| Preface | p. xi |
| Acknowledgement | p. xiii |
| Introduction to Laser Heating Process | p. 1 |
| References | p. 5 |
| Conduction-Limited Laser Pulsed Laser Heating: Fourier Heating Model | p. 7 |
| Introduction to Heat Generation Due to Absorption of Incident Laser Beam | p. 7 |
| Temperature Field Due to Laser Step Input Pulse Heating | p. 10 |
| Insulated Boundary Condition at the Surface | p. 11 |
| Step Input Pulse Heating without Cooling Cycle | p. 11 |
| Step Input Pulse Heating Including Heating and Cooling Cycles | p. 14 |
| Exponential Pulse Heating | p. 18 |
| Convective Boundary Condition at the Surface | p. 23 |
| Step Input Pulse Heating Including Heating and Cooling Cycles | p. 23 |
| Exponential Pulse Heating | p. 31 |
| Thermal Efficiency of Heating Process | p. 35 |
| Results and Discussion | p. 38 |
| Step Input Pulse Heating without Cooling Cycle: Insulated Boundary Condition at the Surface | p. 39 |
| Step Input Pulse Heating Including Heating and Cooling Cycles: Insulated Boundary Condition at the Surface | p. 40 |
| Exponential Pulse Heating: Insulated Boundary Condition at the Surface | p. 42 |
| Step Input Pulse Heating Including Heating and Cooling Cycles: Convective Boundary Condition at the Surface | p. 44 |
| Exponential Pulse Heating: Convective Boundary Condition at the Surface | p. 45 |
| Thermal Efficiency of Heating Process | p. 47 |
| References | p. 50 |
| Nonconduction-Limited Pulsed Laser Heating: Fourier Heating Model | p. 53 |
| Introduction to Nonconduction-Limited Heating | p. 53 |
| Step Input Pulse Heating: Melting and Evaporation at the Surface | p. 54 |
| Consideration of Steady Recession of the Irradiated Surface | p. 54 |
| Transient Analysis of Evaporation at the Surface | p. 62 |
| Exponential Pulse Heating: Evaporation at the Surface | p. 74 |
| Time Integration of Heating | p. 89 |
| Two-Dimensional Heating | p. 100 |
| Transient Evaporation | p. 100 |
| Stationary Source at the Surface | p. 103 |
| Moving Heat Source at the Surface | p. 104 |
| Entropy Generation Due to Laser Pulse Heating | p. 106 |
| Results and Discussion | p. 112 |
| Step Input Pulse Heating: Melting and Evaporation at the Surface | p. 112 |
| Consideration of Steady Recession of the Irradiated Surface | p. 112 |
| Transient Analysis of Evaporation at the Surface | p. 113 |
| Exponential Pulse Heating: Evaporation at the Surface | p. 116 |
| Time Integration of Heating | p. 119 |
| Two-Dimensional Heating: Transient Heating | p. 120 |
| Entropy Generation during Laser Heating | p. 121 |
| References | p. 123 |
| Laser Cutting Process | p. 125 |
| Introduction to Laser Cutting | p. 125 |
| Closed-Form Solution to Laser Cutting Process | p. 126 |
| Lump Parameter Analysis for Cutting Process | p. 131 |
| Formulation of Kerf Width Size | p. 131 |
| Thermal Efficiency of Laser Cutting Process | p. 134 |
| Estimation of Liquid Layer Thickness | p. 136 |
| Analysis for Heat Transfer to Liquid Metals with Presence of Assisting Gas | p. 144 |
| Results and Discussion | p. 148 |
| Closed-Form Solution for Laser Cutting Process | p. 148 |
| Formulation of Kerf Width Size | p. 150 |
| Thermal Efficiency of Laser Cutting Process | p. 154 |
| Liquid Layer Thickness | p. 157 |
| Heat Transfer to Liquid Metal with the Presence of Assisting Gas 159 | |
| References | p. 161 |
| Thermal Stress Analysis | p. 163 |
| Introduction | p. 163 |
| Step Input Pulse and Thermal Stress | p. 164 |
| Insulated Boundary Condition at the Surface | p. 164 |
| Stress Continuity at the Surface | p. 173 |
| Step Input Pulse Heating Including Heating and Cooling Cycles and Thermal Stresses | p. 176 |
| Exponential Pulse Heating and Thermal Stress | p. 190 |
| Thermally Insulated Boundary Condition at the Surface and Thermal Stress Analysis | p. 191 |
| Convection Boundary at the Surface and Thermal Stress Analysis | p. 198 |
| Exponential Pulse Heating and Thermal Stresses - Elasto-Plastic Analysis | p. 216 |
| Formulation of Recoil Pressure | p. 217 |
| Formulation of Stress Distribution | p. 221 |
| Thermal Stress and Entropy Generation Due to Exponential Pulse Heating | p. 225 |
| Results and Discussion | p. 230 |
| Stress Free Surface Condition | p. 230 |
| Zero Stress Gradient at the Surface | p. 233 |
| Laser Step Input Heating and Thermal Stress Development | p. 236 |
| Time Exponentially Pulse Heating and Thermal Stress Development | p. 239 |
| Thermally Insulated Surface | p. 239 |
| Convection Boundary at the Surface | p. 241 |
| Thermal Stress Development due to Laser Exponential Pulse - Elasto-Plastic Analysis | p. 243 |
| Thermal Stresses and Entropy Generation due to Laser Exponential Pulse Heating | p. 246 |
| References | p. 249 |
| Laser Short-Pulse Heating: Nonequilibrium Energy Transfer | p. 251 |
| Introduction to Nonequilibrium Heating | p. 251 |
| Exact Solution of Cattaneo's Equation | p. 252 |
| Derivation of Cattaneo's Equation from Boltzmann's Transport Equation | p. 253 |
| Analytical Solution of Cattaneo's Equation - Surface Heat Source | p. 257 |
| Analytical' Solution of Cattaneo's Equation - Volumetric Heat Source | p. 259 |
| Laser Short-Pulse Heating and Application of Perturbation Method | p. 263 |
| Application of Perturbation Method - Surface Heat Source | p. 263 |
| Application of Perturbation Method - Volumetric Heat Source | p. 267 |
| Application of Symmetries and Similarity Transformation to Laser Short-Pulse Heating | p. 271 |
| Perturbation Solution | p. 274 |
| A Boundary-Value Problem and Time Condition | p. 275 |
| Application of Lie Point Symmetry Solution to Laser Short-Pulse Heating | p. 276 |
| Results and Discussion | p. 283 |
| Exact Solution of Cattaneo's Equation | p. 284 |
| Surface Heat Source Model | p. 284 |
| Volumetric Heat Source Model | p. 284 |
| Laser Short-Pulse Heating and Perturbation Method | p. 286 |
| Surface Heat Source Model | p. 286 |
| Volumetric Source | p. 289 |
| Lie Point Symmetry Solution for Laser Short-Pulse Heating | p. 291 |
| References | p. 293 |
| Index | p. 295 |
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