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2021 Faculty Courses School of Materials and Chemical Technology Department of Chemical Science and Engineering Graduate major in Nuclear Engineering

Special Lecture on Accelerator and Fusion Reactor Technology III

Academic unit or major
Graduate major in Nuclear Engineering
Instructor(s)
Jun Hasegawa / Yoshiyuki Oguri / Hiroshi Akatsuka / Tatsuya Katabuchi / Hiroaki Tsutsui / Noriyosu Hayashizaki / Nagayasu Oshima
Class Format
Lecture
Media-enhanced courses
-
Day of week/Period
(Classrooms)
7-8 Fri
Class
-
Course Code
NCL.A603
Number of credits
100
Course offered
2021
Offered quarter
3Q
Syllabus updated
Jul 10, 2025
Language
English

Syllabus

Course overview and goals

The course will provide lectures on accelerator and fusion reactor engineering mainly for doctoral degree program students so that they can deeply understand the state-of-art technologies in these fields.

Course description and aims

Students can explain the state-of-art technologies in the fields of accelerator and fusion engineering based on the extensive and deep knowledge on these fields.

Keywords

Plasma spectroscopy, collisional radiative model, high power laser, laser-driven particle acceleration, particle accelerators, positron annihilation, inertial confinement fusion, heavy ion beam, stopping power, magnetic confinement fusion, tokamak, helical, superconductivity, superconducting magnet, nuclear reaction, nuclear transmutation, nuclear waste management, nuclear data

Competencies

  • Specialist skills
  • Intercultural skills
  • Communication skills
  • Critical thinking skills
  • Practical and/or problem-solving skills

Class flow

Lectures will be delivered by the lecturers in various fields of accelerator and fusion engineering.

Course schedule/Objectives

Course schedule Objectives
Class 1 Population kinetics of excited states in plasma and the collisional-radiative model Explain the collisional-radiative model to describe population kinetics of excited states in plasma as line-spectrum source.
Class 2 Laser-driven particle acceleration Explain the principles and the latest research trend of laser-driven particle acceleration.
Class 3 Applications of particle accelerators Explain applications of particle accelerators.
Class 4 Positron annihilation Explain the principle of the material analysis method using positrons (positron annihilation) and its application examples.
Class 5 Heavy-Ion Inertial Fusion III – Beam-Plasma Interaction – Explain the dependence of stopping power of incident heavy-ions on the target temperature.
Class 6 Superconducting Technology in Magnetic Confinement Fusion Explain a superconducting technology in magnetic confinement fusion.
Class 7 Nuclear transmutation system and nuclear reaction data Explain nuclear transmutation system for long-lived nuclear waste, and nuclear reaction data required for its development.

Study advice (preparation and review)

To enhance effective learning, students are encouraged to spend approximately 100 minutes preparing for class and another 100 minutes reviewing class content afterwards (including assignments) for each class.
They should do so by referring to textbooks and other course material.

Textbook(s)

Not specified.

Reference books, course materials, etc.

#1: Takashi Fujimoto, "Plasma Spectroscopy", Oxford : Clarendon Press, ISBN-13: 9780198530282 (2007).
#2: Andrea Macchi, "Superintense Laser-Plasma Interaction Theory Primer", Springer, ISBN 978-94-007-6125-4 (2013).
#5: Stefano Atzeni and Jurgen Meyer-ter-Vehn, "The Physics of Inertial Fusion: Beam Plasma Interaction, Hydrodynamics, Hot Dense Matter (International Series of Monographs on Physics)", Oxford University Press, USA, ISBN-13: 978-0199568017 (2009).
#6: G. McCracken and P. Stott, "Fusion", 2nd edition, Elsevier, ISBN: 9780123846563 (2013).
#7: Y. Kimura, ed., "Kou-enerugi Kasokuki (High energy accelerators)", Kyouritsu Shuppan, ISBN: 978-4-320-03382-5 (2008).

Evaluation methods and criteria

The understanding and knowledge on accelerator and fusion reactor technologies are evaluated through mini-exams or a report given in each class.

Related courses

  • NCL.A403 : Particle Accelerator Engineering
  • NCL.A404 : Application of Accelerators and Radiation
  • NCL.A402 : Nuclear Fusion Reactor Engineering

Prerequisites

Fundamental knowledge of accelerator and fusion reactor engineering is required.