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Unifying thorium fuel cycle science with SMR engineering and deployment
Thorium-based SMR development spans reactor physics, fuel cycle engineering, safety analysis, economics, and regulatory strategy, yet no single reference treats these domains as an integrated system. Thorium-Based, Small Modular Reactors, Systems Engineering, and Commercialization presents an end-to-end framework unifying thorium fuel cycle science with SMR design, digitalization, and global deployment, connecting theory directly to commercial practice.
Coverage includes molten salt reactor architectures, TRISO fuel forms, digital twin integration, and autonomous reactor operation enabled by AI and machine learning. The book provides quantitative modeling for neutronics and thermal hydraulics, economic frameworks for commercialization, and supply chain roadmaps. An appendix consolidates reactor physics formulas and derivations, while in-chapter refresher sections reinforce foundational concepts.
Readers will also find:
Designed for nuclear engineers, reactor designers, advanced SMR developers, and graduate students in nuclear engineering, this reference also serves energy system modelers, utility planners, policy makers, and regulators seeking a technically grounded strategic guide to thorium-driven modular reactor commercialization.
Unifying thorium fuel cycle science with SMR engineering and deployment
Thorium-based SMR development spans reactor physics, fuel cycle engineering, safety analysis, economics, and regulatory strategy, yet no single reference treats these domains as an integrated system. Thorium-Based, Small Modular Reactors, Systems Engineering, and Commercialization presents an end-to-end framework unifying thorium fuel cycle science with SMR design, digitalization, and global deployment, connecting theory directly to commercial practice.
Coverage includes molten salt reactor architectures, TRISO fuel forms, digital twin integration, and autonomous reactor operation enabled by AI and machine learning. The book provides quantitative modeling for neutronics and thermal hydraulics, economic frameworks for commercialization, and supply chain roadmaps. An appendix consolidates reactor physics formulas and derivations, while in-chapter refresher sections reinforce foundational concepts.
Readers will also find:
Designed for nuclear engineers, reactor designers, advanced SMR developers, and graduate students in nuclear engineering, this reference also serves energy system modelers, utility planners, policy makers, and regulators seeking a technically grounded strategic guide to thorium-driven modular reactor commercialization.
Atsiliepimai