Introduces Plasma Physics and Fusion Energy, covering energy consumption, fusion reactions, advantages of fusion energy, plasma confinement, challenges in tokamak physics, and the ITER project.
Explores the complexity of boundary plasma in fusion energy research, focusing on experimental techniques and simulations to understand plasma dynamics and improve fusion reactor design.
Explores plasma physics, nuclear fusion, and experimental techniques for studying tokamak boundary plasmas, aiming to achieve clean and sustainable energy production.
Explores the limitations of classical transport models in tokamak plasmas, the impact of turbulence on plasma confinement, and the empirical transport scaling for ITER design.
Explores Electron Cyclotron Resonance Heating for plasma heating and current drive, focusing on wave-particle resonances, ECRH system components, and applications in TCV tokamak and ITER.
Explores the requirements for a fusion reactor's first wall and the advantages of the divertor concept, including innovative configurations and challenges.