisms 189 6.5.3 Different parameters influencing the production of dihydrogen under irradiation 190 6.6 Understanding transient phenomena 191 6.6.1 Study of a short-lived species, the hydroxyl radical 191 6.6.2 Confinement effect on the reactions taking place and their rate constants 193 6.7 Conclusion: what about the effects of radiolytic species on materials? 196 6.8 References 197 Chapter 7 Concrete and Cement Materials under Irradiation 201 Pascal Bouniol 7.1 Introduction 201 7.2 Radiation shielding concrete 202 7.2.1 Overview 202 7.2.2 Effects of irradiation on the cement matrix 203 7.2.3 Effects of irradiation on aggregates 204 7.2.4 Prediction of concrete damage 206 7.3 Waste conditioning matrices 207 7.3.1 Overview 207 7.3.2 Radiolysis of the cement matrix 207 7.3.3 Phenomenological couplings 210 7.4 Conclusion 211 7.5 References 212 Chapter 8 Organic Materials 215 Emmanuel Balanzat and Muriel Ferry 8.1 Introduction 215 8.2 Technological context 217 8.2.1 Organic materials of the nuclear industry 217 8.2.2 Polymers in the reactor building 220 8.2.3 Nuclear waste 222 8.3 Radiation exposure 224 8.3.1 The LET effect 224 8.3.2 ß/
irradiation 225 8.3.3
irradiation 225 8.3.4 Thermal neutrons 227 8.3.5 Other projectiles 227 8.4 Irradiated polymers: phenomenology 228 8.4.1 Resistance of polymers to irradiation 228 8.4.2 Changes induced by irradiation 230 8.5 Radiolysis in anoxic polymers: fundamental effects 231 8.5.1 Polymer radiolysis: introduction 231 8.5.2 A textbook case: polyethylene 233 8.6 The radio-oxidation of polymers 236 8.6.1 Mechanism of radio-oxidation 236 8.6.2 Chemical and physical influences of the dose rate 239 8.6.3
irradiation 241 8.7 Conclusion and perspectives 243 8.8 References 243 Chapter 9 Irradiation Tools 251 Serge Bouffard and Nathalie Moncoffre 9.1 Why experiment with accelerators? 251 9.2 Irradiation conditions in nuclear energy 252 9.2.1 Characteristics of these particles 252 9.2.2 How is irradiation simulated in a nuclear environment? 253 9.3 Tools for simulation 256 9.3.1 Research reactors 256 9.3.2 Accelerators 258 9.3.3 Use of radioactive elements 264 9.4 Some major irradiation research centers 264 9.5 Conclusion 267 9.6 References 267 Chapter 10 Characterization of Irradiation Damage 269 Aurélie Gentils, Stéphanie Jublot-Leclerc and Patrick Simon 10.1 Introduction 269 10.2 Characterization of point defects 270 10.2.1 Positron annihilation spectroscopy 270 10.2.2 Raman scattering 271 10.2.3 Other techniques 274 10.3 Characterization of the global disorder and elastic strain 275 10.3.1 Raman spectroscopy 275 10.3.2 Ion beam analysis 277 10.3.3 X-ray diffraction 280 10.4 Imaging of extended defects and cavities 282 10.5 Elemental analysis 284 10.6 In situ microstructural characterization of materials subjected to irradiation 286 10.7 Conclusion and perspectives 288 10.8 References 289 List of Authors 293 Index 295